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Erschienen in: BMC Neurology 1/2011

Open Access 01.12.2011 | Research article

Metabolic changes in concussed American football players during the acute and chronic post-injury phases

verfasst von: Luke C Henry, Sébastien Tremblay, Suzanne Leclerc, Abdesselam Khiat, Yvan Boulanger, Dave Ellemberg, Maryse Lassonde

Erschienen in: BMC Neurology | Ausgabe 1/2011

Abstract

Background

Despite negative neuroimaging findings many athletes display neurophysiological alterations and post-concussion symptoms that may be attributable to neurometabolic alterations.

Methods

The present study investigated the effects of sports concussion on brain metabolism using 1H-MR Spectroscopy by comparing a group of 10 non-concussed athletes with a group of 10 concussed athletes of the same age (mean: 22.5 years) and education (mean: 16 years) within both the acute and chronic post-injury phases. All athletes were scanned 1-6 days post-concussion and again 6-months later in a 3T Siemens MRI.

Results

Concussed athletes demonstrated neurometabolic impairment in prefrontal and motor (M1) cortices in the acute phase where NAA:Cr levels remained depressed relative to controls. There was some recovery observed in the chronic phase where Glu:Cr levels returned to those of control athletes; however, there was a pathological increase of m-I:Cr levels in M1 that was only present in the chronic phase.

Conclusions

These results confirm cortical neurometabolic changes in the acute post-concussion phase as well as recovery and continued metabolic abnormalities in the chronic phase. The results indicate that complex pathophysiological processes differ depending on the post-injury phase and the neurometabolite in question.
Hinweise

Electronic supplementary material

The online version of this article (doi:10.​1186/​1471-2377-11-105) contains supplementary material, which is available to authorized users.

Declaration of competing interests

The authors declare that they have no competing interests.

Authors' contributions

LCH was responsible for subject recruitment, data analysis and drafting of the final manuscript. ST was responsible for subject recruitment and assisted in data analysis and drafting of the manuscript. SC assisted in subject recruitment and injury diagnosis. AK and YB were responsible for spectral analyses. ED and ML participated in the design and coordination of the study and helped draft the manuscript. All authors read and approved the final manuscript.

Background

The perception of sports concussions has undergone a gradual overhaul throughout the past decade where an injury that was once considered to be inconsequential has come to be understood within the neuropsychological and medical communities to be an injury with quantifiable changes to the brain that are both transient [13] and persistent [47]. According to the current literature, transient changes are by far more abundant as most of these occur within the acute phase where athletes exhibit neurocognitive changes [810] in addition to neurophysiological alterations [1115]. Persistent changes have also been documented [47, 1619], though some doubt their clinical legitimacy, citing litigation and other secondary gains as confounds [2023].
There is a disproportionate amount of research focusing on the acute post-injury phase owing largely to the fact that this is where the most overt effects of a sports concussion can be detected. The acute post-injury phase has no strict cut-off but is generally understood to be within three months though 80-90% of patients exhibit full recovery within the first 10 days [24, 25]. Thus the chronic phase is understood to be anywhere from three months and outward post-injury in accordance with the DSM-IV-TR definition of Post-concussion Syndrome [26].
Indeed, most of the quantifiable changes associated with sports concussion are either subclinical or recovered in the acute phase [25, 27]. Typically, post-concussive symptoms all but disappear within 2-3 weeks of concussion [24, 28, 29] with only a small percentage of cases exhibiting post-concussion effects past the acute phase [7, 3032]. Neuropsychological findings are similar, with typical neurocognitive recovery taking place on the order of days to weeks, well within the 3-month window [1, 10, 15, 3335] though it can take longer in some cases, particularly if the injury is not properly managed [13, 36, 37].
Brain imaging studies conducted across the post-concussion timeline reveal variable results contingent upon the imaging technique used [[38] for review, see [39]]. Morphological changes are difficult to characterize using technologies like CT [40, 41] and MRI [41, 42] regardless of proximity to injury. Even in emergency room cases where patients are scanned within 72 hours of injury, MRI did not reveal any consistent pattern of injury across patients with injuries categorized as mild [43]. However, more recent studies have found subtle changes in the white matter of mild traumatic brain injury in non sports-related patients in the acute phase [44] and well after the acute phase [45] that are otherwise undetectable with conventional imaging techniques. Given their lack of precision in detecting signs of injury in concussion, the utility of CT and MRI in characterizing sports concussion is quite limited except in the most severe cases where symptomatology is either abnormally prolonged or severe [46].
Other imaging changes have yielded strong patterns of results in the acute (fMRI) and chronic post injury phases (transcranial magnetic stimulation-TMS, event related potentials-ERPs). Functional changes have been characterized, sharing an apparent link to symptomatology [2, 3, 5, 47, 48]. Of note, all of these studies were conducted within the acute phase when athletes were still expressing elevated symptoms. That is to say, functional alterations are linked to symptomatology and these changes dissipate concurrently with self-reported symptoms and neurocognitive recovery. Because of the strong effect of functional recovery shown there are no fMRI studies investigating sports concussion in the chronic phase. Electrophysiological techniques such as TMS [4, 16, 17] and ERP paradigms [18, 4951] have demonstrated alterations at various time points post injury with some remarkably enduring effects well passed the acute phase, even decades after the last injury.
With the paucity of data implicating any morphological changes and the lion's share of studies reporting functional changes, sports concussions are largely understood to be a functional injury [52]. This has been demonstrated more directly by three studies that used 1H-magnetic resonance spectroscopy (MRS) to characterize the post-concussion metabolic spectra [5355]. Consistent to these studies is a diminished level of N-acetylaspartate (NAA) which is thought to be indicative of reversible neuronal and/or mitochondrial dysfunction [56]. In accordance with the decrease in energy (ATP) production [57], NAA levels fall in the acute post injury phase [53, 54], but can recover in injuries that do not involve substantial permanent tissue destruction [56]. Indeed, Vagnozzi and colleagues [54] demonstrated metabolic recovery of NAA levels after 30 days in singly concussed athletes. All of this strongly suggests that there is metabolic recovery after a sports concussion, at least as it concerns NAA, but can the same be said of all neurometabolites?
Previous research has suggested that monitoring NAA levels is sufficient to conclude "full cerebral metabolic recovery" [54] after injury. Such a statement is based on two assumptions. The first is that NAA is the only neurometabolite to be affected after a concussion. Our previous work [53] demonstrated a decrease in glutamate levels in primary motor cortex in the acute post injury stage. This decrease in glutamate is consistent with the hypoglycolic state that is known to occur after closed head injury [57, 58]. Indeed, while there is an immediate post-impact spike in glutamate and glycolysis, the co-occuring drop in cerebral blood flow leads to an extended energy crisis owing to the lack of available calcium resulting in impaired oxidative metabolism [57]. This drop in glutamate has been shown to correlate with injury severity in humans, and has been shown to persist for 2-4 weeks [58]. Other studies have demonstrated metabolic alterations in choline following mTBI [5962]. Given that metabolites other than NAA have been shown to be affected due to concussion, neurometabolic recovery cannot be presumed based on NAA recovery alone. The second assumption presumes that even if other neurometabolites are affected by a concussion, all neurometabolites recover at the same rate. The current study aims to investigate this notion by comparing spectra obtained within one week (2-5 days) post concussion versus spectra obtained six months after the injury in the same athletes. Two regions of interest were employed. The first region of interest, the dorsal-lateral prefrontal cortex, was chosen based on both electrophysiological [49, 51, 63] and fMRI studies [2, 3, 5, 47, 48] that implicate this region in the effects of sports concussion. The second region, primary motor cortex, was chosen as a region of interest based on the alterations in intracortical motor inhibition seen in concussed athletes [4, 17]. Each region of interest was imaged in the left and right hemispheres for a total of four spectra per subject. Within each region of interest, three neurometabolites will be analyzed using relative quantitation methods: NAA, glutamate, and myo-Inositol. N-acetylaspartate is present at exceptionally high concentrations in the brain second only to glutamate, and is the largest peak in spectra of healthy brain tissue [56] and is thought to be a key contributor in myelin lipid formation as well as an osmoregulator [64]. Glutamate, a member of the family of biogenic amines, is the most frequently occurring neurotransmitter in the central nervous system [65, 66]. The role of glutamate is different depending on the type of receptor that it binds with: at ionotropic receptors glutamate is excitatory, whereas at metabotropic receptors it is modulatory [65]. However, glutamate has a role beyond that of neurotransmitter. It is also an important neurometabolite used in the production of nitrogen which is key in the synthesis of proteins and nucleic acid, and essential to the production of other important molecules including GABA. Myo-Inositol is synthesized throughout the body, but mostly within the brain where its concentration is also the greatest [67]. It serves as a precursor molecule for inositol lipid synthesis, but also as an osmolyte. In line with previous research we hypothesized a recovery of NAA [54] and glutamate levels [58, 68] in all regions of interest. However, we further hypothesized that myo-inositol levels would be increased in the chronic phase relative to the acute phase in concussed athletes in all regions of interest based on what has been demonstrated in other TBI studies [69, 70].

Methods

Participants

All participants in this study were active players for university level intervarsity sports teams and were recruited with help from the team physician and physiotherapists. The following exclusion criteria were applied to select the athletes who took part in this study: a history of alcohol and/or substance abuse; psychiatric illness; learning disability; neurological disorders (seizure disorder, central nervous system neoplasm, or brain tumour); and TBI unrelated to contact sports. None of the athletes who participated in this study was taking psychotropic medications at the time of testing. The study was composed of one experimental group (N = 10) examined at two different time points and a control group (N = 10) composed of athletes who had no history of head injury, sports related or otherwise, also scanned at two different time points. The experimental group consisted of 10 athletes who suffered a sports concussion. They were first scanned within the 5 days of injury (mean = 81.92 hours, SD = 46.74 hours). The second scan took place six months after the initial scan for the concussed group (mean = 6.375, SD = .41) and 18 months after the initial scan for controls (mean = 18.24, SD = 10.29). Though there is a vast difference in time between scans, the follow-ups for control athletes should not demonstrate significant change, neurometabolites remaining relatively stable in the uninjured brain [71]. Symptoms scores were taken from both groups at each time point using the Post Concussion Symptom Scale (PCSS).
All head injuries were classified as mild, with Glasgow Coma Scale scores ranging between 13 and 15 at the time of injury. A standardized concussion-history form was administered to obtain detailed information about the number of previous concussions (if any), approximate date(s) of each concussion, descriptions of the injury(ies), nature and duration of relevant postconcussion symptoms (confusion and/or disorientation, retrograde and/or anterograde amnesia, and loss of consciousness). Concussed athletes followed the return to play protocol that was adopted after the second consensus statement on concussions in sport [72] and re-endorsed after the third international consensus statement on sports concussion [52]. In brief, the athletes followed a graded return to play beginning with complete rest, followed by light physical activity. From there, athletes progressed to sport-specific exercise and then non-contact drills before returning to game play. As is standard for return to play, athletes only advanced to the next stage of physical activity if they remained symptom free at the previous one.

