Skip to main content
Erschienen in: European Radiology 5/2014

01.05.2014 | Magnetic Resonance

MR imaging and T2 measurements in peripheral nerve repair with activation of Toll-like receptor 4 of neurotmesis

verfasst von: Xiang Zhang, Fang Zhang, Liejing Lu, Haojiang Li, Xuehua Wen, Jun Shen

Erschienen in: European Radiology | Ausgabe 5/2014

Einloggen, um Zugang zu erhalten

Abstract

Objective

To investigate the role of MR imaging in neurotmesis combined with surgical repair and Toll-like receptor 4 (TLR4) activation.

Methods

Forty-eight rats received subepineurial microinjection of the TLR4 agonist lipopolysaccharide (LPS, n = 24) or phosphate buffered saline (PBS, n = 24) immediately after surgical repair of the transected sciatic nerve. Sequential fat-suppressed T2-weighted imaging and quantitative T2 measurements were obtained at 3, 7, 14 and 21 days after surgery, with histologic assessments performed at regular intervals. T2 relaxation times and histological quantification of the distal stumps were measured and compared.

Results

The distal stumps of transected nerves treated with LPS or PBS both showed persistent enlargement and hyperintense signal. T2 values of the distal stumps showed a rapid rise to peak level followed by a rapid decline pattern in nerves treated with LPS, while exhibiting a slow rise to peak value followed by a slow decline in nerves treated with PBS. Nerves treated with LPS exhibited more prominent macrophage recruitment, faster myelin debris clearance and more pronounced nerve regeneration.

Conclusion

Nerves treated with TLR4 activation had a characteristic pattern of T2 value change over time. Longitudinal T2 measurements can be used to detect the enhanced repair effect associated with TLR4 activation in the surgical repair of neurotmesis.

