Exercise and Neuropathy: Systematic Review with Meta-Analysis.


Journal

Sports medicine (Auckland, N.Z.)
ISSN: 1179-2035
Titre abrégé: Sports Med
Pays: New Zealand
ID NLM: 8412297

Informations de publication

Date de publication:
05 2022
Historique:
accepted: 06 11 2021
pubmed: 30 12 2021
medline: 26 4 2022
entrez: 29 12 2021
Statut: ppublish

Résumé

Peripheral neuropathies are a prevalent, heterogeneous group of diseases of the peripheral nervous system. Symptoms are often debilitating, difficult to treat, and usually become chronic. Not only do they diminish patients' quality of life, but they can also affect medical therapy and lead to complications. To date, for most conditions there are no evidence-based causal treatment options available. Research has increased considerably since the last review in 2014 regarding the therapeutic potential of exercise interventions for patients with polyneuropathy. Our objective in this systematic review with meta-analysis was to analyze exercise interventions for neuropathic patients in order to update a systematic review from 2014 and to evaluate the potential benefits of exercise on neuropathies of different origin that can then be translated into practice. Two independent reviewers performed a systematic review with meta-analysis according to the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA). Inclusion criteria according to the PICOS approach were: neuropathic patients, exercise interventions only, an inactive or non-exercising control group, and solely randomized controlled trials with the following outcome parameters: neuropathic symptoms, balance parameters, functional mobility, gait, health-related quality of life, and HbA1c (glycated hemoglobin). A total of 41 randomized, controlled trials met all inclusion criteria, 20 of which could be included in the quantitative analysis. Study quality varied from moderate to high. Current data further support the hypothesis that exercise is beneficial for neuropathic patients. This is best documented for patients with diabetic peripheral neuropathy (DPN) (27 studies) as well as for chemotherapy-induced peripheral neuropathy (CIPN) (nine studies), while there are only few studies (five) on all other causes of neuropathy. We found standardized mean differences in favor of the exercise group of 0.27-2.00 for static balance, Berg Balance Scale, Timed-up-and-go-test, nerve conduction velocity of peroneal and sural nerve as well as for HbA1c in patients with DPN, and standardized mean differences of 0.43-0.75 for static balance, quality of life, and neuropathy-induced symptoms in patients with CIPN. For DPN, evidence-based recommendations can now be made, suggesting a combination of endurance and sensorimotor training to be most beneficial. For patients with CIPN, sensorimotor training remains the most crucial component. For all other neuropathies, more high-quality research is needed to derive evidence-based recommendations. Overall, it seems that sensorimotor training has great potential to target most neuropathies and combined with endurance training is therefore currently the best treatment option for neuropathies. (PROSPERO 2019 CRD42019124583)/16.04.2019.

Identifiants

pubmed: 34964950
doi: 10.1007/s40279-021-01596-6
pii: 10.1007/s40279-021-01596-6
doi:

Substances chimiques

Glycated Hemoglobin 0

Types de publication

Meta-Analysis Systematic Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

1043-1065

Informations de copyright

© 2021. The Author(s), under exclusive licence to Springer Nature Switzerland AG.