Neuroimaging

MR Imaging

All studies were performed at the Unité de Neuroimagerie Fonctionelle (UNF) of the Centre de Recherche de l'Institut Universitaire de Gériatrie de Montréal, using a Siemens 3-T whole-body MRI system (Siemens, Erlangen, Germany). This study was approved by the Research and Community Ethics Boards at the UNF and the Université de Montréal and done in compliance with the code of ethics as stated in the Declaration of Helsinki. All subjects gave informed consent following careful screening for MRI compatibility.

MR Spectroscopy

We positioned our regions of interest using a rigorous anatomical localization protocol. Subjects were placed in the scanner and underwent a localizer scan prescribed parallel to the hippocampus (anterior commissure-posterior commissure). Voxels were then prescribed for the dorsolateral prefrontal cortex (DLPFC) (16 mm × 16 mm × 16 mm), and primary motor cortex (M1) (16 mm × 20 mm × 32 mm) of the left and right hemispheres (see Figure 1). All voxels were placed on an AC-PC-oriented oblique axial slice corresponding to the region of interest first on a sagittal view, and then confirmed using coronal and axial views to ensure adequate distance from ventricles, fatty tissue, and bone. Single-voxel 1H-MRS spectroscopic measurements were performed using a PRESS (Point RESolved Spectroscopy) sequence (TE (echo time) = 30 ms, TR (repetition time) = 1500 ms, 256 acquisitions, 1200 Hz bandwidth, 1024 points, duration 6:30 minutes) on a 12-channel head coil. To ensure that all four regions of interest could be captured within reasonable scan duration and to ensure the behavioural quiescence of our participants in the scanner we opted for a moderate TR and shorter TE to balance between T1- and T2-associated signal losses and scan time. Outer-volume suppression bands contiguous with the PRESS-selected volume were automatically placed in all three dimensions based on the voxel size of each ROI.
Linear Combination (LC) model (Provencher, 1993), an operator-independent spectral analysis software that estimates metabolite concentrations and their ratios relative to creatine/phosphocreatine (Cr) using a set of basis reference spectra acquired from individual metabolites on our MR instrument was used for metabolite quantitation. NAA/Cr, Glu/Cr and mI/Cr were only analyzed if the estimated uncertainties calculated as Cramer-Rao lower bounds (%SD) were less than 20%. The LCModel operator was blind to group membership.

Statistics

Statistical analyses were done using SPSS (PC version 16.0). Coefficients of variance (CV) were calculated for each metabolite for metabolite ratios that had overall CV values < 20% (i.e., NAA/Cr, Glu/Cr and mI/Cr). The values from the left and right hemispheres were averaged for both regions of interest in the current study. The rationale for averaging the regions of interest across hemispheres is twofold: First, the literature suggests no lateralization effects in the regions used in the current study (Zimmerman et al., 2008; King et al., 2008; Szentkuti et al., 2004; Geurts et al., 2004). Second, it is not known if the effects of a concussion are greater at the site of impact or whether any resulting changes are distributed diffusely, regardless of impact site. Because we could not otherwise be certain as to which side of the brain received the impact in the concussed athletes, we opted to combine the spectra from both hemispheres within each region of interest. The different metabolites in any given voxel are unrelated in principle and are not correlated (Braun et al. 2002). As such, the metabolite ratios of the two groups were compared using 2-way group × time repeated measures ANOVA for each metabolite in each ROI. Tests of the simple effects were carried out on metabolites in regions that differed between concussed and control athletes. Also, tests of the simple effects were also carried out on metabolites in ROIs that had been found to differ significantly between control and concussed athletes in our previous work carried out in the acute phase only [53].

Results

Total symptom scores from the PCSS revealed a significant interaction (F (1,18) = 23.23; p = .000), where there was a significant effect of time (F (1,18) = 24.73; p = .000), and a main effect of group (F (1,18) = 5.94; p = .025), where concussed athletes were significantly more symptomatic in the acute post-injury phase (p = .003), but were statistically equivalent to controls in the chronic post-injury phase (p = .43) (results not shown).
Analyses of Glu:Cr in the DLPFC revealed no significant interaction (F (1,18) = 0.11; p = .75), no main effect of Time (F (1,18) = 1.23; p = .28) and no main effect of Group (F (1,18) = 2.28; p = .15) (Figure 2A). Similar results were found for m-I:Cr where there was no interaction (F (1,18) = 0.33; p = .58), no main effect of Time (F (1,18) = 0.02; p = .96), and no main effect of Group (F (1,18) = 0.72; p = .41) (Figure 2B). Though there was no significant interaction of NAA:Cr in DLPFC (F (1,18) = 0.69; p = .42) and no effect of Time (F (1,18) = 0.24; p = .63), there was a main effect of Group (F (1,18) = 6.87; p = .017). As seen in Figure 2C, the concussed group differed from the control group at both time points.
Within M1, Glu:Cr concentrations (Figure 3A) showed a significant time by group interaction (F (1,18) = 9.21; p = .007). There was also a significant main effect of Time (F (1,16) = 6.07; p = .024); while there was not a significant main effect of Group, there was a trend (F (1,18) = 3.48; p = .08). A simple effect analysis revealed a significant difference between control and concussed athletes in the acute phase (p = .009) but not in the chronic phase (p = .64). Further within group simple effects comparisons revealed no significant differences between time points for the control group (F (1,9) = 0.004; p = .95) while the concussed group did show a significant difference over time (F (1,9) = 11.01; p = .009). By contrast, m-I:Cr concentrations showed an interaction trend toward significance (F (1,18) = 2.84; p = .1), a trend in main effect of Time (F (1,18) = 2.79; p = .10) and no significant differences between Groups (F (1,18) = 2.75; p = .115). Despite the nonsignificance, as the group by time interaction showed p-values with a trend toward significance, further simple effects analyses were conducted (see Figure 3B). Analyses of the between-group effects revealed no significant differences in the acute phase (p = .93) but a significant difference in the chronic phase (p = .037). Within group differences between the acute and chronic phases did not reveal any significant differences in the control subjects (F (1,9) = 0.013; p = .91) but did reveal significant changes across time in the concussed subjects (F (1,9) = 5.23; p = .048). A pattern of results similar to what was shown in DLPFC was also shown in M1 concentration of NAA:Cr (see Figure 3C). There was no significant interaction (F (1,18) = 1.90; p = .19), nor was there a significant main effects of time (F (1,18) = 2.41; p = .14); however, the groups tended to differ at both time points (F (1,18) = 3.10; p = .095).

