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Published in: Sports Medicine 9/2010

01-09-2010 | Research Review Article

Neuroplasticity — Exercise-Induced Response of Peripheral Brain-Derived Neurotrophic Factor

A Systematic Review of Experimental Studies in Human Subjects

Authors: Kristel Knaepen, Maaike Goekint, Elsa Marie Heyman, Prof. Dr Romain Meeusen

Published in: Sports Medicine | Issue 9/2010

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Abstract

Exercise is known to induce a cascade of molecular and cellular processes that support brain plasticity. Brain-derived neurotrophic factor (BDNF) is an essential neurotrophin that is also intimately connected with central and peripheral molecular processes of energy metabolism and homeostasis, and could play a crucial role in these induced mechanisms.
This review provides an overview of the current knowledge on the effects of acute exercise and/or training on BDNF in healthy subjects and in persons with a chronic disease or disability. A systematic and critical literature search was conducted. Articles were considered for inclusion in the review if they were human studies, assessed peripheral (serum and/or plasma) BDNF and evaluated an acute exercise or training intervention. Nine RCTs, one randomized trial, five non-randomized controlled trials, five non-randomized non-controlled trials and four retrospective observational studies were analysed. Sixty-nine percent of the studies in healthy subjects and 86%of the studies in persons with a chronic disease or disability, showed a ‘mostly transient’ increase in serum or plasma BDNF concentration following an acute aerobic exercise. The two studies regarding a single acute strength exercise session could not show a significant influence on basal BDNF concentration. In studies regarding the effects of strength or aerobic training on BDNF, a difference should be made between effects on basal BDNF concentration and training-induced effects on the BDNF response following an acute exercise. Only three out of ten studies on aerobic or strength training (i.e. 30%) found a training-induced increase in basal BDNF concentration. Two out of six studies (i.e. 33%) reported a significantly higher BDNF response to acute exercise following an aerobic or strength training programme (i.e. compared with the BDNF response to an acute exercise at baseline). A few studies of low quality (i.e. retrospective observational studies) show that untrained or moderately trained healthy subjects have higher basal BDNF concentrations than highly trained subjects. Yet, strong evidence still has to come from good methodological studies.
Available results suggest that acute aerobic, but not strength exercise increases basal peripheral BDNF concentrations, although the effect is transient. From a few studies we learn that circulating BDNF originates both from central and peripheral sources. We can only speculate which central regions and peripheral sources in particular circulating BDNF originates from, where it is transported to and to what purpose it is used and/or stored at its final destination. No study could show a long-lasting BDNF response to acute exercise or training (i.e. permanently increased basal peripheral BDNF concentration) in healthy subjects or persons with a chronic disease or disability. It seems that exercise and/or training temporarily elevate basal BDNF and possibly upregulate cellular processing of BDNF (i.e. synthesis, release, absorption and degradation). From that point of view, exercise and/or training would result in a higher BDNF synthesis following an acute exercise bout (i.e. compared with untrained subjects). Subsequently, more BDNF could be released into the blood circulation which may, in turn, be absorbed more efficiently by central and/or peripheral tissues where it could induce a cascade of neurotrophic and neuroprotective effects.
Footnotes
1
It should be noted that in the studies of Rojas Vega et al.[63,64] and Gustafsson et al.,[58] an acute exercise of low to moderate intensity preceded the GXT. This could influence the effect of a GXT on peripheral BDNF levels. The preceding exercise of low to moderate intensity, together with the GXT, has also been evaluated as a prolonged acute exercise protocol of high intensity and will be discussed in section 2.6.1.
 
2
In the study of Laske et al.,[59] BDNF concentration in healthy control subjects did not increase following an acute exercise of high intensity.
 
3
In the study of Gustafsson et al.,[58] a significant increase in [BDNF]p following an acute exercise of high intensity was only found in male control subjects.
 
4
In the study of Gustafsson et al.,[58] a significant increase in [BDNF]p following an acute exercise of low to moderate intensity was only found in male persons with MDD.
 
5
Seifert et al.[68] found an increase in [BDNF]p measured in the vena jugularis but not in arterial [BDNF]p following an aerobic training programme.
 
6
Baker et al.[50] only found an increase in men with mild cognitive impairment.
 
Literature
1.
go back to reference Hennigan A, O’Callaghan RM, Kelly AM. Neurotrophins and their receptors: roles in plasticity, neurodegeneration and neuroprotection. Biochem Soc Trans 2007; 35: 424–7PubMedCrossRef Hennigan A, O’Callaghan RM, Kelly AM. Neurotrophins and their receptors: roles in plasticity, neurodegeneration and neuroprotection. Biochem Soc Trans 2007; 35: 424–7PubMedCrossRef
2.
go back to reference Johnston MV. Plasticity in the developing brain: implications for rehabilitation. Dev Disabil Res Rev 2009; 15: 94–101PubMedCrossRef Johnston MV. Plasticity in the developing brain: implications for rehabilitation. Dev Disabil Res Rev 2009; 15: 94–101PubMedCrossRef
3.
go back to reference Neeper SA, Gómez-Pinilla F, Choi J, et al. Exercise and brain neurotrophins [letter]. Nature 1995; 373 (6510): 109PubMedCrossRef Neeper SA, Gómez-Pinilla F, Choi J, et al. Exercise and brain neurotrophins [letter]. Nature 1995; 373 (6510): 109PubMedCrossRef
4.
go back to reference Neeper SA, Gómez-Pinilla F, Choi J, et al. Physical activity increases mRNA for brain-derived neurotrophic factor and nerve growth factor in rat brain. Brain Res 1996; 726 (1-2): 49–56PubMedCrossRef Neeper SA, Gómez-Pinilla F, Choi J, et al. Physical activity increases mRNA for brain-derived neurotrophic factor and nerve growth factor in rat brain. Brain Res 1996; 726 (1-2): 49–56PubMedCrossRef
5.
go back to reference Vaynman S, Gomez-Pinilla F. License to run: exercise impacts functional plasticity in the intact and injured central nervous system by using neurotrophin. Neurorehab Neur Repair 2005; 19 (4): 283–94CrossRef Vaynman S, Gomez-Pinilla F. License to run: exercise impacts functional plasticity in the intact and injured central nervous system by using neurotrophin. Neurorehab Neur Repair 2005; 19 (4): 283–94CrossRef
6.
go back to reference Murer MG, Yan Q, Raisman-Vozari R. Brain-derived neurotrophic factor in the control human brain, and in Alzheimer’s disease and Parkinson’s disease. Prog Neurobiol 2001; 63: 71–124PubMedCrossRef Murer MG, Yan Q, Raisman-Vozari R. Brain-derived neurotrophic factor in the control human brain, and in Alzheimer’s disease and Parkinson’s disease. Prog Neurobiol 2001; 63: 71–124PubMedCrossRef
7.
go back to reference Sarchielli P, Greco L, Stipa A, et al. Brain-derived neurotrophic factor in patients with multiple sclerosis. J Neuroimmunol 2002; 132: 180–8PubMedCrossRef Sarchielli P, Greco L, Stipa A, et al. Brain-derived neurotrophic factor in patients with multiple sclerosis. J Neuroimmunol 2002; 132: 180–8PubMedCrossRef
8.
go back to reference White LJ, Castellano V. Exercise and brain health — implications for multiple sclerosis: part 1 — neuronal growth factors. Sports Med 2008; 38 (2): 91–100PubMedCrossRef White LJ, Castellano V. Exercise and brain health — implications for multiple sclerosis: part 1 — neuronal growth factors. Sports Med 2008; 38 (2): 91–100PubMedCrossRef
9.
