Skip to main content
Erschienen in: European Archives of Psychiatry and Clinical Neuroscience 5/2019

21.05.2019 | Invited Review

Neurobiological effects of aerobic exercise, with a focus on patients with schizophrenia

verfasst von: Isabel Maurus, Alkomiet Hasan, Astrid Röh, Shun Takahashi, Boris Rauchmann, Daniel Keeser, Berend Malchow, Andrea Schmitt, Peter Falkai

Erschienen in: European Archives of Psychiatry and Clinical Neuroscience | Ausgabe 5/2019

Einloggen, um Zugang zu erhalten

Abstract

Schizophrenia is a severe neuropsychiatric disease that is associated with neurobiological alterations in multiple brain regions and peripheral organs. Negative symptoms and cognitive deficits are present in about half of patients and are difficult to treat, leading to an unfavorable functional outcome. To investigate the impact of aerobic exercise on various neurobiological parameters, we conducted a narrative review. Add-on aerobic exercise was shown to be effective in improving negative and general symptoms, cognition, global functioning, and quality of life in schizophrenia patients. Based on findings in healthy individuals and animal models, this qualitative review gives an overview of different lines of evidence on how aerobic exercise impacts brain structure and function and molecular mechanisms in patients with schizophrenia and how its effects could be related to clinical and functional outcomes. Structural magnetic resonance imaging studies showed a volume increase in the hippocampus and cortical regions in schizophrenia patients and healthy controls after endurance training. However, results are inconsistent and individual risk factors may influence neuroplastic processes. Animal studies indicate that alterations in epigenetic mechanisms and synaptic plasticity are possible underlying mechanisms, but that differentiation of glial cells, angiogenesis, and possibly neurogenesis may also be involved. Clinical and animal studies also revealed effects of aerobic exercise on the hypothalamus–pituitary–adrenal axis, growth factors, and immune-related mechanisms. Some findings indicate effects on neurotransmitters and the endocannabinoid system. Further research is required to clarify how individual risk factors in schizophrenia patients mediate or moderate the neurobiological effects of exercise on brain and cognition. Altogether, aerobic exercise is a promising candidate in the search for pathophysiology-based add-on interventions in schizophrenia.
Literatur
1.
Zurück zum Zitat Fusar-Poli P et al (2015) Treatments of negative symptoms in schizophrenia: meta-analysis of 168 randomized placebo-controlled trials. Schizophr Bull 41(4):892–899CrossRefPubMed Fusar-Poli P et al (2015) Treatments of negative symptoms in schizophrenia: meta-analysis of 168 randomized placebo-controlled trials. Schizophr Bull 41(4):892–899CrossRefPubMed
2.
Zurück zum Zitat Nielsen RE et al (2015) Second-generation antipsychotic effect on cognition in patients with schizophrenia—a meta-analysis of randomized clinical trials. Acta Psychiatr Scand 131(3):185–196CrossRefPubMed Nielsen RE et al (2015) Second-generation antipsychotic effect on cognition in patients with schizophrenia—a meta-analysis of randomized clinical trials. Acta Psychiatr Scand 131(3):185–196CrossRefPubMed
3.
Zurück zum Zitat Vancampfort D et al (2012) The functional exercise capacity is correlated with global functioning in patients with schizophrenia. Acta Psychiatr Scand 125(5):382–387CrossRefPubMed Vancampfort D et al (2012) The functional exercise capacity is correlated with global functioning in patients with schizophrenia. Acta Psychiatr Scand 125(5):382–387CrossRefPubMed
4.
Zurück zum Zitat Vancampfort D, Rosenbaum S, Probst M, Stubbs B (2018) Aerobic exercise in people with schizophrenia. In: Budde H, Wegner M (eds) The exercise effect on mental health, neurobiological mechanisms. Routledge, New York Vancampfort D, Rosenbaum S, Probst M, Stubbs B (2018) Aerobic exercise in people with schizophrenia. In: Budde H, Wegner M (eds) The exercise effect on mental health, neurobiological mechanisms. Routledge, New York
5.
Zurück zum Zitat Falkai P, Malchow B, Schmitt A (2017) Aerobic exercise and its effects on cognition in schizophrenia. Curr Opin Psychiatry 30(3):171–175CrossRefPubMed Falkai P, Malchow B, Schmitt A (2017) Aerobic exercise and its effects on cognition in schizophrenia. Curr Opin Psychiatry 30(3):171–175CrossRefPubMed
6.
Zurück zum Zitat Dauwan M et al (2016) Exercise improves clinical symptoms, quality of life, global functioning, and depression in schizophrenia: a systematic review and meta-analysis. Schizophr Bull 42(3):588–599CrossRefPubMed Dauwan M et al (2016) Exercise improves clinical symptoms, quality of life, global functioning, and depression in schizophrenia: a systematic review and meta-analysis. Schizophr Bull 42(3):588–599CrossRefPubMed
7.
Zurück zum Zitat Malchow B et al (2015) Effects of endurance training combined with cognitive remediation on everyday functioning, symptoms, and cognition in multiepisode schizophrenia patients. Schizophr Bull 41(4):847–858CrossRefPubMedPubMedCentral Malchow B et al (2015) Effects of endurance training combined with cognitive remediation on everyday functioning, symptoms, and cognition in multiepisode schizophrenia patients. Schizophr Bull 41(4):847–858CrossRefPubMedPubMedCentral
8.
Zurück zum Zitat Schmitz N, Kruse J, Kugler J (2004) The association between physical exercises and health-related quality of life in subjects with mental disorders: results from a cross-sectional survey. Prev Med 39(6):1200–1207CrossRefPubMed Schmitz N, Kruse J, Kugler J (2004) The association between physical exercises and health-related quality of life in subjects with mental disorders: results from a cross-sectional survey. Prev Med 39(6):1200–1207CrossRefPubMed
9.
Zurück zum Zitat Firth J et al (2016) Aerobic exercise improves cognitive functioning in people with schizophrenia: a systematic review and meta-analysis. Schizophr Bull 43(3):546–556PubMedCentral Firth J et al (2016) Aerobic exercise improves cognitive functioning in people with schizophrenia: a systematic review and meta-analysis. Schizophr Bull 43(3):546–556PubMedCentral
10.
Zurück zum Zitat Rosenbaum S et al (2014) Physical activity interventions for people with mental illness: a systematic review and meta-analysis. J Clin Psychiatry 75(9):964–974CrossRefPubMed Rosenbaum S et al (2014) Physical activity interventions for people with mental illness: a systematic review and meta-analysis. J Clin Psychiatry 75(9):964–974CrossRefPubMed
11.
Zurück zum Zitat Firth J et al (2015) A systematic review and meta-analysis of exercise interventions in schizophrenia patients. Psychol Med 45(7):1343–1361CrossRefPubMed Firth J et al (2015) A systematic review and meta-analysis of exercise interventions in schizophrenia patients. Psychol Med 45(7):1343–1361CrossRefPubMed
12.
Zurück zum Zitat Scheewe TW et al (2013) Exercise therapy improves mental and physical health in schizophrenia: a randomised controlled trial. Acta Psychiatr Scand 127(6):464–473CrossRefPubMed Scheewe TW et al (2013) Exercise therapy improves mental and physical health in schizophrenia: a randomised controlled trial. Acta Psychiatr Scand 127(6):464–473CrossRefPubMed
13.
Zurück zum Zitat Laursen TM, Munk-Olsen T, Vestergaard M (2012) Life expectancy and cardiovascular mortality in persons with schizophrenia. Curr Opin Psychiatry 25(2):83–88CrossRefPubMed Laursen TM, Munk-Olsen T, Vestergaard M (2012) Life expectancy and cardiovascular mortality in persons with schizophrenia. Curr Opin Psychiatry 25(2):83–88CrossRefPubMed
14.
Zurück zum Zitat Li M et al (2014) Schizophrenia and risk of stroke: a meta-analysis of cohort studies. Int J Cardiol 173(3):588–590CrossRefPubMed Li M et al (2014) Schizophrenia and risk of stroke: a meta-analysis of cohort studies. Int J Cardiol 173(3):588–590CrossRefPubMed
15.
Zurück zum Zitat Vancampfort D et al (2015) Risk of metabolic syndrome and its components in people with schizophrenia and related psychotic disorders, bipolar disorder and major depressive disorder: a systematic review and meta-analysis. World Psychiatry 14(3):339–347CrossRefPubMedPubMedCentral Vancampfort D et al (2015) Risk of metabolic syndrome and its components in people with schizophrenia and related psychotic disorders, bipolar disorder and major depressive disorder: a systematic review and meta-analysis. World Psychiatry 14(3):339–347CrossRefPubMedPubMedCentral
16.
Zurück zum Zitat Vancampfort D et al (2016) Diabetes mellitus in people with schizophrenia, bipolar disorder and major depressive disorder: a systematic review and large scale meta-analysis. World Psychiatry 15(2):166–174CrossRefPubMedPubMedCentral Vancampfort D et al (2016) Diabetes mellitus in people with schizophrenia, bipolar disorder and major depressive disorder: a systematic review and large scale meta-analysis. World Psychiatry 15(2):166–174CrossRefPubMedPubMedCentral
17.
Zurück zum Zitat De Hert M et al (2011) Physical illness in patients with severe mental disorders. I. Prevalence, impact of medications and disparities in health care. World Psychiatry 10(1):52–77CrossRef De Hert M et al (2011) Physical illness in patients with severe mental disorders. I. Prevalence, impact of medications and disparities in health care. World Psychiatry 10(1):52–77CrossRef
18.
Zurück zum Zitat Stubbs B et al (2015) How can we promote smoking cessation in people with schizophrenia in practice? A clinical overview. Acta Psychiatr Scand 132(2):122–130CrossRefPubMed Stubbs B et al (2015) How can we promote smoking cessation in people with schizophrenia in practice? A clinical overview. Acta Psychiatr Scand 132(2):122–130CrossRefPubMed
19.