Discussion

The current study investigated neurometabolic differences between 10 non-concussed athletes and 10 concussed athletes of similar age and education in the acute and chronic post-injury phases. In the DLPFC, NAA:Cr levels remained lower in the concussed group across time. All other comparisons in DLPFC revealed no significant differences or trends. Within the motor cortex there were variable changes depending upon the metabolic ratio in question. Concussed athletes demonstrated a recovery of Glu:Cr levels across time (Figure 3A). Levels of m-I/Cr were equal between control and concussed athletes in the acute post-injury phase but there was a significant difference in the chronic phase suggesting metabolic disruptions that emerged over time as opposed to being immediately reactionary to the injury. NAA/Cr levels in M1 tended to distinguish control and concussed athletes at both time points, suggesting a similar pattern as was seen in the DLPFC.
The profiles of Glu:Cr and m-I:Cr in the DLPFC demonstrate stability within and between groups. This is consistent with the findings of Shutter et al. [73] who found that Glu:Cr levels were not predictive of outcome in patients with good outcomes either immediately post-injury or eight months post-injury relative to controls. It is difficult to draw parallels with other findings involving either increases or decreases in Glu:Cr levels as other studies have taken spectra from different brain regions and in more severely injured populations [74, 75]. Though we have previously demonstrated changes in Glu:Cr in primary motor cortex, we did not see similar alterations in DLPFC suggesting that there are biomechanical influences that are present in primary motor cortex that are not present in prefrontal areas [53, 76]. Similarly, m-I:Cr levels were also very stable both across time and between groups.
The nature of the NAA:Cr findings was unexpected given the current literature implicating decreased levels of NAA:Cr [53, 54, 62, 77]. Indeed, past research investigating the time course of NAA alterations report mixed results as one moves chronologically further away from the point of injury. Vagnozzi and colleagues [54] report recovery within 30 days, except for those athletes who received a second concussive blow during the acute phase. We reported a similar finding in a group of 12 athletes who were scanned days after sustaining a concussion [53]. Conversely, Cohen and colleagues [77] found that whole brain NAA levels remained depressed in patient groups that were days to over a year post injury. Other studies have found diminished NAA levels in similar brain regions ranging from days [70] to one month [62] to months [78] to a year [79] post-injury. Though our results are consistent with the latter group of studies showing continued depression of NAA:Cr levels, they are contrary to those of Vagnozzi and colleagues [54]. The exact nature of why there is continued depression is not immediately evident, but a few explanations for these metabolic alterations are plausible. Firstly, the current study's sample is composed of student athletes. Though the athletes followed the return to play protocol as specified in the consensus statements [52, 72], they continued to take classes and in most cases resume practice within one week after the injury during the season in addition to continued physically demanding training in the months after the season when the follow-up data were obtained. This continued cognitive and physical effort may protract a full recovery [12, 52, 80] even when return to play protocols are properly followed such that a return to preconcussion levels does take place, but outside of the window used in the current study. Another possibility that may explain the continued metabolic depression is perhaps unique to contact sports like football and hockey. Even though no athletes reported a second concussion in a single season, sustaining subconcussive blows during practices and games may have also delayed metabolic recovery, even without resulting in a second injury as some studies suggest there are consequences, even if short lived, to sustaining multiple subconcussive blows [81, 82]. Finally, it is also possible that sustaining a concussion persistently lowers NAA:Cr levels. There is ample evidence to suggest this is the case after a mTBI [70, 77, 79]. Future studies charting the time course of metabolic injury and recovery need to be conducted in order to determine whether there is recovery, in whom there is recovery, and when the recovery occurs. Though the current study investigates sports concussion, which are not necessarily equivalent to mTBI, the comparison is still worth making until more data specific to sports concussion becomes available.
Results from primary motor cortex paint a more complex picture of the metabolic state of the brain after a concussion. While depressed in the acute phase, Glu:Cr levels in concussed athletes rebound to those of control athletes in the chronic phase, elegantly demonstrating metabolic recovery. There is no precedent for Glu:Cr recovery in the mildly brain injured population, let alone in the sports literature. However, given the seemingly short lived metabolic disturbance of glutamate levels as illustrated in the neurometabolic cascade [57], we predicted just such a recovery. What remains to be further explored is when exactly between the injury and the 6-month post injury time point as measured in the current study does Glu:Cr concentration achieve physiologically typical levels and whether this metabolic resolution corresponds to symptom recovery. The reasons for affected Glu:Cr levels in M1 but not in DLPFC are not immediately apparent. However, examination of the literature investigating the biomechanics of mTBI show that the rotational forces associated with concussion suggest that M1 is consistently vulnerable to shear strain [19, 76, 8385].
M-I:Cr in M1 also showed a complex pattern of results. While there are no differences in the acute phase, there appears to be a pathological increase in m-I:Cr in the chronic phase. Other studies investigating either mixed TBI groups [70] or severe TBI [69, 74] though in different brain regions, have noted increased concentrations of m-I months and years after injury. The current data are consistent in this respect, but why these differences are not seen in the acute post injury phase is not immediately apparent. One possible explanation may be that there are two different mechanisms that help to regulate osmotic pressure in neurons and glia. Within the acute post-trauma phase this is primarily regulated by the rapid transport of Na+, K+, H+, and Cl- across the plasma membrane [86, 87]. Indeed, such an account is supported by the neurometabolic cascade as described by Giza and Hovda [57] where axonal swelling is indicative of hypernatremia [88]. To offset the ensuing water loss, the brain accumulates m-I to avoid a rapid over correction which could have devastating consequences to the brain [89]. Such a fast acting mechanism would preclude any observable changes in m-I in the acute phase which is in line with the current study's results. However, long term changes in cellular tonicity are offset by the transport of non-perturbing osmolytes that do not alter the electrophysiological state of the cell, namely m-I [87]. The increase in m-I might also be indicative of gliosis [see 90 for review]. Myo-Inositol increase in association with decreased NAA:Cr ratios has been associated with gliosis in other populations [90], while other work suggestions that gliosis is not necessarily related to altered neurometabolism [91]. Other studies investigating TBI also report increased m-I:Cr levels in both severe [69, 74] and mild injuries [70]. In addition to TBI, other pathologies that have been associated to increased levels of m-I include drug addiction and stroke [see 67 for a complete review]. Though many questions remain as to the functional significance of such an increase in m-I, we are the first to report such an effect in the sports concussion population. Further confirmation is needed to confirm the robustness of this finding in a larger sample as well as the temporal nature of the changes.
The breadth of the metabolic changes in M1 (increases in m-I/Cr and Glu/Cr) within the concussed athletes in the chronic post-injury phase as well as the significant decrease of Glu:Cr in the acute phase may be due to the biomechanics of how the brain moves within the skull when a rotation force is applied [76, 85, 92]. The respective impacts of rotational and linear forces in producing a concussion [76, 85, 9294] suggest that M1 is consistently vulnerable to the white matter injury of shear strain. The differential effects on Glu:Cr and m-I:Cr in M1 versus DLPFC are further corroborated by changes detected using diffusion tensor imaging where patients who had suffered a mTBI demonstrated reduced fractional anisotropy in the corticospinal tract indicating diffuse axonal injury where no such injury pattern was found in frontal regions [19].
NAA levels in M1 showed a statistical trend between concussed and control athletes. Indeed, the overwhelming evidence implicates diminished levels of NAA after a brain injury, whether it be mild [53, 54, 62, 70, 7779, 95] or severe [60, 70, 74, 75, 78, 96, 97]. Though the current results were not statistically significant in M1, this is consistent with what the current study demonstrates in the DLPFC. Decreased levels of NAA may be reflective of diffuse axonal injury in white matter and neuronal loss in gray matter [98], but this is a less probable interpretation given the heterogeneous nature of the neuropathological response to trauma. Declines in NAA levels are linked to decreases in ATP where the greater the initial decrease, the lesser the observed recovery. Indeed, recovery is observed in all injuries that do not include the substantial permanent destruction of brain tissue. That is to say, neurological recovery may be observed in conjunction with varying degrees of metabolic recovery where the latter need not be complete in order to observe clinical recovery in the former [56]. The persistent reduction in NAA:Cr levels observed in the current study may therefore be the consequence of a continued reduction of ATP due to the disruption of neuronal mitochondria due to the influx of Ca2+ and lactate, which is consistent with the observed post-injury cellular pathology [57]; furthermore, clinical signs seem to bear little relation to the neurometabolic anomalies observed in patients suggesting a highly variable relationship between injury severity and metabolic changes past the immediate (minutes) post-injury phase [57]. It is thus conceivable, despite the findings of Vagnozzi et al (2008) that concussed athletes do have continued metabolic disruptions despite being clinically recovered in terms of their PCSS scores. That is to say, even though concussive injuries do not typically result in observable brain trauma (i.e. MRI, CT scan), and concussed individuals typically recover from a symptom standpoint within weeks after the injury, there is a sustained and persistent effect on cellular metabolism. The continued neurometabolic alterations observed in the current study may be reflective of other pathological processes such as gliosis or cell loss. Cell loss would seem to be less probable given the time frame of 6 months post injury used in the current study, though changes in volumetry have been shown as a consequence to mTBI while other studies have measured brain volume at one year post-injury [77, 99]. Indeed, a study investigating mTBI 6 months post injury showed atrophy only in participants who had positive MR findings [100] while another some three months post injury also failed to find differences in participants who had suffered a MTBI [101]. Gliosis, as mentioned above is another possibility, but given that the current study observes an increase of m-I only in M1, it does not explain the persistence of metabolic disturbance observed in the DLPFC.

Conclusions

The current study shows a complex and varying pattern of recovery and persistent metabolic depression in different cortical areas and in different metabolites. The return of Glu:Cr levels in the concussed athletes to those of controls from the acute to the chronic phase clearly demonstrates recovery, at least insofar as glutamate is concerned. The lack of group-time interactions of NAA:Cr concentration, both in M1 and DLPFC was somewhat surprising. It may be reflective of the fact that recovery from concussion is best achieved through cognitive and physical rest as described above [52, 80]. It may also be reflective of a persistent pathological state. Indeed, there are several neuropathologies that demonstrate continued depression of NAA levels including, though not limited to, stroke, TBI of all severities, multiple sclerosis, brain tumours, Alzheimer disease, and neuro-AIDS and other infections [56]. Clearly these represent different pathologies operating on different mechanisms. However, it is also indicative of the global role of NAA as a marker of neurometabolic health, irrespective of the underlying pathology.
Though our results demonstrate recovery in one instance (Glu:Cr in M1), they also show continued metabolic disturbance in another (NAA:Cr in DLPFC and M1), and altogether new neurometabolic alteration in yet another (m-I:Cr in M1). While at first this may seem self-contradictory, that need not necessarily be the case. Currently, all we know about concussive neurometabolic changes is that several different neuronal processes are affected [57]. What is far less understood is how these processes are related and which of these processes are necessarily concurrent to one another. Subsequently, the recovery of these respective processes may indeed follow differential recovery curves as is already noted on a micro-level [57]. Future studies should include larger samples and more time intervals to chart the metabolic recovery and stability of not just Glu, NAA, and m-I, but also of GABA and choline containing compounds with the understanding that not all metabolites will follow the same recovery curve, nor will all brain areas.

Acknowledgements

This study was funded by CIHR grants to LCH, DE, and ML and an FRSQ award to ST.
This article is published under license to BioMed Central Ltd. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://​creativecommons.​org/​licenses/​by/​2.​0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

Declaration of competing interests

The authors declare that they have no competing interests.