go back to reference Liguori M, Fera F, Patitucci A, et al. A longitudinal observation of brain-derived neurotrophic factor mRNA levels in patients with relapsing-remitting multiple sclerosis. Brain Res 2009; 1256: 123–8PubMedCrossRef Liguori M, Fera F, Patitucci A, et al. A longitudinal observation of brain-derived neurotrophic factor mRNA levels in patients with relapsing-remitting multiple sclerosis. Brain Res 2009; 1256: 123–8PubMedCrossRef
10.
go back to reference Matthews VB, Astrom MB, Chan MH, et al. Brain-derived neurotrophic factor is produced by skeletal muscle cells in response to contraction and enhances fat oxidation via activation of AMP-activated protein kinase. Diabetologica 2009; 52 (7): 1409–18CrossRef Matthews VB, Astrom MB, Chan MH, et al. Brain-derived neurotrophic factor is produced by skeletal muscle cells in response to contraction and enhances fat oxidation via activation of AMP-activated protein kinase. Diabetologica 2009; 52 (7): 1409–18CrossRef
11.
go back to reference Pedersen BK, Pedersen M, Krabbe KS, et al. Role of exercise-induced brain-derived neurotrophic factor production in the regulation of energy homeostasis in mammals. Exp Physiol 2009; 94 (12): 1153–60PubMedCrossRef Pedersen BK, Pedersen M, Krabbe KS, et al. Role of exercise-induced brain-derived neurotrophic factor production in the regulation of energy homeostasis in mammals. Exp Physiol 2009; 94 (12): 1153–60PubMedCrossRef
12.
go back to reference Gomez-Pinilla F, Vanyman S, Ying Z. Brain-derived neurotrophic factor functions as a metabotrophin to mediate the effects of exercise on cognition. Eur J Neurosci 2008; 28: 2278–87PubMedCrossRef Gomez-Pinilla F, Vanyman S, Ying Z. Brain-derived neurotrophic factor functions as a metabotrophin to mediate the effects of exercise on cognition. Eur J Neurosci 2008; 28: 2278–87PubMedCrossRef
13.
go back to reference Vaynman S, Ying Z, Gomez-Pinilla F. Hippocampal BDNF mediates the efficacy of exercise on synaptic plasticity and cognition. Eur J Neurosci 2004; 20: 2580–90PubMedCrossRef Vaynman S, Ying Z, Gomez-Pinilla F. Hippocampal BDNF mediates the efficacy of exercise on synaptic plasticity and cognition. Eur J Neurosci 2004; 20: 2580–90PubMedCrossRef
14.
15.
go back to reference Cotman CW, Berchtold NC, Christie LA. Exercise builds brain health: key roles of growth factor cascades and inflammation. Trends Neurosci 2007; 30 (9): 464–72PubMedCrossRef Cotman CW, Berchtold NC, Christie LA. Exercise builds brain health: key roles of growth factor cascades and inflammation. Trends Neurosci 2007; 30 (9): 464–72PubMedCrossRef
16.
go back to reference Van Praag H. Neurogenesis and exercise: past and future directions. Neuromol Med 2008; 10: 128–40CrossRef Van Praag H. Neurogenesis and exercise: past and future directions. Neuromol Med 2008; 10: 128–40CrossRef
17.
18.
go back to reference Barde YA, Edgar D, Thoenen H. Purification of a new neurotrophic factor from mammalian brain. EMBO J 1982; 1 (5): 549–53PubMed Barde YA, Edgar D, Thoenen H. Purification of a new neurotrophic factor from mammalian brain. EMBO J 1982; 1 (5): 549–53PubMed
19.
go back to reference Maisonpierre PC, Le BeauMM, Espinosa R, et al. Human and rat brain-derived neurotrophic factor and neurotrophin-3: gene structures, distributions, and chromosomal localizations. Genomics 1991; 10 (3): 558–68PubMedCrossRef Maisonpierre PC, Le BeauMM, Espinosa R, et al. Human and rat brain-derived neurotrophic factor and neurotrophin-3: gene structures, distributions, and chromosomal localizations. Genomics 1991; 10 (3): 558–68PubMedCrossRef
20.
21.
go back to reference Pruunsild P, Kazantseva A, Aid T, et al. Dissecting the human BDNF locus: bidirectional transcription, complex splicing, and multiple promoters. Genomics 2007; 90 (3): 397–406PubMedCrossRef Pruunsild P, Kazantseva A, Aid T, et al. Dissecting the human BDNF locus: bidirectional transcription, complex splicing, and multiple promoters. Genomics 2007; 90 (3): 397–406PubMedCrossRef
22.
go back to reference Egan MF, Kojima M, Callicott JH, et al. The BDNF Val66Met polymorphism affects activity-dependent secretion of BDNF and human memory and hippocampal function. Cell 2003; 112: 257–69PubMedCrossRef Egan MF, Kojima M, Callicott JH, et al. The BDNF Val66Met polymorphism affects activity-dependent secretion of BDNF and human memory and hippocampal function. Cell 2003; 112: 257–69PubMedCrossRef
23.
go back to reference Chen Z, Bath K, McEwan B, et al. Impact of genetic variant BDNF (Val66Met) on brain structure and function. Novartis Found Symp 2008; 289: 180–95PubMedCrossRef Chen Z, Bath K, McEwan B, et al. Impact of genetic variant BDNF (Val66Met) on brain structure and function. Novartis Found Symp 2008; 289: 180–95PubMedCrossRef
24.
go back to reference Shimizu E, Hashimoto K, Iyom M. Ethnic differences of the BDNF 196 G/A (val66met) polymorphism frequencies: the possibility to explain ethnic metal traits. Am J Med Genet B Neuropsychiatr Genet 2004; 126: 122–3CrossRef Shimizu E, Hashimoto K, Iyom M. Ethnic differences of the BDNF 196 G/A (val66met) polymorphism frequencies: the possibility to explain ethnic metal traits. Am J Med Genet B Neuropsychiatr Genet 2004; 126: 122–3CrossRef
25.
go back to reference Casey BJ, Glatt CE, Tottenham N, et al. Brain-derived neurotrophic factor as a model system for examining gene by environment interactions across development. Neuroscience 2009; 164: 108–20PubMedCrossRef Casey BJ, Glatt CE, Tottenham N, et al. Brain-derived neurotrophic factor as a model system for examining gene by environment interactions across development. Neuroscience 2009; 164: 108–20PubMedCrossRef
26.
go back to reference Gratacos M, Gonzalez JR, Mercader JM, et al. Brain derived neurotrophic factor Val66Met and psychiatric disorders: meta-analysis of case-control studies confirm association to substance-related disorders, eating disorders and schizophrenia. Biol Psychiatry 2007; 61 (7): 911–22PubMedCrossRef Gratacos M, Gonzalez JR, Mercader JM, et al. Brain derived neurotrophic factor Val66Met and psychiatric disorders: meta-analysis of case-control studies confirm association to substance-related disorders, eating disorders and schizophrenia. Biol Psychiatry 2007; 61 (7): 911–22PubMedCrossRef
27.
go back to reference Barde YA. Neurotrophins: a family of proteins supporting the survival of neurons. Prog Clin Biol Res 1994; 390: 45–56PubMed Barde YA. Neurotrophins: a family of proteins supporting the survival of neurons. Prog Clin Biol Res 1994; 390: 45–56PubMed
28.
go back to reference Lindsay RM. Neurotrophic growth factors and neurodegenerative diseases: therapeutic potential of the neurotrophins and ciliary neurotrophic factor. Neurobiol Aging 1994; 15 (2): 249–51PubMedCrossRef Lindsay RM. Neurotrophic growth factors and neurodegenerative diseases: therapeutic potential of the neurotrophins and ciliary neurotrophic factor. Neurobiol Aging 1994; 15 (2): 249–51PubMedCrossRef
29.
go back to reference Lewin GR. Neurotrophins and the specification of neuronal phenotype. Philos Trans R Soc Lond B Biol Sci 1996; 351 (1338): 405–11PubMedCrossRef Lewin GR. Neurotrophins and the specification of neuronal phenotype. Philos Trans R Soc Lond B Biol Sci 1996; 351 (1338): 405–11PubMedCrossRef
30.