Zurück zum Zitat Heald A et al (2015) Diet, exercise and the metabolic syndrome in schizophrenia: a cross-sectional study. Schizophr Res 169(1–3):494–495CrossRefPubMed Heald A et al (2015) Diet, exercise and the metabolic syndrome in schizophrenia: a cross-sectional study. Schizophr Res 169(1–3):494–495CrossRefPubMed
20.
Zurück zum Zitat Stubbs B et al (2016) How much physical activity do people with schizophrenia engage in? A systematic review, comparative meta-analysis and meta-regression. Schizophr Res 176(2–3):431–440CrossRefPubMed Stubbs B et al (2016) How much physical activity do people with schizophrenia engage in? A systematic review, comparative meta-analysis and meta-regression. Schizophr Res 176(2–3):431–440CrossRefPubMed
21.
Zurück zum Zitat Correll CU et al (2015) Effects of antipsychotics, antidepressants and mood stabilizers on risk for physical diseases in people with schizophrenia, depression and bipolar disorder. World Psychiatry 14(2):119–136CrossRefPubMedPubMedCentral Correll CU et al (2015) Effects of antipsychotics, antidepressants and mood stabilizers on risk for physical diseases in people with schizophrenia, depression and bipolar disorder. World Psychiatry 14(2):119–136CrossRefPubMedPubMedCentral
22.
Zurück zum Zitat Falkai P et al (2015) Kraepelin revisited: schizophrenia from degeneration to failed regeneration. Mol Psychiatry 20(6):671–676CrossRefPubMed Falkai P et al (2015) Kraepelin revisited: schizophrenia from degeneration to failed regeneration. Mol Psychiatry 20(6):671–676CrossRefPubMed
23.
Zurück zum Zitat Keller-Varady K et al (2016) Endurance training in patients with schizophrenia and healthy controls: differences and similarities. Eur Arch Psychiatry Clin Neurosci 266(5):461–473CrossRefPubMed Keller-Varady K et al (2016) Endurance training in patients with schizophrenia and healthy controls: differences and similarities. Eur Arch Psychiatry Clin Neurosci 266(5):461–473CrossRefPubMed
25.
Zurück zum Zitat Kandola A et al (2016) Aerobic exercise as a tool to improve hippocampal plasticity and function in humans: practical implications for mental health treatment. Front Hum Neurosci 10:373CrossRefPubMedPubMedCentral Kandola A et al (2016) Aerobic exercise as a tool to improve hippocampal plasticity and function in humans: practical implications for mental health treatment. Front Hum Neurosci 10:373CrossRefPubMedPubMedCentral
26.
Zurück zum Zitat van Praag H (2008) Neurogenesis and exercise: past and future directions. Neuromol Med 10(2):128–140CrossRef van Praag H (2008) Neurogenesis and exercise: past and future directions. Neuromol Med 10(2):128–140CrossRef
27.
Zurück zum Zitat Sack M et al (2017) Early effects of a high-caloric diet and physical exercise on brain volumetry and behavior: a combined MRI and histology study in mice. Brain Imaging Behav 11(5):1385–1396CrossRefPubMed Sack M et al (2017) Early effects of a high-caloric diet and physical exercise on brain volumetry and behavior: a combined MRI and histology study in mice. Brain Imaging Behav 11(5):1385–1396CrossRefPubMed
29.
Zurück zum Zitat Vivar C, Potter MC, van Praag H (2013) All about running: synaptic plasticity, growth factors and adult hippocampal neurogenesis. Curr Top Behav Neurosci 15:189–210CrossRefPubMedPubMedCentral Vivar C, Potter MC, van Praag H (2013) All about running: synaptic plasticity, growth factors and adult hippocampal neurogenesis. Curr Top Behav Neurosci 15:189–210CrossRefPubMedPubMedCentral
31.
Zurück zum Zitat Parker BA et al (2011) Effect of exercise training on hippocampal volume in humans: a pilot study. Res Q Exerc Sport 82(3):585–591CrossRefPubMed Parker BA et al (2011) Effect of exercise training on hippocampal volume in humans: a pilot study. Res Q Exerc Sport 82(3):585–591CrossRefPubMed
32.
Zurück zum Zitat Voss MW et al (2013) The influence of aerobic fitness on cerebral white matter integrity and cognitive function in older adults: results of a one-year exercise intervention. Hum Brain Mapp 34(11):2972–2985CrossRefPubMed Voss MW et al (2013) The influence of aerobic fitness on cerebral white matter integrity and cognitive function in older adults: results of a one-year exercise intervention. Hum Brain Mapp 34(11):2972–2985CrossRefPubMed
33.
Zurück zum Zitat Firth J et al (2018) Effect of aerobic exercise on hippocampal volume in humans: a systematic review and meta-analysis. Neuroimage 166:230–238CrossRefPubMed Firth J et al (2018) Effect of aerobic exercise on hippocampal volume in humans: a systematic review and meta-analysis. Neuroimage 166:230–238CrossRefPubMed
34.
Zurück zum Zitat Colcombe S, Kramer AF (2003) Fitness effects on the cognitive function of older adults: a meta-analytic study. Psychol Sci 14(2):125–130CrossRefPubMed Colcombe S, Kramer AF (2003) Fitness effects on the cognitive function of older adults: a meta-analytic study. Psychol Sci 14(2):125–130CrossRefPubMed
35.
Zurück zum Zitat Weinstein AM et al (2012) The association between aerobic fitness and executive function is mediated by prefrontal cortex volume. Brain Behav Immun 26(5):811–819CrossRefPubMed Weinstein AM et al (2012) The association between aerobic fitness and executive function is mediated by prefrontal cortex volume. Brain Behav Immun 26(5):811–819CrossRefPubMed
36.
Zurück zum Zitat Makizako H et al (2015) Moderate-intensity physical activity, hippocampal volume, and memory in older adults with mild cognitive impairment. J Gerontol A Biol Sci Med Sci 70(4):480–486CrossRefPubMed Makizako H et al (2015) Moderate-intensity physical activity, hippocampal volume, and memory in older adults with mild cognitive impairment. J Gerontol A Biol Sci Med Sci 70(4):480–486CrossRefPubMed
37.
Zurück zum Zitat Cahill LS et al (2015) MRI-detectable changes in mouse brain structure induced by voluntary exercise. Neuroimage 113:175–183CrossRefPubMed Cahill LS et al (2015) MRI-detectable changes in mouse brain structure induced by voluntary exercise. Neuroimage 113:175–183CrossRefPubMed
38.
Zurück zum Zitat McMorris T, Corbett J (2018) Neurobiological changes and exercise. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press McMorris T, Corbett J (2018) Neurobiological changes and exercise. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press
39.
Zurück zum Zitat Pajonk FG et al (2010) Hippocampal plasticity in response to exercise in schizophrenia. Arch Gen Psychiatry 67(2):133–143CrossRefPubMed Pajonk FG et al (2010) Hippocampal plasticity in response to exercise in schizophrenia. Arch Gen Psychiatry 67(2):133–143CrossRefPubMed
40.
Zurück zum Zitat Malchow B et al (2016) Effects of endurance training on brain structures in chronic schizophrenia patients and healthy controls. Schizophr Res 173(3):182–191CrossRefPubMed Malchow B et al (2016) Effects of endurance training on brain structures in chronic schizophrenia patients and healthy controls. Schizophr Res 173(3):182–191CrossRefPubMed
41.
Zurück zum Zitat Papiol S et al (2017) Polygenic risk has an impact on the structural plasticity of hippocampal subfields during aerobic exercise combined with cognitive remediation in multi-episode schizophrenia. Transl Psychiatry 7(6):e1159CrossRefPubMedPubMedCentral Papiol S et al (2017) Polygenic risk has an impact on the structural plasticity of hippocampal subfields during aerobic exercise combined with cognitive remediation in multi-episode schizophrenia. Transl Psychiatry 7(6):e1159CrossRefPubMedPubMedCentral
43.
Zurück zum Zitat Lehmann N, Taubert M (2018) Improvement in motor learning. In: Budde HW (ed) The exercise effect on mental health, neurobiological effects. Routledge, New York Lehmann N, Taubert M (2018) Improvement in motor learning. In: Budde HW (ed) The exercise effect on mental health, neurobiological effects. Routledge, New York
44.
Zurück zum Zitat Herting MM et al (2014) White matter connectivity and aerobic fitness in male adolescents. Dev Cognit Neurosci 7:65–75CrossRef Herting MM et al (2014) White matter connectivity and aerobic fitness in male adolescents. Dev Cognit Neurosci 7:65–75CrossRef
45.
Zurück zum Zitat Burdette JH et al (2010) Using network science to evaluate exercise-associated brain changes in older adults. Front Aging Neurosci 2:23PubMedPubMedCentral Burdette JH et al (2010) Using network science to evaluate exercise-associated brain changes in older adults. Front Aging Neurosci 2:23PubMedPubMedCentral
46.
Zurück zum Zitat Sexton CE et al (2016) A systematic review of MRI studies examining the relationship between physical fitness and activity and the white matter of the ageing brain. Neuroimage 131:81–90CrossRefPubMed Sexton CE et al (2016) A systematic review of MRI studies examining the relationship between physical fitness and activity and the white matter of the ageing brain. Neuroimage 131:81–90CrossRefPubMed
47.
Zurück zum Zitat Fitzsimmons J, Kubicki M, Shenton ME (2013) Review of functional and anatomical brain connectivity findings in schizophrenia. Curr Opin Psychiatry 26(2):172–187CrossRefPubMed Fitzsimmons J, Kubicki M, Shenton ME (2013) Review of functional and anatomical brain connectivity findings in schizophrenia. Curr Opin Psychiatry 26(2):172–187CrossRefPubMed
48.
Zurück zum Zitat Vakhrusheva J et al (2016) Aerobic exercise in people with schizophrenia: neural and neurocognitive benefits. Curr Behav Neurosci Rep 3(2):165–175CrossRefPubMedPubMedCentral Vakhrusheva J et al (2016) Aerobic exercise in people with schizophrenia: neural and neurocognitive benefits. Curr Behav Neurosci Rep 3(2):165–175CrossRefPubMedPubMedCentral
49.