Authors' contributions

LCH was responsible for subject recruitment, data analysis and drafting of the final manuscript. ST was responsible for subject recruitment and assisted in data analysis and drafting of the manuscript. SC assisted in subject recruitment and injury diagnosis. AK and YB were responsible for spectral analyses. ED and ML participated in the design and coordination of the study and helped draft the manuscript. All authors read and approved the final manuscript.
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Literatur
1.
Zurück zum Zitat Fazio VC, Lovell MR, Pardini JE, Collins MW: The relation between post concussion symptoms and neurocognitive performance in concussed athletes. NeuroRehabilitation. 2007, 22: 207-216.PubMed Fazio VC, Lovell MR, Pardini JE, Collins MW: The relation between post concussion symptoms and neurocognitive performance in concussed athletes. NeuroRehabilitation. 2007, 22: 207-216.PubMed
2.
Zurück zum Zitat Lovell MR, Pardini JE, Welling J, Collins MW, Bakal J, Lazar N, Roush R, Eddy WF, Becker JT: Functional brain abnormalities are related to clinical recovery and time to return-to-play in athletes. Neurosurgery. 2007, 61: 352-359. 10.1227/01.NEU.0000279985.94168.7F. discussion 359-360CrossRefPubMed Lovell MR, Pardini JE, Welling J, Collins MW, Bakal J, Lazar N, Roush R, Eddy WF, Becker JT: Functional brain abnormalities are related to clinical recovery and time to return-to-play in athletes. Neurosurgery. 2007, 61: 352-359. 10.1227/01.NEU.0000279985.94168.7F. discussion 359-360CrossRefPubMed
3.
Zurück zum Zitat Chen JK, Johnston KM, Frey S, Petrides M, Worsley K, Ptito A: Functional abnormalities in symptomatic concussed athletes: an fMRI study. Neuroimage. 2004, 22: 68-82. 10.1016/j.neuroimage.2003.12.032.CrossRefPubMed Chen JK, Johnston KM, Frey S, Petrides M, Worsley K, Ptito A: Functional abnormalities in symptomatic concussed athletes: an fMRI study. Neuroimage. 2004, 22: 68-82. 10.1016/j.neuroimage.2003.12.032.CrossRefPubMed
4.
Zurück zum Zitat De Beaumont L, Theoret H, Mongeon D, Messier J, Leclerc S, Tremblay S, Ellemberg D, Lassonde M: Brain function decline in healthy retired athletes who sustained their last sports concussion in early adulthood. Brain. 2009, 132: 695-708. 10.1093/brain/awn347.CrossRefPubMed De Beaumont L, Theoret H, Mongeon D, Messier J, Leclerc S, Tremblay S, Ellemberg D, Lassonde M: Brain function decline in healthy retired athletes who sustained their last sports concussion in early adulthood. Brain. 2009, 132: 695-708. 10.1093/brain/awn347.CrossRefPubMed
5.
Zurück zum Zitat Chen SH, Kareken DA, Fastenau PS, Trexler LE, Hutchins GD: A study of persistent post-concussion symptoms in mild head trauma using positron emission tomography. J Neurol Neurosurg Psychiatry. 2003, 74: 326-332. 10.1136/jnnp.74.3.326.CrossRefPubMedPubMedCentral Chen SH, Kareken DA, Fastenau PS, Trexler LE, Hutchins GD: A study of persistent post-concussion symptoms in mild head trauma using positron emission tomography. J Neurol Neurosurg Psychiatry. 2003, 74: 326-332. 10.1136/jnnp.74.3.326.CrossRefPubMedPubMedCentral
6.
Zurück zum Zitat Gaetz M, Weinberg H: Electrophysiological indices of persistent post-concussion symptoms. Brain Inj. 2000, 14: 815-832. 10.1080/026990500421921.CrossRefPubMed Gaetz M, Weinberg H: Electrophysiological indices of persistent post-concussion symptoms. Brain Inj. 2000, 14: 815-832. 10.1080/026990500421921.CrossRefPubMed
7.
Zurück zum Zitat Sterr A, Herron K, Hayward C, Montaldi D: Are mild head injuries as mild as we think? Neurobehavioral concomitants of chronic post-concussion syndrome. BMC Neurol. 2006, 6: 7-10.1186/1471-2377-6-7.CrossRefPubMedPubMedCentral Sterr A, Herron K, Hayward C, Montaldi D: Are mild head injuries as mild as we think? Neurobehavioral concomitants of chronic post-concussion syndrome. BMC Neurol. 2006, 6: 7-10.1186/1471-2377-6-7.CrossRefPubMedPubMedCentral
8.
Zurück zum Zitat Arciniegas DB, Held K, Wagner P: Cognitive Impairment Following Traumatic Brain Injury. Curr Treat Options Neurol. 2002, 4: 43-57. 10.1007/s11940-002-0004-6.CrossRefPubMed Arciniegas DB, Held K, Wagner P: Cognitive Impairment Following Traumatic Brain Injury. Curr Treat Options Neurol. 2002, 4: 43-57. 10.1007/s11940-002-0004-6.CrossRefPubMed
9.
Zurück zum Zitat Barth JT, Macciocchi SN, Giordani B, Rimel R, Jane JA, Boll TJ: Neuropsychological sequelae of minor head injury. Neurosurgery. 1983, 13: 529-533. 10.1227/00006123-198311000-00008.CrossRefPubMed Barth JT, Macciocchi SN, Giordani B, Rimel R, Jane JA, Boll TJ: Neuropsychological sequelae of minor head injury. Neurosurgery. 1983, 13: 529-533. 10.1227/00006123-198311000-00008.CrossRefPubMed
10.
Zurück zum Zitat Collins MW, Grindel SH, Lovell MR, Dede DE, Moser DJ, Phalin BR, Nogle S, Wasik M, Cordry D, Daugherty KM, et al: Relationship between concussion and neuropsychological performance in college football players. Jama. 1999, 282: 964-970. 10.1001/jama.282.10.964.CrossRefPubMed Collins MW, Grindel SH, Lovell MR, Dede DE, Moser DJ, Phalin BR, Nogle S, Wasik M, Cordry D, Daugherty KM, et al: Relationship between concussion and neuropsychological performance in college football players. Jama. 1999, 282: 964-970. 10.1001/jama.282.10.964.CrossRefPubMed
11.
Zurück zum Zitat Alves W, Macciocchi SN, Barth JT: Post concussive symptoms following uncomplicated mild head injury. Journal of Head Trauma and Rehabilitation. 1993, 8: 48-59.CrossRef Alves W, Macciocchi SN, Barth JT: Post concussive symptoms following uncomplicated mild head injury. Journal of Head Trauma and Rehabilitation. 1993, 8: 48-59.CrossRef
12.
Zurück zum Zitat Asplund CA, McKeag DB, Olsen CH: Sport-related concussion: factors associated with prolonged return to play. Clin J Sport Med. 2004, 14: 339-343. 10.1097/00042752-200411000-00003.CrossRefPubMed Asplund CA, McKeag DB, Olsen CH: Sport-related concussion: factors associated with prolonged return to play. Clin J Sport Med. 2004, 14: 339-343. 10.1097/00042752-200411000-00003.CrossRefPubMed
13.
Zurück zum Zitat Cantu RC: Cerebral concussion in sport. Management and prevention. Sports Med. 1992, 14: 64-74. 10.2165/00007256-199214010-00005.CrossRefPubMed Cantu RC: Cerebral concussion in sport. Management and prevention. Sports Med. 1992, 14: 64-74. 10.2165/00007256-199214010-00005.CrossRefPubMed
14.
Zurück zum Zitat Cantu RC: Posttraumatic Retrograde and Anterograde Amnesia: Pathophysiology and Implications in Grading and Safe Return to Play. J Athl Train. 2001, 36: 244-248.PubMedPubMedCentral Cantu RC: Posttraumatic Retrograde and Anterograde Amnesia: Pathophysiology and Implications in Grading and Safe Return to Play. J Athl Train. 2001, 36: 244-248.PubMedPubMedCentral
15.
Zurück zum Zitat Collins MW, Field M, Lovell MR, Iverson G, Johnston KM, Maroon J, Fu FH: Relationship between postconcussion headache and neuropsychological test performance in high school athletes. Am J Sports Med. 2003, 31: 168-173.PubMed Collins MW, Field M, Lovell MR, Iverson G, Johnston KM, Maroon J, Fu FH: Relationship between postconcussion headache and neuropsychological test performance in high school athletes. Am J Sports Med. 2003, 31: 168-173.PubMed
16.
Zurück zum Zitat De Beaumont L, Brisson B, Lassonde M, Jolicoeur P: Long-term electrophysiological changes in athletes with a history of multiple concussions. Brain Inj. 2007, 21: 631-644. 10.1080/02699050701426931.CrossRefPubMed De Beaumont L, Brisson B, Lassonde M, Jolicoeur P: Long-term electrophysiological changes in athletes with a history of multiple concussions. Brain Inj. 2007, 21: 631-644. 10.1080/02699050701426931.CrossRefPubMed
17.
Zurück zum Zitat De Beaumont L, Lassonde M, Leclerc S, Theoret H: Long-term and cumulative effects of sports concussion on motor cortex inhibition. Neurosurgery. 2007, 61: 329-336. 10.1227/01.NEU.0000280000.03578.B6. discussion 336-327CrossRefPubMed De Beaumont L, Lassonde M, Leclerc S, Theoret H: Long-term and cumulative effects of sports concussion on motor cortex inhibition. Neurosurgery. 2007, 61: 329-336. 10.1227/01.NEU.0000280000.03578.B6. discussion 336-327CrossRefPubMed
18.
Zurück zum Zitat Theriault M, De Beaumont L, Gosselin N, Filipinni M, Lassonde M: Electrophysiological abnormalities in well functioning multiple concussed athletes. Brain Inj. 2009, 23: 899-906. 10.1080/02699050903283189.CrossRefPubMed Theriault M, De Beaumont L, Gosselin N, Filipinni M, Lassonde M: Electrophysiological abnormalities in well functioning multiple concussed athletes. Brain Inj. 2009, 23: 899-906. 10.1080/02699050903283189.CrossRefPubMed
19.
Zurück zum Zitat Kraus MF, Susmaras T, Caughlin BP, Walker CJ, Sweeney JA, Little DM: White matter integrity and cognition in chronic traumatic brain injury: a diffusion tensor imaging study. Brain. 2007, 130: 2508-2519. 10.1093/brain/awm216.CrossRefPubMed Kraus MF, Susmaras T, Caughlin BP, Walker CJ, Sweeney JA, Little DM: White matter integrity and cognition in chronic traumatic brain injury: a diffusion tensor imaging study. Brain. 2007, 130: 2508-2519. 10.1093/brain/awm216.CrossRefPubMed