go back to reference Alsina B, Vu T, Cohen-Cory S. Visualizing Synapse formation in arborizing optic axons in vivo: dynamics and modulation by BDNF. Nat Neurosci 2001; 4 (11): 1093–101PubMedCrossRef Alsina B, Vu T, Cohen-Cory S. Visualizing Synapse formation in arborizing optic axons in vivo: dynamics and modulation by BDNF. Nat Neurosci 2001; 4 (11): 1093–101PubMedCrossRef
31.
go back to reference Cotman CW, Berchtold NC. Exercise: a behavioral intervention to enhance brain health and plasticity. Trends Neurosci 2002; 25 (6): 295–301PubMedCrossRef Cotman CW, Berchtold NC. Exercise: a behavioral intervention to enhance brain health and plasticity. Trends Neurosci 2002; 25 (6): 295–301PubMedCrossRef
32.
go back to reference Tsuchida A, Nonomura T, Ono-Kishino M, et al. Acute effects of brain-derived neurotrophic factor on energy expenditure in obese diabetic mice. Int J Obesity 2001; 25: 1286–93CrossRef Tsuchida A, Nonomura T, Ono-Kishino M, et al. Acute effects of brain-derived neurotrophic factor on energy expenditure in obese diabetic mice. Int J Obesity 2001; 25: 1286–93CrossRef
33.
go back to reference Nakagawa T, Ono-Kishino M, Sugaru E, et al. Brain-derived neurotrophic factor (BDNF) regulates glucose and energy metabolism in diabetic mice. Diabetes Metab Res Rev 2002; 18 (3): 185–91PubMedCrossRef Nakagawa T, Ono-Kishino M, Sugaru E, et al. Brain-derived neurotrophic factor (BDNF) regulates glucose and energy metabolism in diabetic mice. Diabetes Metab Res Rev 2002; 18 (3): 185–91PubMedCrossRef
34.
go back to reference Lebrun B, Bariohay B, Moyse E, et al. Brain-derived neurotrophic factor (BDNF) and food intake regulation: a minireview. Auton Neurosci 2006; 126-127: 30–8PubMedCrossRef Lebrun B, Bariohay B, Moyse E, et al. Brain-derived neurotrophic factor (BDNF) and food intake regulation: a minireview. Auton Neurosci 2006; 126-127: 30–8PubMedCrossRef
35.
go back to reference Tsao D, Thomsen HK, Chou J, et al. TrkB agonists ameliorate obesity and associated metabolic conditions in mice. Endocrinology 2008; 149 (3): 1038–48PubMedCrossRef Tsao D, Thomsen HK, Chou J, et al. TrkB agonists ameliorate obesity and associated metabolic conditions in mice. Endocrinology 2008; 149 (3): 1038–48PubMedCrossRef
36.
go back to reference Yamanaka M, Itakura Y, Ono-Kishino M, et al. Intermittent administration of brain-derived neurotrophic factor (BDNF) ameliorates glucose metabolism and prevents pancreatic exhaustion in diabetic mice. J Biosci Bioeng 2008; 105 (4): 395–402PubMedCrossRef Yamanaka M, Itakura Y, Ono-Kishino M, et al. Intermittent administration of brain-derived neurotrophic factor (BDNF) ameliorates glucose metabolism and prevents pancreatic exhaustion in diabetic mice. J Biosci Bioeng 2008; 105 (4): 395–402PubMedCrossRef
37.
go back to reference Molteni R, Wu A, Vaynman S. Exercise reverses the harmful effects of consumption of a high-fat diet on synaptic and behavioral plasticity associated to the action of brain-derived neurotrophic factor. Neuroscience 2004; 123 (2): 429–40PubMedCrossRef Molteni R, Wu A, Vaynman S. Exercise reverses the harmful effects of consumption of a high-fat diet on synaptic and behavioral plasticity associated to the action of brain-derived neurotrophic factor. Neuroscience 2004; 123 (2): 429–40PubMedCrossRef
38.
go back to reference Komori T, Morikawa Y, Nanjo K, et al. Induction of brain-derived neurotrophic factor by leptin in the ventromedial hypothalamus. Neuroscience 2006; 139: 1107–15PubMedCrossRef Komori T, Morikawa Y, Nanjo K, et al. Induction of brain-derived neurotrophic factor by leptin in the ventromedial hypothalamus. Neuroscience 2006; 139: 1107–15PubMedCrossRef
39.
go back to reference Gray J, Yeo GS, Cox JJ, et al. Hyperphagia, severe obesity, impaired cognitive function, and hyperreactivity associated with functional loss of one copy of the brainderived neurotrophic factor (BDNF) gene. Diabetes 2006; 55 (12): 3366–71PubMedCrossRef Gray J, Yeo GS, Cox JJ, et al. Hyperphagia, severe obesity, impaired cognitive function, and hyperreactivity associated with functional loss of one copy of the brainderived neurotrophic factor (BDNF) gene. Diabetes 2006; 55 (12): 3366–71PubMedCrossRef
40.
go back to reference Araya AV, Orellana X, Espinoza J. Evaluation of the effect of caloric restriction on serum BDNF in overweight and obese subjects: preliminary evidences. Endocrine 2008; 33 (3): 300–4PubMedCrossRef Araya AV, Orellana X, Espinoza J. Evaluation of the effect of caloric restriction on serum BDNF in overweight and obese subjects: preliminary evidences. Endocrine 2008; 33 (3): 300–4PubMedCrossRef
42.
go back to reference Huang AM, Jen CJ, Chen HF, et al., Compulsive exercise acutely upregulates rat hippocampal brain-derived neurotrophic factor. J Neural Transm 2006; 113 (7): 803–11PubMedCrossRef Huang AM, Jen CJ, Chen HF, et al., Compulsive exercise acutely upregulates rat hippocampal brain-derived neurotrophic factor. J Neural Transm 2006; 113 (7): 803–11PubMedCrossRef
43.
go back to reference Radak Z, Toldy A, Szabo Z, et al., The effects of training and detraining on memory, neurotrophins and oxidative stress markers in rat brain. Neurochem Int 2006; 49 (4): 387–92PubMedCrossRef Radak Z, Toldy A, Szabo Z, et al., The effects of training and detraining on memory, neurotrophins and oxidative stress markers in rat brain. Neurochem Int 2006; 49 (4): 387–92PubMedCrossRef
44.
go back to reference Ploughman M, Granter-Button S, Chernenko G, et al. Exercise intensity influences the temporal profile of growth factors involved in neuronal plasticity following focal ischemia. Brain Res 2007; 1150: 207–16PubMedCrossRef Ploughman M, Granter-Button S, Chernenko G, et al. Exercise intensity influences the temporal profile of growth factors involved in neuronal plasticity following focal ischemia. Brain Res 2007; 1150: 207–16PubMedCrossRef
45.
go back to reference Soya H, Nakamura T, Deocaris CC, et al. BDNF induction with mild exercise in the rat hippocampus. Biochem Biophys Res Commun 2007; 358 (4): 961–7PubMedCrossRef Soya H, Nakamura T, Deocaris CC, et al. BDNF induction with mild exercise in the rat hippocampus. Biochem Biophys Res Commun 2007; 358 (4): 961–7PubMedCrossRef
46.
go back to reference Aguiar AS, Speck AE, Prediger RD, et al. Downhill training upregulates mice hippocampal and stratial brainderived neurotrophic factor levels. J Neural Transm 2008; 115 (9): 1251–5PubMedCrossRef Aguiar AS, Speck AE, Prediger RD, et al. Downhill training upregulates mice hippocampal and stratial brainderived neurotrophic factor levels. J Neural Transm 2008; 115 (9): 1251–5PubMedCrossRef
47.