Références

Streckmann F, Zopf EM, Lehmann HC, et al. Exercise intervention studies in patients with peripheral neuropathy: a systematic review. Sports Med. 2014;44:1289–304.
doi: 10.1007/s40279-014-0207-5
Singer MA, Vernino SA, Wolfe GI. Idiopathic neuropathy: new paradigms, new promise. J Peripher Nerv Syst. 2012;17(Suppl 2):43–9.
doi: 10.1111/j.1529-8027.2012.00395.x
Lehmann HC, Wunderlich G, Fink GR, Sommer C. Diagnosis of peripheral neuropathy. Neurol Res Pract. 2020;2:20.
doi: 10.1186/s42466-020-00064-2
Mold JW, Vesely SK, Keyl BA, et al. The prevalence, predictors, and consequences of peripheral sensory neuropathy in older patients. J Am Board Fam Pract. 2004;17:309–18.
doi: 10.3122/jabfm.17.5.309
Visser NA, Notermans NC, Linssen RS, et al. Incidence of polyneuropathy in Utrecht, the Netherlands. Neurology. 2015;84:259–64.
doi: 10.1212/WNL.0000000000001160
Sommer C, Geber C, Young P, et al. Polyneuropathies. Dtsch Arztebl Int. 2018;115:83–90.
Tofthagen CS, Cheville AL, Loprinzi CL. The physical consequences of chemotherapy-induced peripheral neuropathy. Curr Oncol Rep. 2020;22:50.
doi: 10.1007/s11912-020-00903-0
Hoffman EM, Staff NP, Robb JM, et al. Impairments and comorbidities of polyneuropathy revealed by population-based analyses. Neurology. 2015;84:1644–51.
doi: 10.1212/WNL.0000000000001492
Stubblefield MD, Burstein HJ, Burton AW, et al. NCCN task force report: management of neuropathy in cancer. J Natl Compr Canc Netw. 2009;7 Suppl 5:S1–26 (quiz S27-28).
doi: 10.6004/jnccn.2009.0078
Poeck K, Hacke W. Neurologie. Springer-Verlag; 2006.
Boulton AJ. Lowering the risk of neuropathy, foot ulcers and amputations. Diabet Med. 1998;15(Suppl 4):S57-59.
doi: 10.1002/(SICI)1096-9136(1998120)15:4+<S57::AID-DIA741>3.0.CO;2-D
Vinik A, Casellini C, Nevoret ML. Diabetic neuropathies. In: Feingold KR, Anawalt B, Boyce A et al (eds) Endotext. South Dartmouth; 2000.
Kobayashi M, Zochodne DW. Diabetic neuropathy and the sensory neuron: new aspects of pathogenesis and their treatment implications. J Diabetes Investig. 2018;9:1239–54.
doi: 10.1111/jdi.12833
Yang Y. Cancer immunotherapy: harnessing the immune system to battle cancer. J Clin Invest. 2015;125:3335–7.
doi: 10.1172/JCI83871
Theurich S, Malcher J, Wennhold K, et al. Brentuximab vedotin combined with donor lymphocyte infusions for early relapse of Hodgkin lymphoma after allogeneic stem-cell transplantation induces tumor-specific immunity and sustained clinical remission. J Clin Oncol. 2013;31:e59-63.
doi: 10.1200/JCO.2012.43.6832
Kao JC, Liao B, Markovic SN, et al. Neurological complications associated with anti-programmed death 1 (PD-1) antibodies. JAMA Neurol. 2017;74:1216–22.
doi: 10.1001/jamaneurol.2017.1912
Banach M, Juranek JK, Zygulska AL. Chemotherapy-induced neuropathies-a growing problem for patients and health care providers. Brain Behav. 2017;7:e00558.
doi: 10.1002/brb3.558
Franques J, Chiche L, De Paula AM, et al. Characteristics of patients with vitamin B12-responsive neuropathy: a case series with systematic repeated electrophysiological assessment. Neurol Res. 2019;41:569–76.
doi: 10.1080/01616412.2019.1588490
Nardin RA, Amick AN, Raynor EM. Vitamin B(12) and methylmalonic acid levels in patients presenting with polyneuropathy. Muscle Nerve. 2007;36:532–5.
doi: 10.1002/mus.20845
Willison HJ, Jacobs BC, van Doorn PA. Guillain-Barre syndrome. Lancet. 2016;388:717–27.
doi: 10.1016/S0140-6736(16)00339-1
Balke M, Wunderlicg G, Brunn A, et al. Chronic inflammatory demyelinating polyneuropathy. Fortschr Neurol Psychiatr. 2016;84:756–69.
doi: 10.1055/s-0042-120226
Kandula T, Park SB, Cohn RJ, et al. Pediatric chemotherapy induced peripheral neuropathy: a systematic review of current knowledge. Cancer Treat Rev. 2016;50:118–28.
doi: 10.1016/j.ctrv.2016.09.005
Moore RJ, Groninger H. Chemotherapy-induced peripheral neuropathy in pediatric cancer patients. Cureus. 2013;5(6):e124. https://doi.org/10.7759/cureus.124 .
doi: 10.7759/cureus.124
Bjornard KL, Gilchrist LS, Inaba H, et al. Peripheral neuropathy in children and adolescents treated for cancer. Lancet Child Adolesc Health. 2018;2:744–54.
doi: 10.1016/S2352-4642(18)30236-0
Lieber S, Blankenburg M, Apel K, et al. Small-fiber neuropathy and pain sensitization in survivors of pediatric acute lymphoblastic leukemia. Eur J Paediatr Neurol. 2018;22:457–69.
doi: 10.1016/j.ejpn.2017.12.019