20.
21.
Zurück zum Zitat Iverson GL: Outcome from mild traumatic brain injury. Curr Opin Psychiatry. 2005, 18: 301-317. 10.1097/01.yco.0000165601.29047.ae.CrossRefPubMed Iverson GL: Outcome from mild traumatic brain injury. Curr Opin Psychiatry. 2005, 18: 301-317. 10.1097/01.yco.0000165601.29047.ae.CrossRefPubMed
22.
Zurück zum Zitat Macleod AD: Post concussion syndrome: the attraction of the psychological by the organic. Med Hypotheses. 2010, 74: 1033-1035. 10.1016/j.mehy.2010.01.002.CrossRef Macleod AD: Post concussion syndrome: the attraction of the psychological by the organic. Med Hypotheses. 2010, 74: 1033-1035. 10.1016/j.mehy.2010.01.002.CrossRef
23.
Zurück zum Zitat Ruff R: Best practice guidelines for forensic neuropsychological examinations of patients with traumatic brain injury. J Head Trauma Rehabil. 2009, 24: 131-140. 10.1097/01.HTR.0000348755.42649.e9.CrossRefPubMed Ruff R: Best practice guidelines for forensic neuropsychological examinations of patients with traumatic brain injury. J Head Trauma Rehabil. 2009, 24: 131-140. 10.1097/01.HTR.0000348755.42649.e9.CrossRefPubMed
24.
Zurück zum Zitat McCrea M, Guskiewicz KM, Marshall SW, Barr W, Randolph C, Cantu RC, Onate JA, Yang J, Kelly JP: Acute effects and recovery time following concussion in collegiate football players: the NCAA Concussion Study. Jama. 2003, 290: 2556-2563. 10.1001/jama.290.19.2556.CrossRefPubMed McCrea M, Guskiewicz KM, Marshall SW, Barr W, Randolph C, Cantu RC, Onate JA, Yang J, Kelly JP: Acute effects and recovery time following concussion in collegiate football players: the NCAA Concussion Study. Jama. 2003, 290: 2556-2563. 10.1001/jama.290.19.2556.CrossRefPubMed
25.
Zurück zum Zitat Holm L, Cassidy JD, Carroll LJ, Borg J: Summary of the WHO Collaborating Centre for Neurotrauma Task Force on Mild Traumatic Brain Injury. J Rehabil Med. 2005, 37: 137-141. 10.1080/16501970510027321.CrossRefPubMed Holm L, Cassidy JD, Carroll LJ, Borg J: Summary of the WHO Collaborating Centre for Neurotrauma Task Force on Mild Traumatic Brain Injury. J Rehabil Med. 2005, 37: 137-141. 10.1080/16501970510027321.CrossRefPubMed
26.
Zurück zum Zitat DSM-IV: Diagnostic and Statistical Manual of Mental Disorders. 2000, Washington D.C.: American Psychiatric Association, text revision edition, 4 DSM-IV: Diagnostic and Statistical Manual of Mental Disorders. 2000, Washington D.C.: American Psychiatric Association, text revision edition, 4
27.
Zurück zum Zitat McCrea MA: Mild Traumatic Brain Injury and Postconcussion Syndrome. 2008, New York: Oxford University Press McCrea MA: Mild Traumatic Brain Injury and Postconcussion Syndrome. 2008, New York: Oxford University Press
28.
Zurück zum Zitat Macciocchi SN, Barth JT, Alves W, Rimel RW, Jane JA: Neuropsychological functioning and recovery after mild head injury in collegiate athletes. Neurosurgery. 1996, 39: 510-514.PubMed Macciocchi SN, Barth JT, Alves W, Rimel RW, Jane JA: Neuropsychological functioning and recovery after mild head injury in collegiate athletes. Neurosurgery. 1996, 39: 510-514.PubMed
29.
Zurück zum Zitat Lovell MR, Collins MW, Iverson GL, Field M, Maroon JC, Cantu R, Podell K, Powell JW, Belza M, Fu FH: Recovery from mild concussion in high school athletes. J Neurosurg. 2003, 98: 296-301. 10.3171/jns.2003.98.2.0296.CrossRefPubMed Lovell MR, Collins MW, Iverson GL, Field M, Maroon JC, Cantu R, Podell K, Powell JW, Belza M, Fu FH: Recovery from mild concussion in high school athletes. J Neurosurg. 2003, 98: 296-301. 10.3171/jns.2003.98.2.0296.CrossRefPubMed
30.
Zurück zum Zitat Fleminger S: Long-term psychiatric disorders after traumatic brain injury. Eur J Anaesthesiol Suppl. 2008, 42: 123-130.CrossRefPubMed Fleminger S: Long-term psychiatric disorders after traumatic brain injury. Eur J Anaesthesiol Suppl. 2008, 42: 123-130.CrossRefPubMed
31.
Zurück zum Zitat Ryan LM, Warden DL: Post concussion syndrome. Int Rev Psychiatry. 2003, 15: 310-316. 10.1080/09540260310001606692.CrossRefPubMed Ryan LM, Warden DL: Post concussion syndrome. Int Rev Psychiatry. 2003, 15: 310-316. 10.1080/09540260310001606692.CrossRefPubMed
32.
Zurück zum Zitat Warden DL, Bleiberg J, Cameron KL, Ecklund J, Walter J, Sparling MB, Reeves D, Reynolds KY, Arciero R: Persistent prolongation of simple reaction time in sports concussion. Neurology. 2001, 57: 524-526.CrossRefPubMed Warden DL, Bleiberg J, Cameron KL, Ecklund J, Walter J, Sparling MB, Reeves D, Reynolds KY, Arciero R: Persistent prolongation of simple reaction time in sports concussion. Neurology. 2001, 57: 524-526.CrossRefPubMed
33.
Zurück zum Zitat Iverson GL, Brooks BL, Collins MW, Lovell MR: Tracking neuropsychological recovery following concussion in sport. Brain Injury. 2006, 20: 245-252. 10.1080/02699050500487910.CrossRefPubMed Iverson GL, Brooks BL, Collins MW, Lovell MR: Tracking neuropsychological recovery following concussion in sport. Brain Injury. 2006, 20: 245-252. 10.1080/02699050500487910.CrossRefPubMed
34.
Zurück zum Zitat Lovell M, Collins M: Neuropsychological assessment of the college football player. Journal of head trauma rehabilitation. 1998, 13: 9-26. 10.1097/00001199-199804000-00004.CrossRefPubMed Lovell M, Collins M: Neuropsychological assessment of the college football player. Journal of head trauma rehabilitation. 1998, 13: 9-26. 10.1097/00001199-199804000-00004.CrossRefPubMed
35.
Zurück zum Zitat Majerske CW, Mihalik JP, Ren D, Collins MW, Reddy CC, Lovell MR, Wagner AK: Concussion in sports: postconcussive activity levels, symptoms, and neurocognitive performance. J Athl Train. 2008, 43: 265-274. 10.4085/1062-6050-43.3.265.CrossRefPubMedPubMedCentral Majerske CW, Mihalik JP, Ren D, Collins MW, Reddy CC, Lovell MR, Wagner AK: Concussion in sports: postconcussive activity levels, symptoms, and neurocognitive performance. J Athl Train. 2008, 43: 265-274. 10.4085/1062-6050-43.3.265.CrossRefPubMedPubMedCentral
36.
Zurück zum Zitat Notebaert AJ, Guskiewicz KM: Current trends in athletic training practice for concussion assessment and management. J Athl Train. 2005, 40: 320-325.PubMedPubMedCentral Notebaert AJ, Guskiewicz KM: Current trends in athletic training practice for concussion assessment and management. J Athl Train. 2005, 40: 320-325.PubMedPubMedCentral
37.
Zurück zum Zitat Willer B, Leddy JJ: Management of concussion and post-concussion syndrome. Curr Treat Options Neurol. 2006, 8: 415-426. 10.1007/s11940-006-0031-9.CrossRefPubMed Willer B, Leddy JJ: Management of concussion and post-concussion syndrome. Curr Treat Options Neurol. 2006, 8: 415-426. 10.1007/s11940-006-0031-9.CrossRefPubMed
38.
Zurück zum Zitat Johnston KM, Ptito A, Chankowsky J, Chen JK: New frontiers in diagnostic imaging in concussive head injury. Clin J Sport Med. 2001, 11: 166-175. 10.1097/00042752-200107000-00007.CrossRefPubMed Johnston KM, Ptito A, Chankowsky J, Chen JK: New frontiers in diagnostic imaging in concussive head injury. Clin J Sport Med. 2001, 11: 166-175. 10.1097/00042752-200107000-00007.CrossRefPubMed
39.
Zurück zum Zitat Ellemberg D, Henry LC, Macciocchi SN, Guskiewicz KM, Broglio SP: Advances in sport concussion assessment: from behavioral to brain imaging measures. J Neurotrauma. 2009, 26: 2365-2382. 10.1089/neu.2009.0906.CrossRefPubMed Ellemberg D, Henry LC, Macciocchi SN, Guskiewicz KM, Broglio SP: Advances in sport concussion assessment: from behavioral to brain imaging measures. J Neurotrauma. 2009, 26: 2365-2382. 10.1089/neu.2009.0906.CrossRefPubMed
40.
Zurück zum Zitat Jordan BD, Jahre C, Hauser WA, Zimmerman RD, Zarrelli M, Lipsitz EC, Johnson V, Warren RF, Tsairis P, Folk FS: CT of 338 active professional boxers. Radiology. 1992, 185: 509-512.CrossRefPubMed Jordan BD, Jahre C, Hauser WA, Zimmerman RD, Zarrelli M, Lipsitz EC, Johnson V, Warren RF, Tsairis P, Folk FS: CT of 338 active professional boxers. Radiology. 1992, 185: 509-512.CrossRefPubMed
41.
Zurück zum Zitat Jordan BD, Zimmerman RD: Computed tomography and magnetic resonance imaging comparisons in boxers. JAMA. 1990, 263: 1670-1674. 10.1001/jama.263.12.1670.CrossRefPubMed Jordan BD, Zimmerman RD: Computed tomography and magnetic resonance imaging comparisons in boxers. JAMA. 1990, 263: 1670-1674. 10.1001/jama.263.12.1670.CrossRefPubMed
42.
Zurück zum Zitat Jordan BD, Zimmerman RD: Magnetic resonance imaging in amateur boxers. Arch Neurol. 1988, 45: 1207-1208.CrossRefPubMed Jordan BD, Zimmerman RD: Magnetic resonance imaging in amateur boxers. Arch Neurol. 1988, 45: 1207-1208.CrossRefPubMed
43.