go back to reference Gold SM, Schulz K, Hartmann S, et al., Basal serum levels and reactivity of nerve growth factor and brain-derived neurotrophic factor to standardized acute exercise in multiple sclerosis and controls. J Neuroimmunol 2003; 183: 99–105CrossRef Gold SM, Schulz K, Hartmann S, et al., Basal serum levels and reactivity of nerve growth factor and brain-derived neurotrophic factor to standardized acute exercise in multiple sclerosis and controls. J Neuroimmunol 2003; 183: 99–105CrossRef
48.
go back to reference Moher D, Cook DJ, Eastwood S, et al., Improving the quality of reports of meta-analyses of randomised controlled trials: the QUOROM statement. Lancet 1999; 354: 1896–900PubMedCrossRef Moher D, Cook DJ, Eastwood S, et al., Improving the quality of reports of meta-analyses of randomised controlled trials: the QUOROM statement. Lancet 1999; 354: 1896–900PubMedCrossRef
49.
go back to reference van Tulder M, Furlan A, Bombardier C. Updated method guidelines for systematic reviews in the Cochrane collaboration back review group. Spine 2003; 28 (12): 1290–9PubMed van Tulder M, Furlan A, Bombardier C. Updated method guidelines for systematic reviews in the Cochrane collaboration back review group. Spine 2003; 28 (12): 1290–9PubMed
50.
go back to reference Baker LD, Frank LL, Foster-Schubert K, et al. Effects of aerobic exercise on mild cognitive impairment. Arch Neurol 2010; 67 (1): 71–9PubMedCrossRef Baker LD, Frank LL, Foster-Schubert K, et al. Effects of aerobic exercise on mild cognitive impairment. Arch Neurol 2010; 67 (1): 71–9PubMedCrossRef
51.
go back to reference Castellano V, White LJ. Serum brain-derived neurotrophic factor response to aerobic exercise in multiple sclerosis. J Neurol Sci 2008; 269 (1-2): 85–91PubMedCrossRef Castellano V, White LJ. Serum brain-derived neurotrophic factor response to aerobic exercise in multiple sclerosis. J Neurol Sci 2008; 269 (1-2): 85–91PubMedCrossRef
52.
go back to reference Chan KL, Tong KY, Yip SP. Relationship of serum brainderived neurotrophic factor (BDNF) and health-related lifestyle in healthy human subjects. Neurosci Lett 2008; 447 (2-3): 124–12PubMedCrossRef Chan KL, Tong KY, Yip SP. Relationship of serum brainderived neurotrophic factor (BDNF) and health-related lifestyle in healthy human subjects. Neurosci Lett 2008; 447 (2-3): 124–12PubMedCrossRef
53.
go back to reference Currie J, Ramsbottom R, Ludlow H, et al. Cardio-respiratory fitness, habitual physical activity and serum brain derived neurotrophic factor (BDNF) in men and women. Neurosci Lett 2009; 451 (2): 152–5PubMedCrossRef Currie J, Ramsbottom R, Ludlow H, et al. Cardio-respiratory fitness, habitual physical activity and serum brain derived neurotrophic factor (BDNF) in men and women. Neurosci Lett 2009; 451 (2): 152–5PubMedCrossRef
54.
go back to reference Ferris LT, Williams JS, Shen C. The effect of acute exercise on serum brain-derived neurotrophic factor levels and cognitive function. Med Sci Sports Exerc 2007; 39 (4): 728–34PubMedCrossRef Ferris LT, Williams JS, Shen C. The effect of acute exercise on serum brain-derived neurotrophic factor levels and cognitive function. Med Sci Sports Exerc 2007; 39 (4): 728–34PubMedCrossRef
55.
go back to reference Floël A, Ruscheweyh R, Krüger K, et al. Physical activity and memory functions: are neurotrophins and cerebral gray matter volume the missing link? Neuro Image 2010; 49: 2756–63PubMed Floël A, Ruscheweyh R, Krüger K, et al. Physical activity and memory functions: are neurotrophins and cerebral gray matter volume the missing link? Neuro Image 2010; 49: 2756–63PubMed
56.
go back to reference Goekint M, Heyman E, Roelands B, et al. No influence of noradrenaline manipulation on acute exercise-induced increase of brain-derived neurotrophic factor. Med Sci Sports Exerc 2008; 40 (11): 1990–6PubMedCrossRef Goekint M, Heyman E, Roelands B, et al. No influence of noradrenaline manipulation on acute exercise-induced increase of brain-derived neurotrophic factor. Med Sci Sports Exerc 2008; 40 (11): 1990–6PubMedCrossRef
57.
go back to reference Goekint M, De Pauw K, Roelands B, et al. Strength training does not influence serum brain-derived neurotrophic factor. Eur J Appl Physiol. Epub 2010 May 14 Goekint M, De Pauw K, Roelands B, et al. Strength training does not influence serum brain-derived neurotrophic factor. Eur J Appl Physiol. Epub 2010 May 14
58.
go back to reference Gustafsson G, Lira CM, Johansson J, et al. The acute response of plasma brain-derived neurotrophic factor as a result of exercise in major depression. Psychiatry Res 2009; 94 (12): 1159–60 Gustafsson G, Lira CM, Johansson J, et al. The acute response of plasma brain-derived neurotrophic factor as a result of exercise in major depression. Psychiatry Res 2009; 94 (12): 1159–60
59.
go back to reference Laske C, Banschbach S, Stransky E, et al. Exercise-induced normalization of decreased BDNF serum concentration in elderly women with remitted major depression. Int J Neuropsychopharmacol 2010; 13: 595–602PubMedCrossRef Laske C, Banschbach S, Stransky E, et al. Exercise-induced normalization of decreased BDNF serum concentration in elderly women with remitted major depression. Int J Neuropsychopharmacol 2010; 13: 595–602PubMedCrossRef
60.
go back to reference Levinger I, Goodman C, Matthews V, et al. BDNF, metabolic risk factors and resistance training in middle-aged individuals. Med Sci Sports Exerc 2008; 40 (3): 535–41PubMedCrossRef Levinger I, Goodman C, Matthews V, et al. BDNF, metabolic risk factors and resistance training in middle-aged individuals. Med Sci Sports Exerc 2008; 40 (3): 535–41PubMedCrossRef
61.
go back to reference Nofuji Y, Suwa M, Moriyama Y, et al. Decreased serum brain-derived neurotrophic factor in trained men. Neurosci Lett 2008; 437 (1): 29–32PubMedCrossRef Nofuji Y, Suwa M, Moriyama Y, et al. Decreased serum brain-derived neurotrophic factor in trained men. Neurosci Lett 2008; 437 (1): 29–32PubMedCrossRef
62.
go back to reference Rasmussen P, Brassard P, Adser H, et al. Evidence for a release of BDNF from the brain during exercise. Exp Physiol 2009; 94 (10): 1062–9PubMedCrossRef Rasmussen P, Brassard P, Adser H, et al. Evidence for a release of BDNF from the brain during exercise. Exp Physiol 2009; 94 (10): 1062–9PubMedCrossRef
63.
go back to reference Rojas Vega S, Strüder H, Vera Wahrmann B, et al. Acute BDNF and cortisol response to low intensity exercise and following ramp incremental exercise to exhaustion in humans. Brain Res 2006; 1121 (1): 59–65PubMedCrossRef Rojas Vega S, Strüder H, Vera Wahrmann B, et al. Acute BDNF and cortisol response to low intensity exercise and following ramp incremental exercise to exhaustion in humans. Brain Res 2006; 1121 (1): 59–65PubMedCrossRef
64.
go back to reference Rojas Vega S, Strüder HK, Vera Wahrman B, et al. Corrigendum to ‘acute BDNF and cortisol response to low intensity exercise and following ramp incremental exercise to exhaustion in humans’. Brain Res 2007; 1156: 174–5CrossRef Rojas Vega S, Strüder HK, Vera Wahrman B, et al. Corrigendum to ‘acute BDNF and cortisol response to low intensity exercise and following ramp incremental exercise to exhaustion in humans’. Brain Res 2007; 1156: 174–5CrossRef
65.