Key points

• TLR4 activation had additional beneficial effects on neurotmesis beyond surgical repair.
• TLR4 activation had a characteristic time course of T2 values.
• T2 measurements can help detect beneficial effects with TLR4 activation.
Literatur
1.
Zurück zum Zitat Ciaramitaro P, Mondelli M, Logullo F et al (2010) Traumatic peripheral nerve injuries: epidemiological findings, neuropathic pain and quality of life in 158 patients. J Peripher Nerv Syst 15:120–127PubMedCrossRef Ciaramitaro P, Mondelli M, Logullo F et al (2010) Traumatic peripheral nerve injuries: epidemiological findings, neuropathic pain and quality of life in 158 patients. J Peripher Nerv Syst 15:120–127PubMedCrossRef
2.
Zurück zum Zitat Takeuchi Y, Yamasaki M, Nagumo Y et al (2012) Rewiring of afferent fibers in the somatosensory thalamus of mice caused by peripheral sensory nerve transection. J Neurosci 32:6917–6930PubMedCrossRef Takeuchi Y, Yamasaki M, Nagumo Y et al (2012) Rewiring of afferent fibers in the somatosensory thalamus of mice caused by peripheral sensory nerve transection. J Neurosci 32:6917–6930PubMedCrossRef
3.
Zurück zum Zitat Chimutengwende-Gordon M, Khan W (2012) Recent advances and developments in neural repair and regeneration for hand surgery. Open Orthop J 6:103–107PubMedCentralPubMedCrossRef Chimutengwende-Gordon M, Khan W (2012) Recent advances and developments in neural repair and regeneration for hand surgery. Open Orthop J 6:103–107PubMedCentralPubMedCrossRef
5.
Zurück zum Zitat Allodi I, Udina E, Navarro X (2012) Specificity of peripheral nerve regeneration: interactions at the axon level. Prog Neurobiol 98:16–37PubMedCrossRef Allodi I, Udina E, Navarro X (2012) Specificity of peripheral nerve regeneration: interactions at the axon level. Prog Neurobiol 98:16–37PubMedCrossRef
6.
Zurück zum Zitat Terenghi G, Wiberg M, Kingham PJ (2009) Chapter 21: use of stem cells for improving nerve regeneration. Int Rev Neurobiol 87:393–403PubMedCrossRef Terenghi G, Wiberg M, Kingham PJ (2009) Chapter 21: use of stem cells for improving nerve regeneration. Int Rev Neurobiol 87:393–403PubMedCrossRef
7.
Zurück zum Zitat Christie KJ, Zochodne D (2013) Peripheral axon regrowth: new molecular approaches. Neuroscience 240:310–324PubMedCrossRef Christie KJ, Zochodne D (2013) Peripheral axon regrowth: new molecular approaches. Neuroscience 240:310–324PubMedCrossRef
8.
Zurück zum Zitat Scheib J, Höke A (2013) Advances in peripheral nerve regeneration. Nat Rev Neurol 9:668–676PubMedCrossRef Scheib J, Höke A (2013) Advances in peripheral nerve regeneration. Nat Rev Neurol 9:668–676PubMedCrossRef
9.
Zurück zum Zitat Martinez de Albornoz P, Delgado PJ, Forriol F et al (2011) Non-surgical therapies for peripheral nerve injury. Br Med Bull 100:73–100PubMedCrossRef Martinez de Albornoz P, Delgado PJ, Forriol F et al (2011) Non-surgical therapies for peripheral nerve injury. Br Med Bull 100:73–100PubMedCrossRef
10.
Zurück zum Zitat Boivin A, Pineau I, Barrette B et al (2007) Toll-like receptor signaling is critical for wallerian degeneration and functional recovery after peripheral nerve injury. J Neurosci 27:12565–12576PubMedCrossRef Boivin A, Pineau I, Barrette B et al (2007) Toll-like receptor signaling is critical for wallerian degeneration and functional recovery after peripheral nerve injury. J Neurosci 27:12565–12576PubMedCrossRef
11.
Zurück zum Zitat Geuna S, Raimondo S, Ronchi G et al (2009) Chapter 3: histology of the peripheral nerve and changes occurring during nerve regeneration. Int Rev Neurobiol 87:27–46PubMedCrossRef Geuna S, Raimondo S, Ronchi G et al (2009) Chapter 3: histology of the peripheral nerve and changes occurring during nerve regeneration. Int Rev Neurobiol 87:27–46PubMedCrossRef
12.
Zurück zum Zitat Shen J, Zhou CP, Zhong XM et al (2010) MR neurography: T1 and T2 measurements in acute peripheral nerve traction injury in rabbits. Radiology 254:729–738PubMedCrossRef Shen J, Zhou CP, Zhong XM et al (2010) MR neurography: T1 and T2 measurements in acute peripheral nerve traction injury in rabbits. Radiology 254:729–738PubMedCrossRef
13.
Zurück zum Zitat Liao CD, Zhang F, Guo RM et al (2012) Peripheral nerve repair: monitoring by using gadofluorine M-enhanced MR imaging with chitosan nerve conduits with cultured mesenchymal stem cells in rat model of neurotmesis. Radiology 262:161–171PubMedCrossRef Liao CD, Zhang F, Guo RM et al (2012) Peripheral nerve repair: monitoring by using gadofluorine M-enhanced MR imaging with chitosan nerve conduits with cultured mesenchymal stem cells in rat model of neurotmesis. Radiology 262:161–171PubMedCrossRef
14.
Zurück zum Zitat Feirabend HK, Choufoer H, Ploeger S (1998) Preservation and staining of myelinated nerve fibers. Methods 15:123–131PubMedCrossRef Feirabend HK, Choufoer H, Ploeger S (1998) Preservation and staining of myelinated nerve fibers. Methods 15:123–131PubMedCrossRef
15.
Zurück zum Zitat Behr B, Schnabel R, Mirastschijski U et al (2009) Magnetic resonance imaging monitoring of peripheral nerve regeneration following neurotmesis at 4.7 Tesla. Plast Reconstr Surg 123(6):1778–1788PubMedCrossRef Behr B, Schnabel R, Mirastschijski U et al (2009) Magnetic resonance imaging monitoring of peripheral nerve regeneration following neurotmesis at 4.7 Tesla. Plast Reconstr Surg 123(6):1778–1788PubMedCrossRef
16.
Zurück zum Zitat Chiu IM, Phatnani H, Kuligowski M et al (2009) Activation of innate and humoral immunity in the peripheral nervous system of ALS transgenic mice. Proc Natl Acad Sci U S A 106:20960–20965PubMedCentralPubMedCrossRef Chiu IM, Phatnani H, Kuligowski M et al (2009) Activation of innate and humoral immunity in the peripheral nervous system of ALS transgenic mice. Proc Natl Acad Sci U S A 106:20960–20965PubMedCentralPubMedCrossRef
17.
Zurück zum Zitat Vargas ME, Barres BA (2007) Why is wallerian degeneration in the CNS so slow? Annu Rev Neurosci 30:153–179PubMedCrossRef Vargas ME, Barres BA (2007) Why is wallerian degeneration in the CNS so slow? Annu Rev Neurosci 30:153–179PubMedCrossRef
18.
19.
Zurück zum Zitat Cheng LN, Duan XH, Zhong XM et al (2011) Transplanted neural stem cells promote nerve regeneration in acute peripheral nerve traction injury: assessment using MRI. Am J Roentgenol 196:1381–1387CrossRef Cheng LN, Duan XH, Zhong XM et al (2011) Transplanted neural stem cells promote nerve regeneration in acute peripheral nerve traction injury: assessment using MRI. Am J Roentgenol 196:1381–1387CrossRef
20.
Zurück zum Zitat Cudlip SA, Howe FA, Griffiths JR et al (2002) Magnetic resonance neurography of peripheral nerve following experimental crush injury, and correlation with functional deficit. J Neurosurg 96:755–759PubMedCrossRef Cudlip SA, Howe FA, Griffiths JR et al (2002) Magnetic resonance neurography of peripheral nerve following experimental crush injury, and correlation with functional deficit. J Neurosurg 96:755–759PubMedCrossRef
21.
Zurück zum Zitat Webb S, Munro CA, Midha R et al (2003) Is multicomponent T2 a good measure of myelin content in peripheral nerve? Magn Reson Med 49:638–645PubMedCrossRef Webb S, Munro CA, Midha R et al (2003) Is multicomponent T2 a good measure of myelin content in peripheral nerve? Magn Reson Med 49:638–645PubMedCrossRef
22.
Zurück zum Zitat Meding J, Urich M, Licha K et al (2007) Magnetic resonance imaging of atherosclerosis by targeting extracellular matrix deposition with gadofluorine M. Contrast Media Mol Imaging 2:120–129PubMedCrossRef Meding J, Urich M, Licha K et al (2007) Magnetic resonance imaging of atherosclerosis by targeting extracellular matrix deposition with gadofluorine M. Contrast Media Mol Imaging 2:120–129PubMedCrossRef
23.
25.
Zurück zum Zitat Takagi T, Nakamura M, Yamada M et al (2009) Visualization of peripheral nerve degeneration and regeneration: monitoring with diffusion tensor tractography. Neuroimage 44:884–892PubMedCrossRef Takagi T, Nakamura M, Yamada M et al (2009) Visualization of peripheral nerve degeneration and regeneration: monitoring with diffusion tensor tractography. Neuroimage 44:884–892PubMedCrossRef
26.
Zurück zum Zitat Cauley KA, Filippi CG (2013) Diffusion-tensor imaging of small nerve bundles: cranial nerves, peripheral nerves, distal spinal cord, and lumbar nerve roots–clinical applications. Am J Roentgenol 201:W326–W335CrossRef Cauley KA, Filippi CG (2013) Diffusion-tensor imaging of small nerve bundles: cranial nerves, peripheral nerves, distal spinal cord, and lumbar nerve roots–clinical applications. Am J Roentgenol 201:W326–W335CrossRef
Metadaten
Titel
MR imaging and T2 measurements in peripheral nerve repair with activation of Toll-like receptor 4 of neurotmesis
verfasst von
Xiang Zhang
Fang Zhang
Liejing Lu
Haojiang Li
Xuehua Wen
Jun Shen
Publikationsdatum
01.05.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
European Radiology / Ausgabe 5/2014
Print ISSN: 0938-7994
Elektronische ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-014-3134-9