Zurück zum Zitat Reid MA et al (2016) A combined diffusion tensor imaging and magnetic resonance spectroscopy study of patients with schizophrenia. Schizophr Res 170(2–3):341–350CrossRefPubMed Reid MA et al (2016) A combined diffusion tensor imaging and magnetic resonance spectroscopy study of patients with schizophrenia. Schizophr Res 170(2–3):341–350CrossRefPubMed
50.
Zurück zum Zitat Cassoli JS et al (2015) Disturbed macro-connectivity in schizophrenia linked to oligodendrocyte dysfunction: from structural findings to molecules. NPJ Schizophr 1:15034CrossRefPubMedPubMedCentral Cassoli JS et al (2015) Disturbed macro-connectivity in schizophrenia linked to oligodendrocyte dysfunction: from structural findings to molecules. NPJ Schizophr 1:15034CrossRefPubMedPubMedCentral
51.
Zurück zum Zitat Svatkova A et al (2015) Physical exercise keeps the brain connected: biking increases white matter integrity in patients with schizophrenia and healthy controls. Schizophr Bull 41(4):869–878CrossRefPubMedPubMedCentral Svatkova A et al (2015) Physical exercise keeps the brain connected: biking increases white matter integrity in patients with schizophrenia and healthy controls. Schizophr Bull 41(4):869–878CrossRefPubMedPubMedCentral
52.
Zurück zum Zitat Basso JC, Suzuki WA (2017) The effects of acute exercise on mood, cognition, neurophysiology, and neurochemical pathways: a review. Brain Plast 2(2):127–152CrossRefPubMedPubMedCentral Basso JC, Suzuki WA (2017) The effects of acute exercise on mood, cognition, neurophysiology, and neurochemical pathways: a review. Brain Plast 2(2):127–152CrossRefPubMedPubMedCentral
53.
Zurück zum Zitat Colcombe SJ et al (2004) Neurocognitive aging and cardiovascular fitness: recent findings and future directions. J Mol Neurosci 24(1):9–14CrossRefPubMed Colcombe SJ et al (2004) Neurocognitive aging and cardiovascular fitness: recent findings and future directions. J Mol Neurosci 24(1):9–14CrossRefPubMed
54.
Zurück zum Zitat Voss MW et al (2010) Plasticity of brain networks in a randomized intervention trial of exercise training in older adults. Front Aging Neurosci 2:32PubMedPubMedCentral Voss MW et al (2010) Plasticity of brain networks in a randomized intervention trial of exercise training in older adults. Front Aging Neurosci 2:32PubMedPubMedCentral
55.
Zurück zum Zitat Voss MW et al (2016) Fitness, but not physical activity, is related to functional integrity of brain networks associated with aging. Neuroimage 131:113–125CrossRefPubMed Voss MW et al (2016) Fitness, but not physical activity, is related to functional integrity of brain networks associated with aging. Neuroimage 131:113–125CrossRefPubMed
56.
Zurück zum Zitat Cirillo J et al (2009) Motor cortex plasticity induced by paired associative stimulation is enhanced in physically active individuals. J Physiol 587(Pt 24):5831–5842CrossRefPubMedPubMedCentral Cirillo J et al (2009) Motor cortex plasticity induced by paired associative stimulation is enhanced in physically active individuals. J Physiol 587(Pt 24):5831–5842CrossRefPubMedPubMedCentral
57.
Zurück zum Zitat Honzak R et al (1985) Changes in the EEG spectrum at a two-week intensive endurance training. Act Nerv Super (Praha) 27(1):10–14 Honzak R et al (1985) Changes in the EEG spectrum at a two-week intensive endurance training. Act Nerv Super (Praha) 27(1):10–14
58.
Zurück zum Zitat Gliner JA et al (1979) Visual evoked potentials and signal detection following a marathon race. Med Sci Sports 11(2):155–159PubMed Gliner JA et al (1979) Visual evoked potentials and signal detection following a marathon race. Med Sci Sports 11(2):155–159PubMed
60.
Zurück zum Zitat Weissleder C, North HF, Weickert CS (2019) Important unanswered questions about adult neurogenesis in schizophrenia. Curr Opin Psychiatry 32(3):170–178CrossRefPubMed Weissleder C, North HF, Weickert CS (2019) Important unanswered questions about adult neurogenesis in schizophrenia. Curr Opin Psychiatry 32(3):170–178CrossRefPubMed
61.
Zurück zum Zitat Van der Borght K et al (2007) Exercise improves memory acquisition and retrieval in the Y-maze task: relationship with hippocampal neurogenesis. Behav Neurosci 121(2):324–334CrossRefPubMed Van der Borght K et al (2007) Exercise improves memory acquisition and retrieval in the Y-maze task: relationship with hippocampal neurogenesis. Behav Neurosci 121(2):324–334CrossRefPubMed
62.
Zurück zum Zitat Uysal N et al (2005) The effects of regular aerobic exercise in adolescent period on hippocampal neuron density, apoptosis and spatial memory. Neurosci Lett 383(3):241–245CrossRefPubMed Uysal N et al (2005) The effects of regular aerobic exercise in adolescent period on hippocampal neuron density, apoptosis and spatial memory. Neurosci Lett 383(3):241–245CrossRefPubMed
63.
Zurück zum Zitat Redila VA, Christie BR (2006) Exercise-induced changes in dendritic structure and complexity in the adult hippocampal dentate gyrus. Neuroscience 137(4):1299–1307CrossRefPubMed Redila VA, Christie BR (2006) Exercise-induced changes in dendritic structure and complexity in the adult hippocampal dentate gyrus. Neuroscience 137(4):1299–1307CrossRefPubMed
64.
Zurück zum Zitat Clark PJ et al (2008) Intact neurogenesis is required for benefits of exercise on spatial memory but not motor performance or contextual fear conditioning in C57BL/6J mice. Neuroscience 155(4):1048–1058CrossRefPubMed Clark PJ et al (2008) Intact neurogenesis is required for benefits of exercise on spatial memory but not motor performance or contextual fear conditioning in C57BL/6J mice. Neuroscience 155(4):1048–1058CrossRefPubMed
65.
Zurück zum Zitat Biedermann S et al (2012) In vivo voxel based morphometry: detection of increased hippocampal volume and decreased glutamate levels in exercising mice. Neuroimage 61(4):1206–1212CrossRefPubMed Biedermann S et al (2012) In vivo voxel based morphometry: detection of increased hippocampal volume and decreased glutamate levels in exercising mice. Neuroimage 61(4):1206–1212CrossRefPubMed
66.
Zurück zum Zitat Herting MM (2018) Exercise in cognition and motor learning. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press Herting MM (2018) Exercise in cognition and motor learning. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press
68.
Zurück zum Zitat Brockett AT, LaMarca EA, Gould E (2015) Physical exercise enhances cognitive flexibility as well as astrocytic and synaptic markers in the medial prefrontal cortex. PLoS ONE 10(5):e0124859CrossRefPubMedPubMedCentral Brockett AT, LaMarca EA, Gould E (2015) Physical exercise enhances cognitive flexibility as well as astrocytic and synaptic markers in the medial prefrontal cortex. PLoS ONE 10(5):e0124859CrossRefPubMedPubMedCentral
72.
Zurück zum Zitat Jiang T et al (2017) Physical exercise improves cognitive function together with microglia phenotype modulation and remyelination in chronic cerebral hypoperfusion. Front Cell Neurosci 11:404CrossRefPubMedPubMedCentral Jiang T et al (2017) Physical exercise improves cognitive function together with microglia phenotype modulation and remyelination in chronic cerebral hypoperfusion. Front Cell Neurosci 11:404CrossRefPubMedPubMedCentral
73.
Zurück zum Zitat Tomlinson L, Leiton CV, Colognato H (2016) Behavioral experiences as drivers of oligodendrocyte lineage dynamics and myelin plasticity. Neuropharmacology 110(Pt B):548–562CrossRefPubMed Tomlinson L, Leiton CV, Colognato H (2016) Behavioral experiences as drivers of oligodendrocyte lineage dynamics and myelin plasticity. Neuropharmacology 110(Pt B):548–562CrossRefPubMed
74.
Zurück zum Zitat Katsel P et al (2017) Microvascular anomaly conditions in psychiatric disease Schizophrenia–angiogenesis connection. Neurosci Biobehav Rev 77:327–339CrossRefPubMedPubMedCentral Katsel P et al (2017) Microvascular anomaly conditions in psychiatric disease Schizophrenia–angiogenesis connection. Neurosci Biobehav Rev 77:327–339CrossRefPubMedPubMedCentral
75.
Zurück zum Zitat Murrell CJ et al (2013) Cerebral blood flow and cerebrovascular reactivity at rest and during sub-maximal exercise: effect of age and 12-week exercise training. Age 35(3):905–920CrossRefPubMed Murrell CJ et al (2013) Cerebral blood flow and cerebrovascular reactivity at rest and during sub-maximal exercise: effect of age and 12-week exercise training. Age 35(3):905–920CrossRefPubMed
76.
Zurück zum Zitat Bragina IN, Voelcker-Rehage C (2018) Exercise effect in older adults. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press Bragina IN, Voelcker-Rehage C (2018) Exercise effect in older adults. In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press
77.
Zurück zum Zitat Pereira AC et al (2007) An in vivo correlate of exercise-induced neurogenesis in the adult dentate gyrus. Proc Natl Acad Sci USA 104(13):5638–5643CrossRefPubMedPubMedCentral Pereira AC et al (2007) An in vivo correlate of exercise-induced neurogenesis in the adult dentate gyrus. Proc Natl Acad Sci USA 104(13):5638–5643CrossRefPubMedPubMedCentral
78.
Zurück zum Zitat Christie BR et al (2008) Exercising our brains: how physical activity impacts synaptic plasticity in the dentate gyrus. Neuromol Med 10(2):47–58CrossRef Christie BR et al (2008) Exercising our brains: how physical activity impacts synaptic plasticity in the dentate gyrus. Neuromol Med 10(2):47–58CrossRef
79.