go back to reference Rojas Vega S, Abel T, Lindschulten R, et al. Impact of exercise on neuroplasticity-related proteins in spinal cord injured humans. Neuroscience 2008; 153 (4): 1064–70PubMedCrossRef Rojas Vega S, Abel T, Lindschulten R, et al. Impact of exercise on neuroplasticity-related proteins in spinal cord injured humans. Neuroscience 2008; 153 (4): 1064–70PubMedCrossRef
66.
go back to reference Schiffer T, Schulte S, Schulte S, et al. Effects of strength and endurance training on brain-derived neurotrophic factor and insulin-like growth factor 1 in humans. Horm Metab Res 2009; 41 (3): 250–4PubMedCrossRef Schiffer T, Schulte S, Schulte S, et al. Effects of strength and endurance training on brain-derived neurotrophic factor and insulin-like growth factor 1 in humans. Horm Metab Res 2009; 41 (3): 250–4PubMedCrossRef
67.
go back to reference Schulz K, Gold SM, Witte J, et al. Impact of aerobic training on immune-endocrine parameters, neurotrophic factors, quality of life and coordinative function in multiple sclerosis. J Neurol Sci 2004; 225 (1-2): 11–8PubMedCrossRef Schulz K, Gold SM, Witte J, et al. Impact of aerobic training on immune-endocrine parameters, neurotrophic factors, quality of life and coordinative function in multiple sclerosis. J Neurol Sci 2004; 225 (1-2): 11–8PubMedCrossRef
68.
go back to reference Seifert T, Brassard P, Wissenberg M, et al. Endurance training enhances BDNF release from the human brain. Am J Physiol Regul Integr Comp Physiol 2010; 298 (2): R372–7CrossRef Seifert T, Brassard P, Wissenberg M, et al. Endurance training enhances BDNF release from the human brain. Am J Physiol Regul Integr Comp Physiol 2010; 298 (2): R372–7CrossRef
69.
go back to reference Ströhle A, Stoy M, Graetz B, et al. Acute exercise ameliorates reduced brain-derived neurotrophic factor in patients with panic disorder. Psychoneuroendocrinology 2010; 35: 364–8PubMedCrossRef Ströhle A, Stoy M, Graetz B, et al. Acute exercise ameliorates reduced brain-derived neurotrophic factor in patients with panic disorder. Psychoneuroendocrinology 2010; 35: 364–8PubMedCrossRef
70.
go back to reference Tang SW, Chu E, Hui T, et al. Influence of exercise on serum brain-derived neurotrophic factor concentrations in healthy human subjects. Neurosci Lett 2008; 431 (1): 62–5PubMedCrossRef Tang SW, Chu E, Hui T, et al. Influence of exercise on serum brain-derived neurotrophic factor concentrations in healthy human subjects. Neurosci Lett 2008; 431 (1): 62–5PubMedCrossRef
71.
go back to reference Winter B, Breitenstein C, Mooren FC, et al. High impact running improves learning. Neurobiol Learn Mem 2007; 87 (4): 597–609PubMedCrossRef Winter B, Breitenstein C, Mooren FC, et al. High impact running improves learning. Neurobiol Learn Mem 2007; 87 (4): 597–609PubMedCrossRef
72.
go back to reference Yarrow JF, White LJ, McCoy SC, et al. Training augments resistance exercise induced elevation of circulating brain derived neurotrophic factor (BDNF). Neurosci Lett 2010; 479 (2): 161–5PubMedCrossRef Yarrow JF, White LJ, McCoy SC, et al. Training augments resistance exercise induced elevation of circulating brain derived neurotrophic factor (BDNF). Neurosci Lett 2010; 479 (2): 161–5PubMedCrossRef
73.
go back to reference Yarrow JF, Borsa PA, Borst SE, et al. Neuroendocrine responses to an acute bout of eccentric-enhanced resistance exercise. Med Sci Sport Ex 2007; 39: 941–7CrossRef Yarrow JF, Borsa PA, Borst SE, et al. Neuroendocrine responses to an acute bout of eccentric-enhanced resistance exercise. Med Sci Sport Ex 2007; 39: 941–7CrossRef
74.
go back to reference Yarrow JF, Borsa PA, Borst SE, et al. Early-phase neuroendocrine responses and strength adaptations following eccentric-enhanced resistance training. J Strength Cond Res 2008; 22: 1205–14PubMedCrossRef Yarrow JF, Borsa PA, Borst SE, et al. Early-phase neuroendocrine responses and strength adaptations following eccentric-enhanced resistance training. J Strength Cond Res 2008; 22: 1205–14PubMedCrossRef
75.
go back to reference Zoladz JA, Pilic A, Majerczak J, et al., Endurance training increases plasma brain-derived neurotrophic factor concentration in young healthy men. J Physiol Pharmacol 2008; 59 (7): 119–32PubMed Zoladz JA, Pilic A, Majerczak J, et al., Endurance training increases plasma brain-derived neurotrophic factor concentration in young healthy men. J Physiol Pharmacol 2008; 59 (7): 119–32PubMed
76.
go back to reference Borg GA. Psychophysical bases of perceived exertion. Med Sci Sports Exerc 1982; 14 (5): 377–81PubMed Borg GA. Psychophysical bases of perceived exertion. Med Sci Sports Exerc 1982; 14 (5): 377–81PubMed
77.
go back to reference Lommatzsch M, Zingler D, Schuhbaeck K. The impact of age, weight and gender on BDNF levels in human platelets and plasma. Neurobiol Aging 2005; 26: 115–23PubMedCrossRef Lommatzsch M, Zingler D, Schuhbaeck K. The impact of age, weight and gender on BDNF levels in human platelets and plasma. Neurobiol Aging 2005; 26: 115–23PubMedCrossRef
78.
go back to reference Katoh-Semba R, Wakako R, Komori T. Age-related changes in BDNF protein levels in human serum: differences between autism cases and normal controls. Int J Devl Neurosci 2007; 25: 367–72CrossRef Katoh-Semba R, Wakako R, Komori T. Age-related changes in BDNF protein levels in human serum: differences between autism cases and normal controls. Int J Devl Neurosci 2007; 25: 367–72CrossRef
79.
go back to reference Vaynman S, Gomez-Pinilla F. Revenge of the ‘Sit’: how lifestyle impact neuronal and cognitive health through molecular systems that interface energy metabolism with neuronal plasticity. J Neurosci Res 2006; 84: 699–715PubMedCrossRef Vaynman S, Gomez-Pinilla F. Revenge of the ‘Sit’: how lifestyle impact neuronal and cognitive health through molecular systems that interface energy metabolism with neuronal plasticity. J Neurosci Res 2006; 84: 699–715PubMedCrossRef
80.
go back to reference Proszasz J, Casaburi R, Somfay A, et al. A treadmill ramp protocol using simultaneous changes in speed and grade. Med Sci Sport Ex 2003; 35: 1596–603CrossRef Proszasz J, Casaburi R, Somfay A, et al. A treadmill ramp protocol using simultaneous changes in speed and grade. Med Sci Sport Ex 2003; 35: 1596–603CrossRef
81.
go back to reference Hagberg JM. Exercise assessment of arthritic and elderly individuals. Baillieres Clin Rheumatol 1994; 8 (1): 29–52PubMedCrossRef Hagberg JM. Exercise assessment of arthritic and elderly individuals. Baillieres Clin Rheumatol 1994; 8 (1): 29–52PubMedCrossRef
82.