Zurück zum Zitat Snow RB, Zimmerman RD, Gandy SE, Deck MD: Comparison of magnetic resonance imaging and computed tomography in the evaluation of head injury. Neurosurgery. 1986, 18: 45-52. 10.1227/00006123-198601000-00008.CrossRefPubMed Snow RB, Zimmerman RD, Gandy SE, Deck MD: Comparison of magnetic resonance imaging and computed tomography in the evaluation of head injury. Neurosurgery. 1986, 18: 45-52. 10.1227/00006123-198601000-00008.CrossRefPubMed
44.
Zurück zum Zitat Wu TC, Wilde EA, Bigler ED, Yallampalli R, McCauley SR, Troyanskaya M, Chu Z, Li X, Hanten G, Hunter JV, Levin HS: Evaluating the Relationship between Memory Functioning and Cingulum Bundles in Acute Mild Traumatic Brain Injury Using Diffusion Tensor Imaging. J Neurotrauma. 2010 Wu TC, Wilde EA, Bigler ED, Yallampalli R, McCauley SR, Troyanskaya M, Chu Z, Li X, Hanten G, Hunter JV, Levin HS: Evaluating the Relationship between Memory Functioning and Cingulum Bundles in Acute Mild Traumatic Brain Injury Using Diffusion Tensor Imaging. J Neurotrauma. 2010
45.
Zurück zum Zitat Levin H, Wilde EA, Troyanskaya M, Petersen N, Scheibel R, Newsome M, Radaideh M, Wu T, Yallampalli R, Chu Z, Li X: Diffusion Tensor Imaging of Mild to Moderate Blast Related TBI and its Sequelae. J Neurotrauma. 2010 Levin H, Wilde EA, Troyanskaya M, Petersen N, Scheibel R, Newsome M, Radaideh M, Wu T, Yallampalli R, Chu Z, Li X: Diffusion Tensor Imaging of Mild to Moderate Blast Related TBI and its Sequelae. J Neurotrauma. 2010
46.
Zurück zum Zitat Aubry M, Cantu R, Dvorak J, Graf-Baumann T, Johnston K, Kelly J, Lovell M, McCrory P, Meeuwisse W, Schamasch P: Summary and agreement statement of the First International Conference on Concussion in Sport, Vienna 2001. Recommendations for the improvement of safety and health of athletes who may suffer concussive injuries. Br J Sports Med. 2002, 36: 6-10. 10.1136/bjsm.36.1.6.CrossRefPubMedPubMedCentral Aubry M, Cantu R, Dvorak J, Graf-Baumann T, Johnston K, Kelly J, Lovell M, McCrory P, Meeuwisse W, Schamasch P: Summary and agreement statement of the First International Conference on Concussion in Sport, Vienna 2001. Recommendations for the improvement of safety and health of athletes who may suffer concussive injuries. Br J Sports Med. 2002, 36: 6-10. 10.1136/bjsm.36.1.6.CrossRefPubMedPubMedCentral
47.
Zurück zum Zitat Chen JK, Johnston KM, Petrides M, Ptito A: Neural substrates of symptoms of depression following concussion in male athletes with persisting postconcussion symptoms. Arch Gen Psychiatry. 2008, 65: 81-89. 10.1001/archgenpsychiatry.2007.8.CrossRefPubMed Chen JK, Johnston KM, Petrides M, Ptito A: Neural substrates of symptoms of depression following concussion in male athletes with persisting postconcussion symptoms. Arch Gen Psychiatry. 2008, 65: 81-89. 10.1001/archgenpsychiatry.2007.8.CrossRefPubMed
48.
Zurück zum Zitat Jantzen KJ, Anderson B, Steinberg FL, Kelso JA: A prospective functional MR imaging study of mild traumatic brain injury in college football players. AJNR Am J Neuroradiol. 2004, 25: 738-745.PubMed Jantzen KJ, Anderson B, Steinberg FL, Kelso JA: A prospective functional MR imaging study of mild traumatic brain injury in college football players. AJNR Am J Neuroradiol. 2004, 25: 738-745.PubMed
49.
Zurück zum Zitat Dupuis F, Johnston KM, Lavoie M, Lepore F, Lassonde M: Concussions in athletes produce brain dysfunction as revealed by event-related potentials. Neuroreport. 2000, 11: 4087-4092. 10.1097/00001756-200012180-00035.CrossRefPubMed Dupuis F, Johnston KM, Lavoie M, Lepore F, Lassonde M: Concussions in athletes produce brain dysfunction as revealed by event-related potentials. Neuroreport. 2000, 11: 4087-4092. 10.1097/00001756-200012180-00035.CrossRefPubMed
50.
Zurück zum Zitat Lavoie ME, Dupuis F, Johnston KM, Leclerc S, Lassonde M: Visual p300 effects beyond symptoms in concussed college athletes. J Clin Exp Neuropsychol. 2004, 26: 55-73. 10.1076/jcen.26.1.55.23936.CrossRefPubMed Lavoie ME, Dupuis F, Johnston KM, Leclerc S, Lassonde M: Visual p300 effects beyond symptoms in concussed college athletes. J Clin Exp Neuropsychol. 2004, 26: 55-73. 10.1076/jcen.26.1.55.23936.CrossRefPubMed
51.
Zurück zum Zitat Gosselin N, Theriault M, Leclerc S, Montplaisir J, Lassonde M: Neurophysiological anomalies in symptomatic and asymptomatic concussed athletes. Neurosurgery. 2006, 58: 1151-1161. 10.1227/01.NEU.0000215953.44097.FA. discussion 1151-1161CrossRefPubMed Gosselin N, Theriault M, Leclerc S, Montplaisir J, Lassonde M: Neurophysiological anomalies in symptomatic and asymptomatic concussed athletes. Neurosurgery. 2006, 58: 1151-1161. 10.1227/01.NEU.0000215953.44097.FA. discussion 1151-1161CrossRefPubMed
52.
Zurück zum Zitat McCrory P, Meeuwisse W, Johnston K, Dvorak J, Aubry M, Molloy M, Cantu R: Consensus statement on Concussion in Sport 3rd International Conference on Concussion in Sport held in Zurich, November 2008. Clin J Sport Med. 2009, 19: 185-200. 10.1097/JSM.0b013e3181a501db.CrossRefPubMed McCrory P, Meeuwisse W, Johnston K, Dvorak J, Aubry M, Molloy M, Cantu R: Consensus statement on Concussion in Sport 3rd International Conference on Concussion in Sport held in Zurich, November 2008. Clin J Sport Med. 2009, 19: 185-200. 10.1097/JSM.0b013e3181a501db.CrossRefPubMed
53.
Zurück zum Zitat Henry LC, Tremblay S, Boulanger Y, Ellemberg D, Lassonde M: Neurometabolic changes in the acute phase after sports concussions correlate with symptom severity. J Neurotrauma. 2010, 27: 65-76. 10.1089/neu.2009.0962.CrossRefPubMed Henry LC, Tremblay S, Boulanger Y, Ellemberg D, Lassonde M: Neurometabolic changes in the acute phase after sports concussions correlate with symptom severity. J Neurotrauma. 2010, 27: 65-76. 10.1089/neu.2009.0962.CrossRefPubMed
54.
Zurück zum Zitat Vagnozzi R, Signoretti S, Tavazzi B, Floris R, Ludovici A, Marziali S, Tarascio G, Amorini AM, Di Pietro V, Delfini R, Lazzarino G: Temporal window of metabolic brain vulnerability to concussion: a pilot 1H-magnetic resonance spectroscopic study in concussed athletes--part III. Neurosurgery. 2008, 62: 1286-1295. 10.1227/01.neu.0000333300.34189.74. discussion 1295-1286CrossRefPubMed Vagnozzi R, Signoretti S, Tavazzi B, Floris R, Ludovici A, Marziali S, Tarascio G, Amorini AM, Di Pietro V, Delfini R, Lazzarino G: Temporal window of metabolic brain vulnerability to concussion: a pilot 1H-magnetic resonance spectroscopic study in concussed athletes--part III. Neurosurgery. 2008, 62: 1286-1295. 10.1227/01.neu.0000333300.34189.74. discussion 1295-1286CrossRefPubMed
55.
Zurück zum Zitat Cimatti M: Assessment of metabolic cerebral damage using proton magnetic resonance spectroscopy in mild traumatic brain injury. J Neurosurg Sci. 2006, 50: 83-88.PubMed Cimatti M: Assessment of metabolic cerebral damage using proton magnetic resonance spectroscopy in mild traumatic brain injury. J Neurosurg Sci. 2006, 50: 83-88.PubMed
56.
Zurück zum Zitat Moffett JR, Ross B, Arun P, Madhavarao CN, Namboodiri AM: N-Acetylaspartate in the CNS: from neurodiagnostics to neurobiology. Prog Neurobiol. 2007, 81: 89-131. 10.1016/j.pneurobio.2006.12.003.CrossRefPubMedPubMedCentral Moffett JR, Ross B, Arun P, Madhavarao CN, Namboodiri AM: N-Acetylaspartate in the CNS: from neurodiagnostics to neurobiology. Prog Neurobiol. 2007, 81: 89-131. 10.1016/j.pneurobio.2006.12.003.CrossRefPubMedPubMedCentral
58.
Zurück zum Zitat Bergsneider M, Hovda DA, Lee SM, Kelly DF, McArthur DL, Vespa PM, Lee JH, Huang SC, Martin NA, Phelps ME, Becker DP: Dissociation of cerebral glucose metabolism and level of consciousness during the period of metabolic depression following human traumatic brain injury. J Neurotrauma. 2000, 17: 389-401. 10.1089/neu.2000.17.389.CrossRefPubMed Bergsneider M, Hovda DA, Lee SM, Kelly DF, McArthur DL, Vespa PM, Lee JH, Huang SC, Martin NA, Phelps ME, Becker DP: Dissociation of cerebral glucose metabolism and level of consciousness during the period of metabolic depression following human traumatic brain injury. J Neurotrauma. 2000, 17: 389-401. 10.1089/neu.2000.17.389.CrossRefPubMed
59.
Zurück zum Zitat Payen JF, Francony G, Fauvage B, Le Bas JF: [Contribution of magnetic resonance spectroscopy in predicting severity and outcome in traumatic brain injury]. Ann Fr Anesth Reanim. 2005, 24: 522-527.CrossRefPubMed Payen JF, Francony G, Fauvage B, Le Bas JF: [Contribution of magnetic resonance spectroscopy in predicting severity and outcome in traumatic brain injury]. Ann Fr Anesth Reanim. 2005, 24: 522-527.CrossRefPubMed
60.
Zurück zum Zitat Marino S, Zei E, Battaglini M, Vittori C, Buscalferri A, Bramanti P, Federico A, De Stefano N: Acute metabolic brain changes following traumatic brain injury and their relevance to clinical severity and outcome. J Neurol Neurosurg Psychiatry. 2007, 78: 501-507.CrossRefPubMed Marino S, Zei E, Battaglini M, Vittori C, Buscalferri A, Bramanti P, Federico A, De Stefano N: Acute metabolic brain changes following traumatic brain injury and their relevance to clinical severity and outcome. J Neurol Neurosurg Psychiatry. 2007, 78: 501-507.CrossRefPubMed
61.