Zurück zum Zitat Glatt SJ et al (2011) Similarities and differences in peripheral blood gene-expression signatures of individuals with schizophrenia and their first-degree biological relatives. Am J Med Genet B Neuropsychiatr Genet 156b(8):869–887CrossRefPubMed Glatt SJ et al (2011) Similarities and differences in peripheral blood gene-expression signatures of individuals with schizophrenia and their first-degree biological relatives. Am J Med Genet B Neuropsychiatr Genet 156b(8):869–887CrossRefPubMed
80.
Zurück zum Zitat Szyf M (2014) Examining peripheral DNA methylation in behavioral epigenetic and epigenetic psychiatry: opportunities and challenges. Epigenomics 6(6):581–584CrossRefPubMed Szyf M (2014) Examining peripheral DNA methylation in behavioral epigenetic and epigenetic psychiatry: opportunities and challenges. Epigenomics 6(6):581–584CrossRefPubMed
83.
Zurück zum Zitat Schmitt A et al (2017) Consensus paper of the WFSBP task force on biological markers: criteria for biomarkers and endophenotypes of schizophrenia, part III: Molecular mechanisms. World J Biol Psychiatry 18(5):330–356CrossRefPubMed Schmitt A et al (2017) Consensus paper of the WFSBP task force on biological markers: criteria for biomarkers and endophenotypes of schizophrenia, part III: Molecular mechanisms. World J Biol Psychiatry 18(5):330–356CrossRefPubMed
84.
85.
Zurück zum Zitat Voisin S et al (2015) Exercise training and DNA methylation in humans. Acta Physiol (Oxf) 213(1):39–59CrossRef Voisin S et al (2015) Exercise training and DNA methylation in humans. Acta Physiol (Oxf) 213(1):39–59CrossRef
86.
Zurück zum Zitat Fernandes J, Arida RM, Gomez-Pinilla F (2017) Physical exercise as an epigenetic modulator of brain plasticity and cognition. Neurosci Biobehav Rev 80:443–456CrossRefPubMedPubMedCentral Fernandes J, Arida RM, Gomez-Pinilla F (2017) Physical exercise as an epigenetic modulator of brain plasticity and cognition. Neurosci Biobehav Rev 80:443–456CrossRefPubMedPubMedCentral
87.
Zurück zum Zitat Mega F et al (2018) Paternal physical exercise demethylates the hippocampal DNA of male pups without modifying the cognitive and physical development. Behav Brain Res 348:1–8CrossRefPubMed Mega F et al (2018) Paternal physical exercise demethylates the hippocampal DNA of male pups without modifying the cognitive and physical development. Behav Brain Res 348:1–8CrossRefPubMed
88.
Zurück zum Zitat Yeshurun S, Hannan AJ (2019) Transgenerational epigenetic influences of paternal environmental exposures on brain function and predisposition to psychiatric disorders. Mol Psychiatry 24(4):536–548CrossRefPubMed Yeshurun S, Hannan AJ (2019) Transgenerational epigenetic influences of paternal environmental exposures on brain function and predisposition to psychiatric disorders. Mol Psychiatry 24(4):536–548CrossRefPubMed
89.
Zurück zum Zitat Maejima H et al (2018) Exercise enhances cognitive function and neurotrophin expression in the hippocampus accompanied by changes in epigenetic programming in senescence-accelerated mice. Neurosci Lett 665:67–73CrossRefPubMed Maejima H et al (2018) Exercise enhances cognitive function and neurotrophin expression in the hippocampus accompanied by changes in epigenetic programming in senescence-accelerated mice. Neurosci Lett 665:67–73CrossRefPubMed
90.
Zurück zum Zitat Bianchi M et al (2017) Coordinated actions of MicroRNAs with other epigenetic factors regulate skeletal muscle development and adaptation. Int J Mol Sci 18(4):840CrossRefPubMedCentral Bianchi M et al (2017) Coordinated actions of MicroRNAs with other epigenetic factors regulate skeletal muscle development and adaptation. Int J Mol Sci 18(4):840CrossRefPubMedCentral
91.
Zurück zum Zitat Dong J et al (2018) MicroRNA-132 is associated with the cognition improvement following voluntary exercise in SAMP8 mice. Brain Res Bull 140:80–87CrossRefPubMed Dong J et al (2018) MicroRNA-132 is associated with the cognition improvement following voluntary exercise in SAMP8 mice. Brain Res Bull 140:80–87CrossRefPubMed
92.
Zurück zum Zitat Kashimoto RK et al (2016) Physical exercise affects the epigenetic programming of rat brain and modulates the adaptive response evoked by repeated restraint stress. Behav Brain Res 296:286–289CrossRefPubMed Kashimoto RK et al (2016) Physical exercise affects the epigenetic programming of rat brain and modulates the adaptive response evoked by repeated restraint stress. Behav Brain Res 296:286–289CrossRefPubMed
93.
Zurück zum Zitat Fernandes J et al (2018) Hippocampal microRNA-mRNA regulatory network is affected by physical exercise. Biochim Biophys Acta 1862(8):1711–1720CrossRef Fernandes J et al (2018) Hippocampal microRNA-mRNA regulatory network is affected by physical exercise. Biochim Biophys Acta 1862(8):1711–1720CrossRef
94.
Zurück zum Zitat Denham J, Prestes PR (2016) Muscle-enriched MicroRNAs isolated from whole blood are regulated by exercise and are potential biomarkers of cardiorespiratory fitness. Front Genet 7:196CrossRefPubMedPubMedCentral Denham J, Prestes PR (2016) Muscle-enriched MicroRNAs isolated from whole blood are regulated by exercise and are potential biomarkers of cardiorespiratory fitness. Front Genet 7:196CrossRefPubMedPubMedCentral
96.
Zurück zum Zitat Molteni R, Ying Z, Gómez-Pinilla F (2002) Differential effects of acute and chronic exercise on plasticity-related genes in the rat hippocampus revealed by microarray. Eur J Neurosci 16(6):1107–1116CrossRefPubMed Molteni R, Ying Z, Gómez-Pinilla F (2002) Differential effects of acute and chronic exercise on plasticity-related genes in the rat hippocampus revealed by microarray. Eur J Neurosci 16(6):1107–1116CrossRefPubMed
97.
Zurück zum Zitat Radahmadi M, Hosseini N, Alaei H (2016) Effect of exercise, exercise withdrawal, and continued regular exercise on excitability and long-term potentiation in the dentate gyrus of hippocampus. Brain Res 1653:8–13CrossRefPubMed Radahmadi M, Hosseini N, Alaei H (2016) Effect of exercise, exercise withdrawal, and continued regular exercise on excitability and long-term potentiation in the dentate gyrus of hippocampus. Brain Res 1653:8–13CrossRefPubMed
98.
Zurück zum Zitat Zheng F et al (2016) Voluntary running depreciates the requirement of Ca2 + -stimulated cAMP signaling in synaptic potentiation and memory formation. Learn Mem 23(8):442–449CrossRefPubMedPubMedCentral Zheng F et al (2016) Voluntary running depreciates the requirement of Ca2 + -stimulated cAMP signaling in synaptic potentiation and memory formation. Learn Mem 23(8):442–449CrossRefPubMedPubMedCentral
99.
Zurück zum Zitat Ohline SM, Abraham WC (2018) Environmental enrichment effects on synaptic and cellular physiology of hippocampal neurons. Neuropharmacology 145:3–12CrossRefPubMed Ohline SM, Abraham WC (2018) Environmental enrichment effects on synaptic and cellular physiology of hippocampal neurons. Neuropharmacology 145:3–12CrossRefPubMed
100.
Zurück zum Zitat Gomez-Pinilla F, Vaynman S, Ying Z (2008) Brain-derived neurotrophic factor functions as a metabotrophin to mediate the effects of exercise on cognition. Eur J Neurosci 28(11):2278–2287CrossRefPubMedPubMedCentral Gomez-Pinilla F, Vaynman S, Ying Z (2008) Brain-derived neurotrophic factor functions as a metabotrophin to mediate the effects of exercise on cognition. Eur J Neurosci 28(11):2278–2287CrossRefPubMedPubMedCentral
102.
Zurück zum Zitat Rothman SM, Mattson MP (2013) Activity-dependent, stress-responsive BDNF signaling and the quest for optimal brain health and resilience throughout the lifespan. Neuroscience 239:228–240CrossRefPubMed Rothman SM, Mattson MP (2013) Activity-dependent, stress-responsive BDNF signaling and the quest for optimal brain health and resilience throughout the lifespan. Neuroscience 239:228–240CrossRefPubMed
104.
Zurück zum Zitat Tartaglia N et al (2001) Protein synthesis-dependent and-independent regulation of hippocampal synapses by brain-derived neurotrophic factor. J Biol Chem 276(40):37585–37593CrossRefPubMed Tartaglia N et al (2001) Protein synthesis-dependent and-independent regulation of hippocampal synapses by brain-derived neurotrophic factor. J Biol Chem 276(40):37585–37593CrossRefPubMed
105.
Zurück zum Zitat Berchtold NC, Castello N, Cotman CW (2010) Exercise and time-dependent benefits to learning and memory. Neuroscience 167(3):588–597CrossRefPubMed Berchtold NC, Castello N, Cotman CW (2010) Exercise and time-dependent benefits to learning and memory. Neuroscience 167(3):588–597CrossRefPubMed
106.
Zurück zum Zitat Korte M et al (1995) Hippocampal long-term potentiation is impaired in mice lacking brain-derived neurotrophic factor. Proc Natl Acad Sci USA 92(19):8856–8860CrossRefPubMedPubMedCentral Korte M et al (1995) Hippocampal long-term potentiation is impaired in mice lacking brain-derived neurotrophic factor. Proc Natl Acad Sci USA 92(19):8856–8860CrossRefPubMedPubMedCentral
108.