go back to reference Berchtold NC, Chinn G, Chou M, et al. Exercise primes a molecular memory for brain-derived neurotrophic factor protein induction in the rat hippocampus. Neurosci 2005; 133 (3): 853–61CrossRef Berchtold NC, Chinn G, Chou M, et al. Exercise primes a molecular memory for brain-derived neurotrophic factor protein induction in the rat hippocampus. Neurosci 2005; 133 (3): 853–61CrossRef
83.
go back to reference Levinger I, Goodman C, Hare DL, et al. The effect of resistance training on functional capacity and quality of life in individuals with high and low numbers of metabolic risk factors. Diabetes Care 2007; 30 (9): 2205–10PubMedCrossRef Levinger I, Goodman C, Hare DL, et al. The effect of resistance training on functional capacity and quality of life in individuals with high and low numbers of metabolic risk factors. Diabetes Care 2007; 30 (9): 2205–10PubMedCrossRef
84.
go back to reference Banfi G, Bauer K, Brand W, et al. Use of anticoagulants in diagnostic laboratory investigations and stability of blood, plasma and serum samples [report no. WHO/DIL/LAB/99.1 rev. 2]. Geneva: World Health Organization, 2002 Banfi G, Bauer K, Brand W, et al. Use of anticoagulants in diagnostic laboratory investigations and stability of blood, plasma and serum samples [report no. WHO/DIL/LAB/99.1 rev. 2]. Geneva: World Health Organization, 2002
85.
go back to reference Schneider DJ, Tracy PB, Mann KG, et al. Differential effects of anticoagulants on the activation of platelets ex vivo. Circulation 1997; 96: 2877–83PubMedCrossRef Schneider DJ, Tracy PB, Mann KG, et al. Differential effects of anticoagulants on the activation of platelets ex vivo. Circulation 1997; 96: 2877–83PubMedCrossRef
86.
go back to reference Rosenfeld RD, Zeni L, Haniu M, et al. Purification and identification of brain-derived neurotrophic factor from human serum. Protein Expr Purif 1995; 6: 465–71PubMedCrossRef Rosenfeld RD, Zeni L, Haniu M, et al. Purification and identification of brain-derived neurotrophic factor from human serum. Protein Expr Purif 1995; 6: 465–71PubMedCrossRef
87.
go back to reference Lommatzsch M, Schloetcke K, Klotz J, et al., Brainderived neurotrophic factor in platelets and airflow limitation in asthma. Am J Respir Crit Care Med 2005; 171 (2): 115–20PubMedCrossRef Lommatzsch M, Schloetcke K, Klotz J, et al., Brainderived neurotrophic factor in platelets and airflow limitation in asthma. Am J Respir Crit Care Med 2005; 171 (2): 115–20PubMedCrossRef
88.
go back to reference Ziegenhorn AA, Schulte-Herbrüggen O, Danker-Hopfe H. Serum neurotrophins: a study on the time course and influencing factors in a large old age sample. Neurobiol Aging 2007; 28: 1436–45PubMedCrossRef Ziegenhorn AA, Schulte-Herbrüggen O, Danker-Hopfe H. Serum neurotrophins: a study on the time course and influencing factors in a large old age sample. Neurobiol Aging 2007; 28: 1436–45PubMedCrossRef
89.
go back to reference Trajkovska V, Marcussen AB, Vinberg M, et al. Measurements of brain-derived neurotrophic factor: methodological aspects and demographical data. Brain Res Bull 2007; 73: 143–9PubMedCrossRef Trajkovska V, Marcussen AB, Vinberg M, et al. Measurements of brain-derived neurotrophic factor: methodological aspects and demographical data. Brain Res Bull 2007; 73: 143–9PubMedCrossRef
90.
go back to reference Bärtsch P, Mairbäurl H, Friedmann B. Pseudo-anemia caused by sports. Ther Umsch 1998; 55 (4): 251–5PubMed Bärtsch P, Mairbäurl H, Friedmann B. Pseudo-anemia caused by sports. Ther Umsch 1998; 55 (4): 251–5PubMed
91.
go back to reference Watts E. Athletes’ anaemia: a review of possible causes and guidelines on investigation. Br J Sports Med 1989; 23: 81–3PubMedCrossRef Watts E. Athletes’ anaemia: a review of possible causes and guidelines on investigation. Br J Sports Med 1989; 23: 81–3PubMedCrossRef
92.
go back to reference Kargotich S, Goodman C, Keast D, et al. The influence of exercise-induced plasma volume changes on the interpretation of biochemical data following high-intensity exercise. Clin J Sport Med 1997; 7 (3): 185–91PubMedCrossRef Kargotich S, Goodman C, Keast D, et al. The influence of exercise-induced plasma volume changes on the interpretation of biochemical data following high-intensity exercise. Clin J Sport Med 1997; 7 (3): 185–91PubMedCrossRef
93.
go back to reference Kargotich S, Goodman C, Keast D, et al. The influence of exercise-induced plasma volume changes on the interpretation of biochemical parameters used for monitoring exercise, training and sport. Sports Med 1998; 26 (2): 101–17PubMedCrossRef Kargotich S, Goodman C, Keast D, et al. The influence of exercise-induced plasma volume changes on the interpretation of biochemical parameters used for monitoring exercise, training and sport. Sports Med 1998; 26 (2): 101–17PubMedCrossRef
94.
go back to reference van Beaumont W, Underkofler S, van Beaumont S. Erythrocyte volume, plasma volume, and acid-base changes in exercise and heat dehydration. J Appl Physiol 1981; 50 (6): 1255–62PubMed van Beaumont W, Underkofler S, van Beaumont S. Erythrocyte volume, plasma volume, and acid-base changes in exercise and heat dehydration. J Appl Physiol 1981; 50 (6): 1255–62PubMed
95.
go back to reference Noga O, Hanf G, Schäper C, et al. The influence of inhalative corticosteroids on circulating nerve growth factor, brain-derived neurotrophic factor and neurotrophin-3 in allergic asthmatics. Clin Exp Allergy 2001; 31: 1906–12PubMedCrossRef Noga O, Hanf G, Schäper C, et al. The influence of inhalative corticosteroids on circulating nerve growth factor, brain-derived neurotrophic factor and neurotrophin-3 in allergic asthmatics. Clin Exp Allergy 2001; 31: 1906–12PubMedCrossRef
96.
go back to reference Fuijimura H, Altar CA, Chen R, et al. Brain-derived neurotrophic factor is stored in human platelets and released by agonist stimulation. J Thromb Haemost 2002; 87: 728–34 Fuijimura H, Altar CA, Chen R, et al. Brain-derived neurotrophic factor is stored in human platelets and released by agonist stimulation. J Thromb Haemost 2002; 87: 728–34
97.
go back to reference Karege F, Perret G, Bondolfi G. Decreased serum brainderived neurotrophic factor levels in major depressed patients. Psychiatry Res 2002; 109: 143–8PubMedCrossRef Karege F, Perret G, Bondolfi G. Decreased serum brainderived neurotrophic factor levels in major depressed patients. Psychiatry Res 2002; 109: 143–8PubMedCrossRef
98.
go back to reference Toyooka K, Asama K, Watanabe Y. Decreased levels of brain-derived neurotrophic factor in serum of chronic schizophrenic patients. Psychiatry Res 2002; 110 (3): 249–57PubMedCrossRef Toyooka K, Asama K, Watanabe Y. Decreased levels of brain-derived neurotrophic factor in serum of chronic schizophrenic patients. Psychiatry Res 2002; 110 (3): 249–57PubMedCrossRef
99.
go back to reference Shimizu E, Hashimoto K, Watanabe H, et al. Serum brainderived neurotrophic factor (BDNF) levels in schizophrenia are indistinguishable from controls. Neurosci Lett 2003; 351 (2): 111–4PubMedCrossRef Shimizu E, Hashimoto K, Watanabe H, et al. Serum brainderived neurotrophic factor (BDNF) levels in schizophrenia are indistinguishable from controls. Neurosci Lett 2003; 351 (2): 111–4PubMedCrossRef
100.