Zurück zum Zitat Kirov I, Fleysher L, Babb JS, Silver JM, Grossman RI, Gonen O: Characterizing 'mild' in traumatic brain injury with proton MR spectroscopy in the thalamus: Initial findings. Brain Inj. 2007, 21: 1147-1154. 10.1080/02699050701630383.CrossRefPubMed Kirov I, Fleysher L, Babb JS, Silver JM, Grossman RI, Gonen O: Characterizing 'mild' in traumatic brain injury with proton MR spectroscopy in the thalamus: Initial findings. Brain Inj. 2007, 21: 1147-1154. 10.1080/02699050701630383.CrossRefPubMed
62.
Zurück zum Zitat Govindaraju V, Gauger GE, Manley GT, Ebel A, Meeker M, Maudsley AA: Volumetric proton spectroscopic imaging of mild traumatic brain injury. AJNR Am J Neuroradiol. 2004, 25: 730-737.PubMed Govindaraju V, Gauger GE, Manley GT, Ebel A, Meeker M, Maudsley AA: Volumetric proton spectroscopic imaging of mild traumatic brain injury. AJNR Am J Neuroradiol. 2004, 25: 730-737.PubMed
63.
Zurück zum Zitat Gaetz M, Goodman D, Weinberg H: Electrophysiological evidence for the cumulative effects of concussion. Brain Inj. 2000, 14: 1077-1088. 10.1080/02699050050203577.CrossRefPubMed Gaetz M, Goodman D, Weinberg H: Electrophysiological evidence for the cumulative effects of concussion. Brain Inj. 2000, 14: 1077-1088. 10.1080/02699050050203577.CrossRefPubMed
64.
Zurück zum Zitat Taylor DL, Davies SE, Obrenovitch TP, Urenjak J, Richards DA, Clark JB, Symon L: Extracellular N-acetylaspartate in the rat brain: in vivo determination of basal levels and changes evoked by high K+. J Neurochem. 1994, 62: 2349-2355.CrossRefPubMed Taylor DL, Davies SE, Obrenovitch TP, Urenjak J, Richards DA, Clark JB, Symon L: Extracellular N-acetylaspartate in the rat brain: in vivo determination of basal levels and changes evoked by high K+. J Neurochem. 1994, 62: 2349-2355.CrossRefPubMed
65.
Zurück zum Zitat Kandel E, Schwartz J, Jessell T: Principles of Neuroscience. 2000, New York: McGraw-Hill, 4 Kandel E, Schwartz J, Jessell T: Principles of Neuroscience. 2000, New York: McGraw-Hill, 4
66.
Zurück zum Zitat Barr M: The Human Nervous System: An Anatomical Viewpoint. 2005, Baltimore MD, Philadelphia PA: Lipincott Williams & Wilkins, 8 Barr M: The Human Nervous System: An Anatomical Viewpoint. 2005, Baltimore MD, Philadelphia PA: Lipincott Williams & Wilkins, 8
67.
Zurück zum Zitat Fisher SK, Novak JE, Agranoff BW: Inositol and higher inositol phosphates in neural tissues: homeostasis, metabolism and functional significance. J Neurochem. 2002, 82: 736-754. 10.1046/j.1471-4159.2002.01041.x.CrossRefPubMed Fisher SK, Novak JE, Agranoff BW: Inositol and higher inositol phosphates in neural tissues: homeostasis, metabolism and functional significance. J Neurochem. 2002, 82: 736-754. 10.1046/j.1471-4159.2002.01041.x.CrossRefPubMed
68.
Zurück zum Zitat Bergsneider M, Hovda DA, McArthur DL, Etchepare M, Huang SC, Sehati N, Satz P, Phelps ME, Becker DP: Metabolic recovery following human traumatic brain injury based on FDG-PET: time course and relationship to neurological disability. J Head Trauma Rehabil. 2001, 16: 135-148. 10.1097/00001199-200104000-00004.CrossRefPubMed Bergsneider M, Hovda DA, McArthur DL, Etchepare M, Huang SC, Sehati N, Satz P, Phelps ME, Becker DP: Metabolic recovery following human traumatic brain injury based on FDG-PET: time course and relationship to neurological disability. J Head Trauma Rehabil. 2001, 16: 135-148. 10.1097/00001199-200104000-00004.CrossRefPubMed
69.
Zurück zum Zitat Yoon SJ, Lee JH, Kim ST, Chun MH: Evaluation of traumatic brain injured patients in correlation with functional status by localized 1H-MR spectroscopy. Clin Rehabil. 2005, 19: 209-215. 10.1191/0269215505cr813oa.CrossRefPubMed Yoon SJ, Lee JH, Kim ST, Chun MH: Evaluation of traumatic brain injured patients in correlation with functional status by localized 1H-MR spectroscopy. Clin Rehabil. 2005, 19: 209-215. 10.1191/0269215505cr813oa.CrossRefPubMed
70.
Zurück zum Zitat Garnett MR, Blamire AM, Corkill RG, Cadoux-Hudson TA, Rajagopalan B, Styles P: Early proton magnetic resonance spectroscopy in normal-appearing brain correlates with outcome in patients following traumatic brain injury. Brain. 2000, 123 (Pt 10): 2046-2054.CrossRefPubMed Garnett MR, Blamire AM, Corkill RG, Cadoux-Hudson TA, Rajagopalan B, Styles P: Early proton magnetic resonance spectroscopy in normal-appearing brain correlates with outcome in patients following traumatic brain injury. Brain. 2000, 123 (Pt 10): 2046-2054.CrossRefPubMed
71.
Zurück zum Zitat Angelie E, Bonmartin A, Boudraa A, Gonnaud PM, Mallet JJ, Sappey-Marinier D: Regional differences and metabolic changes in normal aging of the human brain: proton MR spectroscopic imaging study. AJNR Am J Neuroradiol. 2001, 22: 119-127.PubMed Angelie E, Bonmartin A, Boudraa A, Gonnaud PM, Mallet JJ, Sappey-Marinier D: Regional differences and metabolic changes in normal aging of the human brain: proton MR spectroscopic imaging study. AJNR Am J Neuroradiol. 2001, 22: 119-127.PubMed
72.
Zurück zum Zitat McCrory P, Johnston K, Meeuwisse W, Aubry M, Cantu R, Dvorak J, Graf-Baumann T, Kelly J, Lovell M, Schamasch P: Summary and agreement statement of the 2nd International Conference on Concussion in Sport, Prague 2004. Br J Sports Med. 2005, 39: 196-204.PubMedPubMedCentral McCrory P, Johnston K, Meeuwisse W, Aubry M, Cantu R, Dvorak J, Graf-Baumann T, Kelly J, Lovell M, Schamasch P: Summary and agreement statement of the 2nd International Conference on Concussion in Sport, Prague 2004. Br J Sports Med. 2005, 39: 196-204.PubMedPubMedCentral
73.
Zurück zum Zitat Shutter L, Tong KA, Lee A, Holshouser BA: Prognostic role of proton magnetic resonance spectroscopy in acute traumatic brain injury. J Head Trauma Rehabil. 2006, 21: 334-349. 10.1097/00001199-200607000-00005.CrossRefPubMed Shutter L, Tong KA, Lee A, Holshouser BA: Prognostic role of proton magnetic resonance spectroscopy in acute traumatic brain injury. J Head Trauma Rehabil. 2006, 21: 334-349. 10.1097/00001199-200607000-00005.CrossRefPubMed
74.
Zurück zum Zitat Ashwal S, Holshouser B, Tong K, Serna T, Osterdock R, Gross M, Kido D: Proton MR spectroscopy detected glutamate/glutamine is increased in children with traumatic brain injury. J Neurotrauma. 2004, 21: 1539-1552. 10.1089/neu.2004.21.1539.CrossRefPubMed Ashwal S, Holshouser B, Tong K, Serna T, Osterdock R, Gross M, Kido D: Proton MR spectroscopy detected glutamate/glutamine is increased in children with traumatic brain injury. J Neurotrauma. 2004, 21: 1539-1552. 10.1089/neu.2004.21.1539.CrossRefPubMed
75.
Zurück zum Zitat Babikian T, Freier MC, Ashwal S, Riggs ML, Burley T, Holshouser BA: MR spectroscopy: Predicting long-term neuropsychological outcome following pediatric TBI. J Magn Reson Imaging. 2006 Babikian T, Freier MC, Ashwal S, Riggs ML, Burley T, Holshouser BA: MR spectroscopy: Predicting long-term neuropsychological outcome following pediatric TBI. J Magn Reson Imaging. 2006
76.
Zurück zum Zitat Bayly PV, Cohen TS, Leister EP, Ajo D, Leuthardt EC, Genin GM: Deformation of the human brain induced by mild acceleration. J Neurotrauma. 2005, 22: 845-856. 10.1089/neu.2005.22.845.CrossRefPubMedPubMedCentral Bayly PV, Cohen TS, Leister EP, Ajo D, Leuthardt EC, Genin GM: Deformation of the human brain induced by mild acceleration. J Neurotrauma. 2005, 22: 845-856. 10.1089/neu.2005.22.845.CrossRefPubMedPubMedCentral
77.
Zurück zum Zitat Cohen BA, Inglese M, Rusinek H, Babb JS, Grossman RI, Gonen O: Proton MR Spectroscopy and MRI-Volumetry in Mild Traumatic Brain Injury. AJNR Am J Neuroradiol. 2007, 28: 907-913.PubMed Cohen BA, Inglese M, Rusinek H, Babb JS, Grossman RI, Gonen O: Proton MR Spectroscopy and MRI-Volumetry in Mild Traumatic Brain Injury. AJNR Am J Neuroradiol. 2007, 28: 907-913.PubMed
78.
Zurück zum Zitat Garnett MR, Blamire AM, Rajagopalan B, Styles P, Cadoux-Hudson TA: Evidence for cellular damage in normal-appearing white matter correlates with injury severity in patients following traumatic brain injury: A magnetic resonance spectroscopy study. Brain. 2000, 123 (Pt 7): 1403-1409.CrossRefPubMed Garnett MR, Blamire AM, Rajagopalan B, Styles P, Cadoux-Hudson TA: Evidence for cellular damage in normal-appearing white matter correlates with injury severity in patients following traumatic brain injury: A magnetic resonance spectroscopy study. Brain. 2000, 123 (Pt 7): 1403-1409.CrossRefPubMed
79.
Zurück zum Zitat Cecil KM, Hills EC, Sandel ME, Smith DH, McIntosh TK, Mannon LJ, Sinson GP, Bagley LJ, Grossman RI, Lenkinski RE: Proton magnetic resonance spectroscopy for detection of axonal injury in the splenium of the corpus callosum of brain-injured patients. J Neurosurg. 1998, 88: 795-801. 10.3171/jns.1998.88.5.0795.CrossRefPubMed Cecil KM, Hills EC, Sandel ME, Smith DH, McIntosh TK, Mannon LJ, Sinson GP, Bagley LJ, Grossman RI, Lenkinski RE: Proton magnetic resonance spectroscopy for detection of axonal injury in the splenium of the corpus callosum of brain-injured patients. J Neurosurg. 1998, 88: 795-801. 10.3171/jns.1998.88.5.0795.CrossRefPubMed