Zurück zum Zitat Korte M et al (1996) Virus-mediated gene transfer into hippocampal CA1 region restores long-term potentiation in brain-derived neurotrophic factor mutant mice. Proc Natl Acad Sci 93(22):12547–12552CrossRefPubMedPubMedCentral Korte M et al (1996) Virus-mediated gene transfer into hippocampal CA1 region restores long-term potentiation in brain-derived neurotrophic factor mutant mice. Proc Natl Acad Sci 93(22):12547–12552CrossRefPubMedPubMedCentral
109.
Zurück zum Zitat Patterson SL et al (1996) Recombinant BDNF rescues deficits in basal synaptic transmission and hippocampal LTP in BDNF knockout mice. Neuron 16(6):1137–1145CrossRefPubMed Patterson SL et al (1996) Recombinant BDNF rescues deficits in basal synaptic transmission and hippocampal LTP in BDNF knockout mice. Neuron 16(6):1137–1145CrossRefPubMed
110.
Zurück zum Zitat Szuhany KL, Bugatti M, Otto MW (2015) A meta-analytic review of the effects of exercise on brain-derived neurotrophic factor. J Psychiatr Res 60:56–64CrossRefPubMed Szuhany KL, Bugatti M, Otto MW (2015) A meta-analytic review of the effects of exercise on brain-derived neurotrophic factor. J Psychiatr Res 60:56–64CrossRefPubMed
111.
Zurück zum Zitat Mora F, Segovia G, del Arco A (2007) Aging, plasticity and environmental enrichment: structural changes and neurotransmitter dynamics in several areas of the brain. Brain Res Rev 55(1):78–88CrossRefPubMed Mora F, Segovia G, del Arco A (2007) Aging, plasticity and environmental enrichment: structural changes and neurotransmitter dynamics in several areas of the brain. Brain Res Rev 55(1):78–88CrossRefPubMed
112.
Zurück zum Zitat Guillin O, Demily C, Thibaut F (2007) Brain-derived neurotrophic factor in schizophrenia and its relation with dopamine. Int Rev Neurobiol 78:377–395CrossRefPubMed Guillin O, Demily C, Thibaut F (2007) Brain-derived neurotrophic factor in schizophrenia and its relation with dopamine. Int Rev Neurobiol 78:377–395CrossRefPubMed
113.
Zurück zum Zitat Green MJ et al (2011) Brain-derived neurotrophic factor levels in schizophrenia: a systematic review with meta-analysis. Mol Psychiatry 16(9):960–972CrossRefPubMed Green MJ et al (2011) Brain-derived neurotrophic factor levels in schizophrenia: a systematic review with meta-analysis. Mol Psychiatry 16(9):960–972CrossRefPubMed
114.
Zurück zum Zitat Zhang XY et al (2012) Low BDNF is associated with cognitive impairment in chronic patients with schizophrenia. Psychopharmacology 222(2):277–284CrossRefPubMed Zhang XY et al (2012) Low BDNF is associated with cognitive impairment in chronic patients with schizophrenia. Psychopharmacology 222(2):277–284CrossRefPubMed
115.
Zurück zum Zitat Park H, Poo MM (2013) Neurotrophin regulation of neural circuit development and function. Nat Rev Neurosci 14(1):7–23CrossRefPubMed Park H, Poo MM (2013) Neurotrophin regulation of neural circuit development and function. Nat Rev Neurosci 14(1):7–23CrossRefPubMed
116.
Zurück zum Zitat Kim HJ et al (2014) Increase of circulating BDNF levels and its relation to improvement of physical fitness following 12 weeks of combined exercise in chronic patients with schizophrenia: a pilot study. Psychiatry Res 220(3):792–796CrossRefPubMed Kim HJ et al (2014) Increase of circulating BDNF levels and its relation to improvement of physical fitness following 12 weeks of combined exercise in chronic patients with schizophrenia: a pilot study. Psychiatry Res 220(3):792–796CrossRefPubMed
117.
Zurück zum Zitat Kuo FC et al (2013) Lifestyle modification and behavior therapy effectively reduce body weight and increase serum level of brain-derived neurotrophic factor in obese non-diabetic patients with schizophrenia. Psychiatry Res 209(2):150–154CrossRefPubMed Kuo FC et al (2013) Lifestyle modification and behavior therapy effectively reduce body weight and increase serum level of brain-derived neurotrophic factor in obese non-diabetic patients with schizophrenia. Psychiatry Res 209(2):150–154CrossRefPubMed
118.
Zurück zum Zitat Kimhy D et al (2015) The impact of aerobic exercise on brain-derived neurotrophic factor and neurocognition in individuals with schizophrenia: a single-blind, randomized clinical trial. Schizophr Bull 41(4):859–868CrossRefPubMedPubMedCentral Kimhy D et al (2015) The impact of aerobic exercise on brain-derived neurotrophic factor and neurocognition in individuals with schizophrenia: a single-blind, randomized clinical trial. Schizophr Bull 41(4):859–868CrossRefPubMedPubMedCentral
119.
Zurück zum Zitat Chang Y-T et al (2008) Glucocorticoid signaling and exercise-induced downregulation of the mineralocorticoid receptor in the induction of adult mouse dentate neurogenesis by treadmill running. Psychoneuroendocrinology 33(9):1173–1182CrossRefPubMed Chang Y-T et al (2008) Glucocorticoid signaling and exercise-induced downregulation of the mineralocorticoid receptor in the induction of adult mouse dentate neurogenesis by treadmill running. Psychoneuroendocrinology 33(9):1173–1182CrossRefPubMed
120.
121.
Zurück zum Zitat Chen MJ, Ivy AS, Russo-Neustadt A (2006) Nitric oxide synthesis is required for exercise-induced increases in hippocampal BDNF and phosphatidylinositol 3′ kinase expression. Brain Res Bull 68(4):257–268CrossRefPubMed Chen MJ, Ivy AS, Russo-Neustadt A (2006) Nitric oxide synthesis is required for exercise-induced increases in hippocampal BDNF and phosphatidylinositol 3′ kinase expression. Brain Res Bull 68(4):257–268CrossRefPubMed
122.
Zurück zum Zitat Gill JM (2007) Physical activity, cardiorespiratory fitness and insulin resistance: a short update. Curr Opin Lipidol 18(1):47–52CrossRefPubMed Gill JM (2007) Physical activity, cardiorespiratory fitness and insulin resistance: a short update. Curr Opin Lipidol 18(1):47–52CrossRefPubMed
123.
Zurück zum Zitat Pan W, Kastin AJ (2000) Interactions of IGF-1 with the blood-brain barrier in vivo and in situ. Neuroendocrinology 72(3):171–178CrossRefPubMed Pan W, Kastin AJ (2000) Interactions of IGF-1 with the blood-brain barrier in vivo and in situ. Neuroendocrinology 72(3):171–178CrossRefPubMed
124.
Zurück zum Zitat Cotman CW, Berchtold NC (2002) Exercise: a behavioral intervention to enhance brain health and plasticity. Trends Neurosci 25(6):295–301CrossRefPubMed Cotman CW, Berchtold NC (2002) Exercise: a behavioral intervention to enhance brain health and plasticity. Trends Neurosci 25(6):295–301CrossRefPubMed
125.
126.
Zurück zum Zitat Martinotti G et al (2012) Nerve growth factor and brain-derived neurotrophic factor concentrations in schizophrenia: a review. J Biol Regul Homeost Agents 26(3):347PubMed Martinotti G et al (2012) Nerve growth factor and brain-derived neurotrophic factor concentrations in schizophrenia: a review. J Biol Regul Homeost Agents 26(3):347PubMed
127.
Zurück zum Zitat Venkatasubramanian G et al (2007) Insulin and insulin-like growth factor-1 abnormalities in antipsychotic-naive schizophrenia. Am J Psychiatry 164(10):1557–1560CrossRefPubMed Venkatasubramanian G et al (2007) Insulin and insulin-like growth factor-1 abnormalities in antipsychotic-naive schizophrenia. Am J Psychiatry 164(10):1557–1560CrossRefPubMed
128.
Zurück zum Zitat Andrade e Silva B et al (2015) A 20-week program of resistance or concurrent exercise improves symptoms of schizophrenia: results of a blind, randomized controlled trial. Rev Bras de Psiquiatr 37(4):271–279CrossRef Andrade e Silva B et al (2015) A 20-week program of resistance or concurrent exercise improves symptoms of schizophrenia: results of a blind, randomized controlled trial. Rev Bras de Psiquiatr 37(4):271–279CrossRef
129.
Zurück zum Zitat Gavin TP et al (2004) Angiogenic growth factor response to acute systemic exercise in human skeletal muscle. J Appl Physiol 96(1):19–24CrossRefPubMed Gavin TP et al (2004) Angiogenic growth factor response to acute systemic exercise in human skeletal muscle. J Appl Physiol 96(1):19–24CrossRefPubMed
130.
Zurück zum Zitat Gustafsson T et al (2002) Increased expression of vascular endothelial growth factor in human skeletal muscle in response to short-term one-legged exercise training. Pflügers Archiv 444(6):752–759CrossRefPubMed Gustafsson T et al (2002) Increased expression of vascular endothelial growth factor in human skeletal muscle in response to short-term one-legged exercise training. Pflügers Archiv 444(6):752–759CrossRefPubMed
131.
Zurück zum Zitat Tang K et al (2010) Exercise-induced VEGF transcriptional activation in brain, lung and skeletal muscle. Respir Physiol Neurobiol 170(1):16–22CrossRefPubMed Tang K et al (2010) Exercise-induced VEGF transcriptional activation in brain, lung and skeletal muscle. Respir Physiol Neurobiol 170(1):16–22CrossRefPubMed
132.
Zurück zum Zitat Misiak B et al (2018) Vascular endothelial growth factor in patients with schizophrenia: a systematic review and meta-analysis. Prog Neuropsychopharmacol Biol Psychiatry 86:24–29CrossRefPubMed Misiak B et al (2018) Vascular endothelial growth factor in patients with schizophrenia: a systematic review and meta-analysis. Prog Neuropsychopharmacol Biol Psychiatry 86:24–29CrossRefPubMed
133.