Weitere Artikel der Ausgabe 5/2014

European Radiology 5/2014 Zur Ausgabe

Akuter Schwindel: Wann lohnt sich eine MRT?

28.04.2024 Schwindel Nachrichten

Akuter Schwindel stellt oft eine diagnostische Herausforderung dar. Wie nützlich dabei eine MRT ist, hat eine Studie aus Finnland untersucht. Immerhin einer von sechs Patienten wurde mit akutem ischämischem Schlaganfall diagnostiziert.

Screening-Mammografie offenbart erhöhtes Herz-Kreislauf-Risiko

26.04.2024 Mammografie Nachrichten

Routinemäßige Mammografien helfen, Brustkrebs frühzeitig zu erkennen. Anhand der Röntgenuntersuchung lassen sich aber auch kardiovaskuläre Risikopatientinnen identifizieren. Als zuverlässiger Anhaltspunkt gilt die Verkalkung der Brustarterien.

S3-Leitlinie zu Pankreaskrebs aktualisiert

23.04.2024 Pankreaskarzinom Nachrichten

Die Empfehlungen zur Therapie des Pankreaskarzinoms wurden um zwei Off-Label-Anwendungen erweitert. Und auch im Bereich der Früherkennung gibt es Aktualisierungen.

Fünf Dinge, die im Kindernotfall besser zu unterlassen sind

18.04.2024 Pädiatrische Notfallmedizin Nachrichten

Im Choosing-Wisely-Programm, das für die deutsche Initiative „Klug entscheiden“ Pate gestanden hat, sind erstmals Empfehlungen zum Umgang mit Notfällen von Kindern erschienen. Fünf Dinge gilt es demnach zu vermeiden.

Update Radiologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.