go back to reference Kozicz T, Tilburg-Ouwens D, Faludi G, et al. Gender-related urocortin 1 and brain-derived neurotrophic factor expression in the adult human midbrain of suicide victims with major depression. Neurosci 2008; 152 (4): 1015–23CrossRef Kozicz T, Tilburg-Ouwens D, Faludi G, et al. Gender-related urocortin 1 and brain-derived neurotrophic factor expression in the adult human midbrain of suicide victims with major depression. Neurosci 2008; 152 (4): 1015–23CrossRef
101.
go back to reference Monteleone P, Tortorella A, Martiadis V. Opposite changes in the serum brain-derived neurotrophic factor in anorexia nervosa and obesity. Psychosom Med 2004; 66: 744–8PubMedCrossRef Monteleone P, Tortorella A, Martiadis V. Opposite changes in the serum brain-derived neurotrophic factor in anorexia nervosa and obesity. Psychosom Med 2004; 66: 744–8PubMedCrossRef
102.
go back to reference Begliuomini S, Lenzi E, Ninni F, et al. Plasma brainderived neurotrophic factor daily variations in men: correlation with cortisol circadian rhythm. J Endocrinol 2008; 197: 429–35PubMedCrossRef Begliuomini S, Lenzi E, Ninni F, et al. Plasma brainderived neurotrophic factor daily variations in men: correlation with cortisol circadian rhythm. J Endocrinol 2008; 197: 429–35PubMedCrossRef
103.
go back to reference Piccinni A, Marazziti D, Del Debbio A, et al. Diurnal variation of plasma brain-derived neurotrophic factor (BDNF) in humans: an analysis of sex differences. Chronobiol Int 2008; 25 (5): 819–26PubMedCrossRef Piccinni A, Marazziti D, Del Debbio A, et al. Diurnal variation of plasma brain-derived neurotrophic factor (BDNF) in humans: an analysis of sex differences. Chronobiol Int 2008; 25 (5): 819–26PubMedCrossRef
104.
go back to reference Pluchino N, Cubeddu A, Begliuomini S, et al. Daily variation of brain-derived neurotrophic factor and cortisol in women with normal menstrual cycles, undergoing oral contraception and in postmenopause. Hum Reprod 2009; 24 (9): 2303–9PubMedCrossRef Pluchino N, Cubeddu A, Begliuomini S, et al. Daily variation of brain-derived neurotrophic factor and cortisol in women with normal menstrual cycles, undergoing oral contraception and in postmenopause. Hum Reprod 2009; 24 (9): 2303–9PubMedCrossRef
105.
go back to reference Azoulay D, Vachapova V, Shihman B, et al. Lower brainderived neurotrophic factor in serum of relapsing remittingMS: reversal by glaturamer acetate. J Neuroimmunol 2005; 167: 215–8PubMedCrossRef Azoulay D, Vachapova V, Shihman B, et al. Lower brainderived neurotrophic factor in serum of relapsing remittingMS: reversal by glaturamer acetate. J Neuroimmunol 2005; 167: 215–8PubMedCrossRef
106.
go back to reference Webster MJ, Herman MM, Kleinman JE, et al. BDNF and trkB mRNA expression in the hippocampus and temporal cortex during the human lifespan. Gene Expr Patterns 2006; 6: 941–51PubMedCrossRef Webster MJ, Herman MM, Kleinman JE, et al. BDNF and trkB mRNA expression in the hippocampus and temporal cortex during the human lifespan. Gene Expr Patterns 2006; 6: 941–51PubMedCrossRef
107.
go back to reference Hayashi M, Yamashita A, Shimizu K, et al. Somatostatin and brain-derived neurotrophic factor mRNA expression in the primate brain: decreased levels of mRNA during aging. Brain Res 1997; 749: 283–9PubMedCrossRef Hayashi M, Yamashita A, Shimizu K, et al. Somatostatin and brain-derived neurotrophic factor mRNA expression in the primate brain: decreased levels of mRNA during aging. Brain Res 1997; 749: 283–9PubMedCrossRef
108.
go back to reference Silhol M, Bonnichon V, Rage F, et al. Age-related changes in brain-derived neurotrophic factor and tyrosine kinase receptor isoforms in the hippocampus and hypothalamus in male rats. Neuroscience 2005; 132: 613–24PubMedCrossRef Silhol M, Bonnichon V, Rage F, et al. Age-related changes in brain-derived neurotrophic factor and tyrosine kinase receptor isoforms in the hippocampus and hypothalamus in male rats. Neuroscience 2005; 132: 613–24PubMedCrossRef
109.
go back to reference Silhol M, Arancibia S, Perrin D, et al. Effect of aging on brain-derived neurotrophic factor, proBDNF, and their receptors in the hippocampus of Lou/C rats. Rejuvenation Res 2008; 11 (6): 1031–40PubMedCrossRef Silhol M, Arancibia S, Perrin D, et al. Effect of aging on brain-derived neurotrophic factor, proBDNF, and their receptors in the hippocampus of Lou/C rats. Rejuvenation Res 2008; 11 (6): 1031–40PubMedCrossRef
110.
go back to reference Chen ZY, Patel PD, Sant G. Variant brain-derived neurotrophic factor (Met66) alters the intracellular trafficking and activity-dependent secretion of wild type BDNF in neurosecretory cells and cortical neurons. J Neurosci 2004; 24 (18): 4401–11PubMedCrossRef Chen ZY, Patel PD, Sant G. Variant brain-derived neurotrophic factor (Met66) alters the intracellular trafficking and activity-dependent secretion of wild type BDNF in neurosecretory cells and cortical neurons. J Neurosci 2004; 24 (18): 4401–11PubMedCrossRef
111.
go back to reference Cassilhas RC, Viana VA, Grassmann V, et al. The impact of resistance exercise on the cognitive function of the elderly. Med Sci Sports Exerc 2007; 39 (8): 1401–7PubMedCrossRef Cassilhas RC, Viana VA, Grassmann V, et al. The impact of resistance exercise on the cognitive function of the elderly. Med Sci Sports Exerc 2007; 39 (8): 1401–7PubMedCrossRef
112.
go back to reference Vitiello MV, Wilkinson CW, Merriam GR, et al. Successful 6-month endurance training does not alter insulin like growth factor-I in healthy older men and women. J Gerontol A Biol Sci Med Sci 1997; 52 (3): M149–54CrossRef Vitiello MV, Wilkinson CW, Merriam GR, et al. Successful 6-month endurance training does not alter insulin like growth factor-I in healthy older men and women. J Gerontol A Biol Sci Med Sci 1997; 52 (3): M149–54CrossRef
113.
go back to reference Ding Q, Vaynman S, Akhavan M, et al. Insulin-like growth factor I interfaces with brain-derived neurotrophic factormediated synaptic plasticity to modulate aspects of exercise- induced cognitive function. Neuroscience 2006; 140: 823–33PubMedCrossRef Ding Q, Vaynman S, Akhavan M, et al. Insulin-like growth factor I interfaces with brain-derived neurotrophic factormediated synaptic plasticity to modulate aspects of exercise- induced cognitive function. Neuroscience 2006; 140: 823–33PubMedCrossRef
114.
go back to reference Poduslo JF, Curran GL. Permeability at the blood-brain and blood-nerve barriers of the neurotrophic factors: NGF, CNTF, NT-3, BDNF. Brain Res Mol Brain Res 1996; 36: 280–6PubMedCrossRef Poduslo JF, Curran GL. Permeability at the blood-brain and blood-nerve barriers of the neurotrophic factors: NGF, CNTF, NT-3, BDNF. Brain Res Mol Brain Res 1996; 36: 280–6PubMedCrossRef
115.
go back to reference Pan W, Banks WA, Fasold MB, et al. Transport of brainderived neurotrophic factor across the blood-brain barrier. Neuropharmacol 1998; 37: 1553–61CrossRef Pan W, Banks WA, Fasold MB, et al. Transport of brainderived neurotrophic factor across the blood-brain barrier. Neuropharmacol 1998; 37: 1553–61CrossRef
116.