Zurück zum Zitat Gómez-Pinilla F, Dao L, So V (1997) Physical exercise induces FGF-2 and its mRNA in the hippocampus. Brain Res 764(1–2):1–8CrossRefPubMed Gómez-Pinilla F, Dao L, So V (1997) Physical exercise induces FGF-2 and its mRNA in the hippocampus. Brain Res 764(1–2):1–8CrossRefPubMed
134.
Zurück zum Zitat Hunsberger JG et al (2007) Antidepressant actions of the exercise-regulated gene VGF. Nat Med 13(12):1476CrossRefPubMed Hunsberger JG et al (2007) Antidepressant actions of the exercise-regulated gene VGF. Nat Med 13(12):1476CrossRefPubMed
135.
Zurück zum Zitat Van Hoomissen JD et al (2004) Effects of β-adrenoreceptor blockade during chronic exercise on contextual fear conditioning and mRNA for galanin and brain-derived neurotrophic factor. Behav Neurosci 118(6):1378CrossRefPubMed Van Hoomissen JD et al (2004) Effects of β-adrenoreceptor blockade during chronic exercise on contextual fear conditioning and mRNA for galanin and brain-derived neurotrophic factor. Behav Neurosci 118(6):1378CrossRefPubMed
137.
Zurück zum Zitat Meeusen R, Piacentini MF, De Meirleir K (2001) Brain microdialysis in exercise research. Sports Med 31(14):965–983CrossRefPubMed Meeusen R, Piacentini MF, De Meirleir K (2001) Brain microdialysis in exercise research. Sports Med 31(14):965–983CrossRefPubMed
138.
Zurück zum Zitat Lee GJ, Park JH, Park HK (2008) Microdialysis applications in neuroscience. Neurol Res 30(7):661–668CrossRefPubMed Lee GJ, Park JH, Park HK (2008) Microdialysis applications in neuroscience. Neurol Res 30(7):661–668CrossRefPubMed
139.
Zurück zum Zitat Buhot MC, Martin S, Segu L (2000) Role of serotonin in memory impairment. Ann Med 32(3):210–221CrossRefPubMed Buhot MC, Martin S, Segu L (2000) Role of serotonin in memory impairment. Ann Med 32(3):210–221CrossRefPubMed
140.
Zurück zum Zitat Naughton M, Mulrooney JB, Leonard BE (2000) A review of the role of serotonin receptors in psychiatric disorders. Hum Psychopharmacol 15(6):397–415CrossRefPubMed Naughton M, Mulrooney JB, Leonard BE (2000) A review of the role of serotonin receptors in psychiatric disorders. Hum Psychopharmacol 15(6):397–415CrossRefPubMed
141.
Zurück zum Zitat Meeter M et al (2006) Effects of 5-HT on memory and the hippocampus: model and data. Neuropsychopharmacology 31(4):712–720CrossRefPubMed Meeter M et al (2006) Effects of 5-HT on memory and the hippocampus: model and data. Neuropsychopharmacology 31(4):712–720CrossRefPubMed
143.
Zurück zum Zitat Chen H-I et al (2008) Treadmill exercise enhances passive avoidance learning in rats: the role of down-regulated serotonin system in the limbic system. Neurobiol Learn Mem 89(4):489–496CrossRefPubMed Chen H-I et al (2008) Treadmill exercise enhances passive avoidance learning in rats: the role of down-regulated serotonin system in the limbic system. Neurobiol Learn Mem 89(4):489–496CrossRefPubMed
144.
Zurück zum Zitat Meeusen R, De Meirleir K (1995) Exercise and brain neurotransmission. Sports Med 20(3):160–188CrossRefPubMed Meeusen R, De Meirleir K (1995) Exercise and brain neurotransmission. Sports Med 20(3):160–188CrossRefPubMed
145.
Zurück zum Zitat Blomstrand E (2006) A role for branched-chain amino acids in reducing central fatigue. J Nutr 136(2):544S–547SCrossRefPubMed Blomstrand E (2006) A role for branched-chain amino acids in reducing central fatigue. J Nutr 136(2):544S–547SCrossRefPubMed
146.
Zurück zum Zitat Kiank C et al (2010) Psychological stress-induced, IDO1-dependent tryptophan catabolism: implications on immunosuppression in mice and humans. PLoS ONE 5(7):e11825CrossRefPubMedPubMedCentral Kiank C et al (2010) Psychological stress-induced, IDO1-dependent tryptophan catabolism: implications on immunosuppression in mice and humans. PLoS ONE 5(7):e11825CrossRefPubMedPubMedCentral
147.
Zurück zum Zitat Lee H et al (2013) Regular moderate or intense exercise prevents depression-like behavior without change of hippocampal tryptophan content in chronically tryptophan-deficient and stressed mice. PLoS ONE 8(7):e66996CrossRefPubMedPubMedCentral Lee H et al (2013) Regular moderate or intense exercise prevents depression-like behavior without change of hippocampal tryptophan content in chronically tryptophan-deficient and stressed mice. PLoS ONE 8(7):e66996CrossRefPubMedPubMedCentral
148.
Zurück zum Zitat McMorris T (2016) Developing the catecholamines hypothesis for the acute exercise-cognition interaction in humans: lessons from animal studies. Physiol Behav 165:291–299CrossRefPubMed McMorris T (2016) Developing the catecholamines hypothesis for the acute exercise-cognition interaction in humans: lessons from animal studies. Physiol Behav 165:291–299CrossRefPubMed
149.
Zurück zum Zitat Lammel S, Lim BK, Malenka RC (2014) Reward and aversion in a heterogeneous midbrain dopamine system. Neuropharmacology 76:351–359CrossRefPubMed Lammel S, Lim BK, Malenka RC (2014) Reward and aversion in a heterogeneous midbrain dopamine system. Neuropharmacology 76:351–359CrossRefPubMed
150.
151.
152.
Zurück zum Zitat Greenwood BN et al (2011) Long-term voluntary wheel running is rewarding and produces plasticity in the mesolimbic reward pathway. Behav Brain Res 217(2):354–362CrossRefPubMed Greenwood BN et al (2011) Long-term voluntary wheel running is rewarding and produces plasticity in the mesolimbic reward pathway. Behav Brain Res 217(2):354–362CrossRefPubMed
153.
Zurück zum Zitat Goffer Y et al (2013) Calcium-permeable AMPA receptors in the nucleus accumbens regulate depression-like behaviors in the chronic neuropathic pain state. J Neurosci 33(48):19034–19044CrossRefPubMedPubMedCentral Goffer Y et al (2013) Calcium-permeable AMPA receptors in the nucleus accumbens regulate depression-like behaviors in the chronic neuropathic pain state. J Neurosci 33(48):19034–19044CrossRefPubMedPubMedCentral
154.
Zurück zum Zitat Phillips C (2017) Physical activity modulates common neuroplasticity substrates in major depressive and bipolar disorder. Neural Plast 2017:7014146PubMedPubMedCentral Phillips C (2017) Physical activity modulates common neuroplasticity substrates in major depressive and bipolar disorder. Neural Plast 2017:7014146PubMedPubMedCentral
155.
Zurück zum Zitat Deslandes A et al (2009) Exercise and mental health: many reasons to move. Neuropsychobiology 59(4):191–198CrossRefPubMed Deslandes A et al (2009) Exercise and mental health: many reasons to move. Neuropsychobiology 59(4):191–198CrossRefPubMed
156.
Zurück zum Zitat Holtmaat A, Svoboda K (2009) Experience-dependent structural synaptic plasticity in the mammalian brain. Nat Rev Neurosci 10(9):647CrossRefPubMed Holtmaat A, Svoboda K (2009) Experience-dependent structural synaptic plasticity in the mammalian brain. Nat Rev Neurosci 10(9):647CrossRefPubMed
157.
158.
Zurück zum Zitat Hasan A et al (2014) The glutamate hypothesis of schizophrenia. Fortschr Neurol Psychiatr 82(8):447–456CrossRefPubMed Hasan A et al (2014) The glutamate hypothesis of schizophrenia. Fortschr Neurol Psychiatr 82(8):447–456CrossRefPubMed
159.
Zurück zum Zitat Jia J et al (2009) Pre-ischemic treadmill training affects glutamate and gamma aminobutyric acid levels in the striatal dialysate of a rat model of cerebral ischemia. Life Sci 84(15–16):505–511CrossRefPubMed Jia J et al (2009) Pre-ischemic treadmill training affects glutamate and gamma aminobutyric acid levels in the striatal dialysate of a rat model of cerebral ischemia. Life Sci 84(15–16):505–511CrossRefPubMed
160.
Zurück zum Zitat Sutoo DE, Akiyama K (1996) The mechanism by which exercise modifies brain function. Physiol Behav 60(1):177–181CrossRefPubMed Sutoo DE, Akiyama K (1996) The mechanism by which exercise modifies brain function. Physiol Behav 60(1):177–181CrossRefPubMed
161.
162.
Zurück zum Zitat Gregoire CA et al (2018) RNA-sequencing reveals unique transcriptional signatures of running and running-independent environmental enrichment in the adult mouse dentate gyrus. Front Mol Neurosci 11:126CrossRefPubMedPubMedCentral Gregoire CA et al (2018) RNA-sequencing reveals unique transcriptional signatures of running and running-independent environmental enrichment in the adult mouse dentate gyrus. Front Mol Neurosci 11:126CrossRefPubMedPubMedCentral
163.
Zurück zum Zitat Vasuta C et al (2007) Effects of exercise on NMDA receptor subunit contributions to bidirectional synaptic plasticity in the mouse dentate gyrus. Hippocampus 17(12):1201–1208CrossRefPubMed Vasuta C et al (2007) Effects of exercise on NMDA receptor subunit contributions to bidirectional synaptic plasticity in the mouse dentate gyrus. Hippocampus 17(12):1201–1208CrossRefPubMed
164.