81.
Zurück zum Zitat Matser EJ, Kessels AG, Lezak MD, Jordan BD, Troost J: Neuropsychological impairment in amateur soccer players. JAMA. 1999, 282: 971-973. 10.1001/jama.282.10.971.CrossRefPubMed Matser EJ, Kessels AG, Lezak MD, Jordan BD, Troost J: Neuropsychological impairment in amateur soccer players. JAMA. 1999, 282: 971-973. 10.1001/jama.282.10.971.CrossRefPubMed
82.
Zurück zum Zitat Miller JR, Adamson GJ, Pink MM, Sweet JC: Comparison of preseason, midseason, and postseason neurocognitive scores in uninjured collegiate football players. Am J Sports Med. 2007, 35: 1284-1288. 10.1177/0363546507300261.CrossRefPubMed Miller JR, Adamson GJ, Pink MM, Sweet JC: Comparison of preseason, midseason, and postseason neurocognitive scores in uninjured collegiate football players. Am J Sports Med. 2007, 35: 1284-1288. 10.1177/0363546507300261.CrossRefPubMed
83.
Zurück zum Zitat Sabet AA, Christoforou E, Zatlin B, Genin GM, Bayly PV: Deformation of the human brain induced by mild angular head acceleration. J Biomech. 2008, 41: 307-315. 10.1016/j.jbiomech.2007.09.016.CrossRefPubMed Sabet AA, Christoforou E, Zatlin B, Genin GM, Bayly PV: Deformation of the human brain induced by mild angular head acceleration. J Biomech. 2008, 41: 307-315. 10.1016/j.jbiomech.2007.09.016.CrossRefPubMed
85.
Zurück zum Zitat Holbourn A: The Mechanics of Brain Injuries. British Medical Bulletin. 1945, 3: 147-149. Holbourn A: The Mechanics of Brain Injuries. British Medical Bulletin. 1945, 3: 147-149.
86.
Zurück zum Zitat Strange K: Regulation of solute and water balance and cell volume in the central nervous system. J Am Soc Nephrol. 1992, 3: 12-27.PubMed Strange K: Regulation of solute and water balance and cell volume in the central nervous system. J Am Soc Nephrol. 1992, 3: 12-27.PubMed
87.
Zurück zum Zitat Lang F, Busch GL, Ritter M, Volkl H, Waldegger S, Gulbins E, Haussinger D: Functional significance of cell volume regulatory mechanisms. Physiol Rev. 1998, 78: 247-306.PubMed Lang F, Busch GL, Ritter M, Volkl H, Waldegger S, Gulbins E, Haussinger D: Functional significance of cell volume regulatory mechanisms. Physiol Rev. 1998, 78: 247-306.PubMed
88.
Zurück zum Zitat Lohr JW, McReynolds J, Grimaldi T, Acara M: Effect of acute and chronic hypernatremia on myoinositol and sorbitol concentration in rat brain and kidney. Life Sci. 1988, 43: 271-276. 10.1016/0024-3205(88)90317-7.CrossRefPubMed Lohr JW, McReynolds J, Grimaldi T, Acara M: Effect of acute and chronic hypernatremia on myoinositol and sorbitol concentration in rat brain and kidney. Life Sci. 1988, 43: 271-276. 10.1016/0024-3205(88)90317-7.CrossRefPubMed
89.
Zurück zum Zitat Gullans SR, Verbalis JG: Control of brain volume during hyperosmolar and hypoosmolar conditions. Annu Rev Med. 1993, 44: 289-301. 10.1146/annurev.me.44.020193.001445.CrossRefPubMed Gullans SR, Verbalis JG: Control of brain volume during hyperosmolar and hypoosmolar conditions. Annu Rev Med. 1993, 44: 289-301. 10.1146/annurev.me.44.020193.001445.CrossRefPubMed
90.
Zurück zum Zitat Jenkins BG, Kraft E: Magnetic resonance spectroscopy in toxic encephalopathy and neurodegeneration. Curr Opin Neurol. 1999, 12: 753-760. 10.1097/00019052-199912000-00016.CrossRefPubMed Jenkins BG, Kraft E: Magnetic resonance spectroscopy in toxic encephalopathy and neurodegeneration. Curr Opin Neurol. 1999, 12: 753-760. 10.1097/00019052-199912000-00016.CrossRefPubMed
91.
Zurück zum Zitat Petroff OA, Errante LD, Kim JH, Spencer DD: N-acetyl-aspartate, total creatine, and myo-inositol in the epileptogenic human hippocampus. Neurology. 2003, 60: 1646-1651.CrossRefPubMed Petroff OA, Errante LD, Kim JH, Spencer DD: N-acetyl-aspartate, total creatine, and myo-inositol in the epileptogenic human hippocampus. Neurology. 2003, 60: 1646-1651.CrossRefPubMed
93.
Zurück zum Zitat Greenwald RM, Gwin JT, Chu JJ, Crisco JJ: Head impact severity measures for evaluating mild traumatic brain injury risk exposure. Neurosurgery. 2008, 62: 789-798. 10.1227/01.neu.0000318162.67472.ad. discussion 798CrossRefPubMedPubMedCentral Greenwald RM, Gwin JT, Chu JJ, Crisco JJ: Head impact severity measures for evaluating mild traumatic brain injury risk exposure. Neurosurgery. 2008, 62: 789-798. 10.1227/01.neu.0000318162.67472.ad. discussion 798CrossRefPubMedPubMedCentral
94.
Zurück zum Zitat Mihalik JP, Bell DR, Marshall SW, Guskiewicz KM: Measurement of head impacts in collegiate football players: an investigation of positional and event-type differences. Neurosurgery. 2007, 61: 1229-1235. 10.1227/01.neu.0000306101.83882.c8. discussion 1235CrossRefPubMed Mihalik JP, Bell DR, Marshall SW, Guskiewicz KM: Measurement of head impacts in collegiate football players: an investigation of positional and event-type differences. Neurosurgery. 2007, 61: 1229-1235. 10.1227/01.neu.0000306101.83882.c8. discussion 1235CrossRefPubMed
95.
Zurück zum Zitat Gasparovic C, Yeo R, Mannell M, Ling J, Elgie R, Phillips J, Doezema D, Mayer AR: Neurometabolite concentrations in gray and white matter in mild traumatic brain injury: an 1H-magnetic resonance spectroscopy study. J Neurotrauma. 2009, 26: 1635-1643. 10.1089/neu.2009.0896.CrossRefPubMedPubMedCentral Gasparovic C, Yeo R, Mannell M, Ling J, Elgie R, Phillips J, Doezema D, Mayer AR: Neurometabolite concentrations in gray and white matter in mild traumatic brain injury: an 1H-magnetic resonance spectroscopy study. J Neurotrauma. 2009, 26: 1635-1643. 10.1089/neu.2009.0896.CrossRefPubMedPubMedCentral
96.
Zurück zum Zitat Holshouser BA, Tong KA, Ashwal S, Oyoyo U, Ghamsary M, Saunders D, Shutter L: Prospective longitudinal proton magnetic resonance spectroscopic imaging in adult traumatic brain injury. J Magn Reson Imaging. 2006, 24: 33-40.CrossRefPubMed Holshouser BA, Tong KA, Ashwal S, Oyoyo U, Ghamsary M, Saunders D, Shutter L: Prospective longitudinal proton magnetic resonance spectroscopic imaging in adult traumatic brain injury. J Magn Reson Imaging. 2006, 24: 33-40.CrossRefPubMed
97.
Zurück zum Zitat Ariza M, Junque C, Mataro M, Poca MA, Bargallo N, Olondo M, Sahuquillo J: Neuropsychological correlates of basal ganglia and medial temporal lobe NAA/Cho reductions in traumatic brain injury. Arch Neurol. 2004, 61: 541-544. 10.1001/archneur.61.4.541.CrossRefPubMed Ariza M, Junque C, Mataro M, Poca MA, Bargallo N, Olondo M, Sahuquillo J: Neuropsychological correlates of basal ganglia and medial temporal lobe NAA/Cho reductions in traumatic brain injury. Arch Neurol. 2004, 61: 541-544. 10.1001/archneur.61.4.541.CrossRefPubMed
98.
Zurück zum Zitat Brooks WM, Friedman SD, Gasparovic C: Magnetic resonance spectroscopy in traumatic brain injury. J Head Trauma Rehabil. 2001, 16: 149-164. 10.1097/00001199-200104000-00005.CrossRefPubMed Brooks WM, Friedman SD, Gasparovic C: Magnetic resonance spectroscopy in traumatic brain injury. J Head Trauma Rehabil. 2001, 16: 149-164. 10.1097/00001199-200104000-00005.CrossRefPubMed
99.
Zurück zum Zitat Levine B, Kovacevic N, Nica EI, Cheung G, Gao F, Schwartz ML, Black SE: The Toronto traumatic brain injury study: injury severity and quantified MRI. Neurology. 2008, 70: 771-778. 10.1212/01.wnl.0000304108.32283.aa.CrossRefPubMed Levine B, Kovacevic N, Nica EI, Cheung G, Gao F, Schwartz ML, Black SE: The Toronto traumatic brain injury study: injury severity and quantified MRI. Neurology. 2008, 70: 771-778. 10.1212/01.wnl.0000304108.32283.aa.CrossRefPubMed
100.
Zurück zum Zitat Hofman PA, Stapert SZ, van Kroonenburgh MJ, Jolles J, de Kruijk J, Wilmink JT: MR imaging, single-photon emission CT, and neurocognitive performance after mild traumatic brain injury. AJNR Am J Neuroradiol. 2001, 22: 441-449.PubMed Hofman PA, Stapert SZ, van Kroonenburgh MJ, Jolles J, de Kruijk J, Wilmink JT: MR imaging, single-photon emission CT, and neurocognitive performance after mild traumatic brain injury. AJNR Am J Neuroradiol. 2001, 22: 441-449.PubMed
101.
Zurück zum Zitat MacKenzie JD, Siddiqi F, Babb JS, Bagley LJ, Mannon LJ, Sinson GP, Grossman RI: Brain atrophy in mild or moderate traumatic brain injury: a longitudinal quantitative analysis. AJNR Am J Neuroradiol. 2002, 23: 1509-1515.PubMed MacKenzie JD, Siddiqi F, Babb JS, Bagley LJ, Mannon LJ, Sinson GP, Grossman RI: Brain atrophy in mild or moderate traumatic brain injury: a longitudinal quantitative analysis. AJNR Am J Neuroradiol. 2002, 23: 1509-1515.PubMed
Metadaten
Titel
Metabolic changes in concussed American football players during the acute and chronic post-injury phases
verfasst von
Luke C Henry
Sébastien Tremblay
Suzanne Leclerc
Abdesselam Khiat
Yvan Boulanger
Dave Ellemberg
Maryse Lassonde
Publikationsdatum
01.12.2011
Verlag
BioMed Central
Erschienen in
BMC Neurology / Ausgabe 1/2011
Elektronische ISSN: 1471-2377
DOI
https://doi.org/10.1186/1471-2377-11-105

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