go back to reference Griffin EW, Bechara RG, Birch AM. Exercise enhances hippocampal-dependent learning in the rat: evidence for a BDNF-related mechanism. Hippocampus 2009; 19: 973–80PubMedCrossRef Griffin EW, Bechara RG, Birch AM. Exercise enhances hippocampal-dependent learning in the rat: evidence for a BDNF-related mechanism. Hippocampus 2009; 19: 973–80PubMedCrossRef
117.
go back to reference Radka SF, Holst PA, Fritsche M, et al. Presence of brainderived neurotrophic factor in brain and human and rat but not mouse serum detected by a sensitive and specific immunoassay. Brain Res 1996; 709: 122–30PubMedCrossRef Radka SF, Holst PA, Fritsche M, et al. Presence of brainderived neurotrophic factor in brain and human and rat but not mouse serum detected by a sensitive and specific immunoassay. Brain Res 1996; 709: 122–30PubMedCrossRef
118.
go back to reference Yamamoto H, Gurney ME. Human platelets contain brain-derived neurotrophic factor. J Neurosci 1990; 10 (11): 3469–76PubMed Yamamoto H, Gurney ME. Human platelets contain brain-derived neurotrophic factor. J Neurosci 1990; 10 (11): 3469–76PubMed
119.
go back to reference Nakahashi T, Fujimura H, Altar CA. Vascular endothelial cells synthesize and secrete brain-derived neurotrophic factor. FEBS Lett 2000; 470: 113–7PubMedCrossRef Nakahashi T, Fujimura H, Altar CA. Vascular endothelial cells synthesize and secrete brain-derived neurotrophic factor. FEBS Lett 2000; 470: 113–7PubMedCrossRef
120.
go back to reference Sobue G, Yamamoto M, Doyu M. Expression of mRNAs for neurotrophins (NGF, BDNF, and NT-3) and their receptors (p75NGFR, trk, trkB, and trkC) in human peripheral neuropathies. Neurochem Res 1998; 23 (6): 821–9PubMedCrossRef Sobue G, Yamamoto M, Doyu M. Expression of mRNAs for neurotrophins (NGF, BDNF, and NT-3) and their receptors (p75NGFR, trk, trkB, and trkC) in human peripheral neuropathies. Neurochem Res 1998; 23 (6): 821–9PubMedCrossRef
121.
go back to reference Besser M, Wank R. Cutting edge: clonally restricted production of the neurotrophins brain-derived neurotrophic factor and neurotrophin-3 mRNA by human immune cells and Th1/Th2-polarized expression of their receptors. J Immunol 1999; 162 (11): 6303–6PubMed Besser M, Wank R. Cutting edge: clonally restricted production of the neurotrophins brain-derived neurotrophic factor and neurotrophin-3 mRNA by human immune cells and Th1/Th2-polarized expression of their receptors. J Immunol 1999; 162 (11): 6303–6PubMed
122.
go back to reference Kerschensteiner M, Gallmeier E, Behrens L, et al. Activated human T cells, B cells, and monocytes produce brain-derived neurotrophic factor in vitro and in inflammatory brain lesions: a neuroprotective role or inflammation? J Exp Med 1999; 189 (5): 865–70PubMedCrossRef Kerschensteiner M, Gallmeier E, Behrens L, et al. Activated human T cells, B cells, and monocytes produce brain-derived neurotrophic factor in vitro and in inflammatory brain lesions: a neuroprotective role or inflammation? J Exp Med 1999; 189 (5): 865–70PubMedCrossRef
123.
go back to reference Noga O, Englmann C, Hanf G, et al. The production, storage and release of the neurotrophins nerve growth factor, brain-derived neurotrophic factor and neurotrophin-3 by human peripheral eosinophils in allergics and non-allergics. Clin Exp Allergy 2003; 33: 649–54PubMedCrossRef Noga O, Englmann C, Hanf G, et al. The production, storage and release of the neurotrophins nerve growth factor, brain-derived neurotrophic factor and neurotrophin-3 by human peripheral eosinophils in allergics and non-allergics. Clin Exp Allergy 2003; 33: 649–54PubMedCrossRef
124.
go back to reference Raap U, Goltz C, Deneka N, et al. Brain-derived neurotrophic factor is increased in atopic dermatitis and modulates eosinophil functions compared with that seen in nonatopic subjects. J Allergy Clin Immunol 2005; 115 (6): 1268–75PubMedCrossRef Raap U, Goltz C, Deneka N, et al. Brain-derived neurotrophic factor is increased in atopic dermatitis and modulates eosinophil functions compared with that seen in nonatopic subjects. J Allergy Clin Immunol 2005; 115 (6): 1268–75PubMedCrossRef
125.
go back to reference Rost B, Hanf G, Ohnemus U, et al. Monocytes of allergics and non-allergics produce, store and release the neurotrophins NGF, BDNF and NT-3. Regul Pept 2005; 124 (1-3): 19–25PubMedCrossRef Rost B, Hanf G, Ohnemus U, et al. Monocytes of allergics and non-allergics produce, store and release the neurotrophins NGF, BDNF and NT-3. Regul Pept 2005; 124 (1-3): 19–25PubMedCrossRef
126.
go back to reference Donovan MJ, Miranda RC, Kraemer R, et al. Neurotrophin and neurotrophin receptors in vascular smooth muscle cells: regulation of expression in response to injury. Am J Pathol 1995; 147 (2): 309–24PubMed Donovan MJ, Miranda RC, Kraemer R, et al. Neurotrophin and neurotrophin receptors in vascular smooth muscle cells: regulation of expression in response to injury. Am J Pathol 1995; 147 (2): 309–24PubMed
127.
go back to reference Smith MA, Makino S, Kim SY. Stress increases brain-derived neurotrophic factor messenger ribonucleic acid in the hypothalamus and pituitary. Endocrinology 1995; 136 (9): 3743–50PubMedCrossRef Smith MA, Makino S, Kim SY. Stress increases brain-derived neurotrophic factor messenger ribonucleic acid in the hypothalamus and pituitary. Endocrinology 1995; 136 (9): 3743–50PubMedCrossRef
128.
go back to reference Tsukinoki K, Saruta J, Sasaguri Y, et al. Immobilization stress induces BDNF in rat submanidbular glands. J Dent Res 2006; 85: 844–8PubMedCrossRef Tsukinoki K, Saruta J, Sasaguri Y, et al. Immobilization stress induces BDNF in rat submanidbular glands. J Dent Res 2006; 85: 844–8PubMedCrossRef
129.
go back to reference Tsukinoki K, Saruta J, Muto N, et al. Submandibular glands contribute to increase in plasma BDNF. J Dent Res 2007; 86: 260–4PubMedCrossRef Tsukinoki K, Saruta J, Muto N, et al. Submandibular glands contribute to increase in plasma BDNF. J Dent Res 2007; 86: 260–4PubMedCrossRef
130.
go back to reference Adlard PA, Perreau VM, Cotman CW. The exerciseinduced expression of BDNF within the hippocampus varies across life-span. Neurobiol Aging 2005; 26: 511–20PubMedCrossRef Adlard PA, Perreau VM, Cotman CW. The exerciseinduced expression of BDNF within the hippocampus varies across life-span. Neurobiol Aging 2005; 26: 511–20PubMedCrossRef
Metadata
Title
Neuroplasticity — Exercise-Induced Response of Peripheral Brain-Derived Neurotrophic Factor
A Systematic Review of Experimental Studies in Human Subjects
Authors
Kristel Knaepen
Maaike Goekint
Elsa Marie Heyman
Prof. Dr Romain Meeusen
Publication date
01-09-2010
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 9/2010
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.2165/11534530-000000000-00000

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