Zurück zum Zitat Ren H et al (2017) Effects of different training loads on emotional state and mRNA and protein expressions of N-methyl-D-aspartate receptor subunits, postsynaptic density 95, and kinesin family member 17 in hippocampus of rats. Med Sci Monit 23:4954–4960CrossRefPubMedPubMedCentral Ren H et al (2017) Effects of different training loads on emotional state and mRNA and protein expressions of N-methyl-D-aspartate receptor subunits, postsynaptic density 95, and kinesin family member 17 in hippocampus of rats. Med Sci Monit 23:4954–4960CrossRefPubMedPubMedCentral
165.
Zurück zum Zitat Martin-Ruiz CM et al (2003) Dementia rating and nicotinic receptor expression in the prefrontal cortex in schizophrenia. Biol Psychiatry 54(11):1222–1233CrossRefPubMed Martin-Ruiz CM et al (2003) Dementia rating and nicotinic receptor expression in the prefrontal cortex in schizophrenia. Biol Psychiatry 54(11):1222–1233CrossRefPubMed
166.
Zurück zum Zitat Wong DF et al (2018) Brain PET imaging of alpha7-nAChR with [18F]ASEM: reproducibility, occupancy, receptor density, and changes in schizophrenia. Int J Neuropsychopharmacol 21(7):656–667CrossRefPubMedPubMedCentral Wong DF et al (2018) Brain PET imaging of alpha7-nAChR with [18F]ASEM: reproducibility, occupancy, receptor density, and changes in schizophrenia. Int J Neuropsychopharmacol 21(7):656–667CrossRefPubMedPubMedCentral
167.
Zurück zum Zitat Jones C (2018) alpha7 nicotinic acetylcholine receptor: a potential target in treating cognitive decline in schizophrenia. J Clin Psychopharmacol 38(3):247–249CrossRefPubMed Jones C (2018) alpha7 nicotinic acetylcholine receptor: a potential target in treating cognitive decline in schizophrenia. J Clin Psychopharmacol 38(3):247–249CrossRefPubMed
168.
Zurück zum Zitat Segal-Gavish H et al (2017) Voluntary exercise improves cognitive deficits in female dominant-negative DISC1 transgenic mouse model of neuropsychiatric disorders. World J Biol Psychiatry 20(3):243–252CrossRefPubMed Segal-Gavish H et al (2017) Voluntary exercise improves cognitive deficits in female dominant-negative DISC1 transgenic mouse model of neuropsychiatric disorders. World J Biol Psychiatry 20(3):243–252CrossRefPubMed
169.
Zurück zum Zitat Fordyce D, Farrar R (1991) Enhancement of spatial learning in F344 rats by physical activity and related learning-associated alterations in hippocampal and cortical cholinergic functioning. Behav Brain Res 46(2):123–133CrossRefPubMed Fordyce D, Farrar R (1991) Enhancement of spatial learning in F344 rats by physical activity and related learning-associated alterations in hippocampal and cortical cholinergic functioning. Behav Brain Res 46(2):123–133CrossRefPubMed
170.
Zurück zum Zitat Giocomo LM, Hasselmo ME (2007) Neuromodulation by glutamate and acetylcholine can change circuit dynamics by regulating the relative influence of afferent input and excitatory feedback. Mol Neurobiol 36(2):184–200CrossRefPubMed Giocomo LM, Hasselmo ME (2007) Neuromodulation by glutamate and acetylcholine can change circuit dynamics by regulating the relative influence of afferent input and excitatory feedback. Mol Neurobiol 36(2):184–200CrossRefPubMed
171.
Zurück zum Zitat Buzsaki G (2005) Theta rhythm of navigation: link between path integration and landmark navigation, episodic and semantic memory. Hippocampus 15(7):827–840CrossRefPubMed Buzsaki G (2005) Theta rhythm of navigation: link between path integration and landmark navigation, episodic and semantic memory. Hippocampus 15(7):827–840CrossRefPubMed
172.
Zurück zum Zitat Leweke FM et al (2018) Role of the endocannabinoid system in the pathophysiology of schizophrenia: implications for pharmacological intervention. CNS Drugs 32(7):605–619CrossRefPubMed Leweke FM et al (2018) Role of the endocannabinoid system in the pathophysiology of schizophrenia: implications for pharmacological intervention. CNS Drugs 32(7):605–619CrossRefPubMed
173.
Zurück zum Zitat Ibarra-Lecue, I., et al., The endocannabinoid system in mental disorders: Evidence from human brain studies. Biochem Pharmacol, 2018 Ibarra-Lecue, I., et al., The endocannabinoid system in mental disorders: Evidence from human brain studies. Biochem Pharmacol, 2018
175.
Zurück zum Zitat Piomelli D (2003) The molecular logic of endocannabinoid signalling. Nat Rev Neurosci 4(11):873–884CrossRefPubMed Piomelli D (2003) The molecular logic of endocannabinoid signalling. Nat Rev Neurosci 4(11):873–884CrossRefPubMed
176.
Zurück zum Zitat Sparling P et al (2003) Exercise activates the endocannabinoid system. NeuroReport 14(17):2209–2211CrossRefPubMed Sparling P et al (2003) Exercise activates the endocannabinoid system. NeuroReport 14(17):2209–2211CrossRefPubMed
177.
Zurück zum Zitat Tantimonaco M et al (2014) Physical activity and the endocannabinoid system: an overview. Cell Mol Life Sci 71(14):2681–2698CrossRefPubMed Tantimonaco M et al (2014) Physical activity and the endocannabinoid system: an overview. Cell Mol Life Sci 71(14):2681–2698CrossRefPubMed
178.
Zurück zum Zitat Grassmann VM, Faulkner G, Can PA (2018) Prevent mental illness? In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press Grassmann VM, Faulkner G, Can PA (2018) Prevent mental illness? In: Budde H, Wegner M (eds) The exercise effect on mental health: neurobiological mechanisms. CRC Press
179.
Zurück zum Zitat Walker E, Mittal V, Tessner K (2008) Stress and the hypothalamic pituitary adrenal axis in the developmental course of schizophrenia. Annu Rev Clin Psychol 4:189–216CrossRefPubMed Walker E, Mittal V, Tessner K (2008) Stress and the hypothalamic pituitary adrenal axis in the developmental course of schizophrenia. Annu Rev Clin Psychol 4:189–216CrossRefPubMed
180.
Zurück zum Zitat Steen NE et al (2014) Altered systemic cortisol metabolism in bipolar disorder and schizophrenia spectrum disorders. J Psychiatr Res 52:57–62CrossRefPubMed Steen NE et al (2014) Altered systemic cortisol metabolism in bipolar disorder and schizophrenia spectrum disorders. J Psychiatr Res 52:57–62CrossRefPubMed
181.
Zurück zum Zitat Holsen LM et al (2013) HPA-axis hormone modulation of stress response circuitry activity in women with remitted major depression. Neuroscience 250:733–742CrossRefPubMed Holsen LM et al (2013) HPA-axis hormone modulation of stress response circuitry activity in women with remitted major depression. Neuroscience 250:733–742CrossRefPubMed
182.
Zurück zum Zitat Murakami S et al (2005) Chronic stress, as well as acute stress, reduces BDNF mRNA expression in the rat hippocampus but less robustly. Neurosci Res 53(2):129–139CrossRefPubMed Murakami S et al (2005) Chronic stress, as well as acute stress, reduces BDNF mRNA expression in the rat hippocampus but less robustly. Neurosci Res 53(2):129–139CrossRefPubMed
183.
Zurück zum Zitat Stranahan AM, Lee K, Mattson MP (2008) Central mechanisms of HPA axis regulation by voluntary exercise. NeuroMol Med 10(2):118–127CrossRef Stranahan AM, Lee K, Mattson MP (2008) Central mechanisms of HPA axis regulation by voluntary exercise. NeuroMol Med 10(2):118–127CrossRef
184.
Zurück zum Zitat Hayes LD et al (2015) Exercise-induced responses in salivary testosterone, cortisol, and their ratios in men: a meta-analysis. Sports Med 45(5):713–726CrossRefPubMed Hayes LD et al (2015) Exercise-induced responses in salivary testosterone, cortisol, and their ratios in men: a meta-analysis. Sports Med 45(5):713–726CrossRefPubMed
185.
Zurück zum Zitat Bi S et al (2005) Running wheel activity prevents hyperphagia and obesity in Otsuka long-evans Tokushima Fatty rats: role of hypothalamic signaling. Endocrinology 146(4):1676–1685CrossRefPubMed Bi S et al (2005) Running wheel activity prevents hyperphagia and obesity in Otsuka long-evans Tokushima Fatty rats: role of hypothalamic signaling. Endocrinology 146(4):1676–1685CrossRefPubMed
186.
Zurück zum Zitat Droste SK et al (2007) Voluntary exercise impacts on the rat hypothalamic-pituitary-adrenocortical axis mainly at the adrenal level. Neuroendocrinology 86(1):26–37CrossRefPubMed Droste SK et al (2007) Voluntary exercise impacts on the rat hypothalamic-pituitary-adrenocortical axis mainly at the adrenal level. Neuroendocrinology 86(1):26–37CrossRefPubMed
187.
Zurück zum Zitat Park E et al (2005) Changes in basal hypothalamo-pituitary-adrenal activity during exercise training are centrally mediated. Am J Physiol Regul Integr Comp Physiol 289(5):R1360–R1371CrossRefPubMed Park E et al (2005) Changes in basal hypothalamo-pituitary-adrenal activity during exercise training are centrally mediated. Am J Physiol Regul Integr Comp Physiol 289(5):R1360–R1371CrossRefPubMed
188.
189.
Zurück zum Zitat Potvin S et al (2008) Inflammatory cytokine alterations in schizophrenia: a systematic quantitative review. Biol Psychiatry 63(8):801–808CrossRefPubMed Potvin S et al (2008) Inflammatory cytokine alterations in schizophrenia: a systematic quantitative review. Biol Psychiatry 63(8):801–808CrossRefPubMed
190.
Zurück zum Zitat van Kesteren CF et al (2017) Immune involvement in the pathogenesis of schizophrenia: a meta-analysis on postmortem brain studies. Transl Psychiatry 7(3):e1075CrossRefPubMedPubMedCentral van Kesteren CF et al (2017) Immune involvement in the pathogenesis of schizophrenia: a meta-analysis on postmortem brain studies. Transl Psychiatry 7(3):e1075CrossRefPubMedPubMedCentral
191.
Zurück zum Zitat Dickerson F et al (2007) C-reactive protein is associated with the severity of cognitive impairment but not of psychiatric symptoms in individuals with schizophrenia. Schizophr Res 93(1):261–265CrossRefPubMed Dickerson F et al (2007) C-reactive protein is associated with the severity of cognitive impairment but not of psychiatric symptoms in individuals with schizophrenia. Schizophr Res 93(1):261–265CrossRefPubMed
192.
Zurück zum Zitat Schmitt A et al (2011) Regulation of immune-modulatory genes in left superior temporal cortex of schizophrenia patients: a genome-wide microarray study. World J Biol Psychiatry 12(3):201–215CrossRefPubMed Schmitt A et al (2011) Regulation of immune-modulatory genes in left superior temporal cortex of schizophrenia patients: a genome-wide microarray study. World J Biol Psychiatry 12(3):201–215CrossRefPubMed
193.
Zurück zum Zitat Kato T et al (2007) Risperidone significantly inhibits interferon-gamma-induced microglial activation in vitro. Schizophr Res 92(1–3):108–115CrossRefPubMed Kato T et al (2007) Risperidone significantly inhibits interferon-gamma-induced microglial activation in vitro. Schizophr Res 92(1–3):108–115CrossRefPubMed
194.
Zurück zum Zitat Garcia-Bueno B, Caso JR, Leza JC (2008) Stress as a neuroinflammatory condition in brain: damaging and protective mechanisms. Neurosci Biobehav Rev 32(6):1136–1151CrossRefPubMed Garcia-Bueno B, Caso JR, Leza JC (2008) Stress as a neuroinflammatory condition in brain: damaging and protective mechanisms. Neurosci Biobehav Rev 32(6):1136–1151CrossRefPubMed
195.
Zurück zum Zitat Anisman H (2009) Cascading effects of stressors and inflammatory immune system activation: implications for major depressive disorder. J Psychiatry Neurosci 34(1):4–20PubMedPubMedCentral Anisman H (2009) Cascading effects of stressors and inflammatory immune system activation: implications for major depressive disorder. J Psychiatry Neurosci 34(1):4–20PubMedPubMedCentral
196.
Zurück zum Zitat Littlefield AM et al (2015) Voluntary exercise attenuates LPS-induced reductions in neurogenesis and increases microglia expression of a proneurogenic phenotype in aged mice. J Neuroinflamm 12:138CrossRef Littlefield AM et al (2015) Voluntary exercise attenuates LPS-induced reductions in neurogenesis and increases microglia expression of a proneurogenic phenotype in aged mice. J Neuroinflamm 12:138CrossRef
197.
Zurück zum Zitat Svensson M, Lexell J, Deierborg T (2015) Effects of physical exercise on neuroinflammation, neuroplasticity, neurodegeneration, and behavior: what we can learn from animal models in clinical settings. Neurorehabil Neural Repair 29(6):577–589CrossRefPubMed Svensson M, Lexell J, Deierborg T (2015) Effects of physical exercise on neuroinflammation, neuroplasticity, neurodegeneration, and behavior: what we can learn from animal models in clinical settings. Neurorehabil Neural Repair 29(6):577–589CrossRefPubMed
198.
Zurück zum Zitat Petersen AM, Pedersen BK (2005) The anti-inflammatory effect of exercise. J Appl Physiol 98(4):1154–1162CrossRefPubMed Petersen AM, Pedersen BK (2005) The anti-inflammatory effect of exercise. J Appl Physiol 98(4):1154–1162CrossRefPubMed
200.
Zurück zum Zitat Gomes da Silva S et al (2013) Exercise-induced hippocampal anti-inflammatory response in aged rats. J Neuroinflamm 10:61CrossRef Gomes da Silva S et al (2013) Exercise-induced hippocampal anti-inflammatory response in aged rats. J Neuroinflamm 10:61CrossRef
201.
202.
Zurück zum Zitat Hamer M, Endrighi R, Poole L (2012) Physical activity, stress reduction, and mood: insight into immunological mechanisms. Methods Mol Biol 934:89–102CrossRefPubMed Hamer M, Endrighi R, Poole L (2012) Physical activity, stress reduction, and mood: insight into immunological mechanisms. Methods Mol Biol 934:89–102CrossRefPubMed
203.
Zurück zum Zitat Eyre H, Baune BT (2012) Neuroimmunological effects of physical exercise in depression. Brain Behav Immun 26(2):251–266CrossRefPubMed Eyre H, Baune BT (2012) Neuroimmunological effects of physical exercise in depression. Brain Behav Immun 26(2):251–266CrossRefPubMed
204.
Zurück zum Zitat Donges CE, Duffield R, Drinkwater EJ (2010) Effects of resistance or aerobic exercise training on interleukin-6, C-reactive protein, and body composition. Med Sci Sports Exerc 42(2):304–313CrossRefPubMed Donges CE, Duffield R, Drinkwater EJ (2010) Effects of resistance or aerobic exercise training on interleukin-6, C-reactive protein, and body composition. Med Sci Sports Exerc 42(2):304–313CrossRefPubMed
205.
Zurück zum Zitat Aderbal SL Jr, Latini A (2018) Treating depression with exercise, an immune perspecitve. In: Budde HW (ed) The exercise effect on mental health, neurobiological mechanisms. Routledge, New York Aderbal SL Jr, Latini A (2018) Treating depression with exercise, an immune perspecitve. In: Budde HW (ed) The exercise effect on mental health, neurobiological mechanisms. Routledge, New York
206.
Zurück zum Zitat Kadoglou NP et al (2007) The anti-inflammatory effects of exercise training in patients with type 2 diabetes mellitus. Eur J Cardiovasc Prev Rehabil 14(6):837–843CrossRefPubMed Kadoglou NP et al (2007) The anti-inflammatory effects of exercise training in patients with type 2 diabetes mellitus. Eur J Cardiovasc Prev Rehabil 14(6):837–843CrossRefPubMed
207.
Zurück zum Zitat Parachikova A, Nichol KE, Cotman CW (2008) Short-term exercise in aged Tg2576 mice alters neuroinflammation and improves cognition. Neurobiol Dis 30(1):121–129CrossRefPubMedPubMedCentral Parachikova A, Nichol KE, Cotman CW (2008) Short-term exercise in aged Tg2576 mice alters neuroinflammation and improves cognition. Neurobiol Dis 30(1):121–129CrossRefPubMedPubMedCentral
208.
Zurück zum Zitat Martin SA et al (2013) Effects of voluntary wheel running on LPS-induced sickness behavior in aged mice. Brain Behav Immun 29:113–123CrossRefPubMed Martin SA et al (2013) Effects of voluntary wheel running on LPS-induced sickness behavior in aged mice. Brain Behav Immun 29:113–123CrossRefPubMed
209.
Zurück zum Zitat Heggelund J et al (2011) Effects of high aerobic intensity training in patients with schizophrenia—a controlled trial. Nord J Psychiatry 65(4):269–275CrossRefPubMedPubMedCentral Heggelund J et al (2011) Effects of high aerobic intensity training in patients with schizophrenia—a controlled trial. Nord J Psychiatry 65(4):269–275CrossRefPubMedPubMedCentral
210.
Zurück zum Zitat McCreadie RG (2003) Diet, smoking and cardiovascular risk in people with schizophrenia. Br J Psychiatry 183(6):534–539PubMed McCreadie RG (2003) Diet, smoking and cardiovascular risk in people with schizophrenia. Br J Psychiatry 183(6):534–539PubMed
211.
Zurück zum Zitat Wu JQ, Kosten TR, Zhang XY (2013) Free radicals, antioxidant defense systems, and schizophrenia. Prog Neuropsychopharmacol Biol Psychiatry 46:200–206CrossRefPubMed Wu JQ, Kosten TR, Zhang XY (2013) Free radicals, antioxidant defense systems, and schizophrenia. Prog Neuropsychopharmacol Biol Psychiatry 46:200–206CrossRefPubMed
214.
215.
Zurück zum Zitat Malchow B et al (2013) The effects of physical exercise in schizophrenia and affective disorders. Eur Arch Psychiatry Clin Neurosci 263(6):451–467CrossRefPubMed Malchow B et al (2013) The effects of physical exercise in schizophrenia and affective disorders. Eur Arch Psychiatry Clin Neurosci 263(6):451–467CrossRefPubMed
216.
Zurück zum Zitat Keller-Varady K et al (2018) A systematic review of trials investigating strength training in schizophrenia spectrum disorders. Schizophr Res 192:64–68CrossRefPubMed Keller-Varady K et al (2018) A systematic review of trials investigating strength training in schizophrenia spectrum disorders. Schizophr Res 192:64–68CrossRefPubMed
Metadaten
Titel
Neurobiological effects of aerobic exercise, with a focus on patients with schizophrenia
verfasst von
Isabel Maurus
Alkomiet Hasan
Astrid Röh
Shun Takahashi
Boris Rauchmann
Daniel Keeser
Berend Malchow
Andrea Schmitt
Peter Falkai
Publikationsdatum
21.05.2019
Verlag
Springer Berlin Heidelberg
Erschienen in
European Archives of Psychiatry and Clinical Neuroscience / Ausgabe 5/2019
Print ISSN: 0940-1334
Elektronische ISSN: 1433-8491
DOI
https://doi.org/10.1007/s00406-019-01025-w

Weitere Artikel der Ausgabe 5/2019

European Archives of Psychiatry and Clinical Neuroscience 5/2019 Zur Ausgabe

Update Psychiatrie

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