Ness KK, Hudson MM, Pui CH, et al. Neuromuscular impairments in adult survivors of childhood acute lymphoblastic leukemia: associations with physical performance and chemotherapy doses. Cancer. 2012;118:828–38.
doi: 10.1002/cncr.26337
Ness KK, Jones KE, Smith WA, et al. Chemotherapy-related neuropathic symptoms and functional impairment in adult survivors of extracranial solid tumors of childhood: results from the St. Jude Lifetime Cohort Study. Arch Phys Med Rehabil. 2013;94:1451–7.
doi: 10.1016/j.apmr.2013.03.009
Ramchandren S, Leonard M, Mody RJ, et al. Peripheral neuropathy in survivors of childhood acute lymphoblastic leukemia. J Peripher Nerv Syst. 2009;14:184–9.
doi: 10.1111/j.1529-8027.2009.00230.x
Lehtinen SS, Huuskonen UE, Harila-Saari AH, et al. Motor nervous system impairment persists in long-term survivors of childhood acute lymphoblastic leukemia. Cancer. 2002;94:2466–73.
doi: 10.1002/cncr.10503
Varedi M, McKenna R, Lamberg EM. Balance in children with acute lymphoblastic leukemia. Pediatr Int. 2017;59:293–302.
doi: 10.1111/ped.13141
Tay CG, Lee VWM, Ong LC, et al. Vincristine-induced peripheral neuropathy in survivors of childhood acute lymphoblastic leukaemia. Pediatr Blood Cancer. 2017;64:e26471.
doi: 10.1002/pbc.26471
Kesting SV, Gotte M, Seidel CC, et al. One in four questioned children faces problems regarding reintegration into physical education at school after treatment for pediatric cancer. Pediatr Blood Cancer. 2016;63:737–9.
doi: 10.1002/pbc.25852
Boman KK, Hornquist L, De Graaff L, et al. Disability, body image and sports/physical activity in adult survivors of childhood CNS tumors: population-based outcomes from a cohort study. J Neurooncol. 2013;112:99–106.
doi: 10.1007/s11060-012-1039-5
Rueegg CS, Michel G, Wengenroth L, et al. Physical performance limitations in adolescent and adult survivors of childhood cancer and their siblings. PLoS ONE. 2012;7:e47944.
doi: 10.1371/journal.pone.0047944
Verhagen E, van der Beek A, Twisk J, et al. The effect of a proprioceptive balance board training program for the prevention of ankle sprains: a prospective controlled trial. Am J Sports Med. 2004;32:1385–93.
doi: 10.1177/0363546503262177
Gollhofer A, Granacher U, Taube W, Melnyk M, Gruber M. motor control and injury prevention. Deutsche Zeitschrift für Sportmedizin. 2006;57:266–70.
Zhong D, Xiao Q, He M, et al. Tai Chi for improving balance and reducing falls: a protocol of systematic review and meta-analysis. Medicine (Baltimore). 2019;98:e15225.
doi: 10.1097/MD.0000000000015225
Goldhaber-Fiebert JD, Goldhaber-Fiebert SN, Tristan ML, Nathan DM. Randomized controlled community-based nutrition and exercise intervention improves glycemia and cardiovascular risk factors in type 2 diabetic patients in rural Costa Rica. Diabetes Care. 2003;26:24–9.
doi: 10.2337/diacare.26.1.24
Granacher U, Mühlbauer T, Taube W, Gollhofer A, Gruber M. Sensorimotor training. In: Cardinale M, Newton R, Nosaka K, editors. Strength and conditioning: biological principles and practical applications. San Francisco: Wiley; 2011. p. 399–409.
Bruhn S, Kullmann N, Gollhofer A. The effects of a sensorimotor training and a strength training on postural stabilisation, maximum isometric contraction and jump performance. Int J Sports Med. 2004;25:56–60.
doi: 10.1055/s-2003-45228
Taube W, Gruber M, Gollhofer A. Spinal and supraspinal adaptations associated with balance training and their functional relevance. Acta Physiol (Oxf). 2008;193:101–16.
doi: 10.1111/j.1748-1716.2008.01850.x
Moher D, Liberati A, Tetzlaff J, et al. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. J Clin Epidemiol. 2009;62:1006–12.
doi: 10.1016/j.jclinepi.2009.06.005
Dixit S, Maiya A, Shastry BA, Guddattu V. Analysis of postural control during quiet standing in a population with diabetic peripheral neuropathy undergoing moderate intensity aerobic exercise training: a single blind, randomized controlled trial. Am J Phys Med Rehabil. 2016;95:516–24.
doi: 10.1097/PHM.0000000000000426
Grewal GS, Schwenk M, Lee-Eng J, et al. Sensor-based interactive balance training with visual joint movement feedback for improving postural stability in diabetics with peripheral neuropathy: a randomized controlled trial. Gerontology. 2015;61:567–74.
doi: 10.1159/000371846
Streckmann F, Lehmann HC, Balke M, et al. Sensorimotor training and whole-body vibration training have the potential to reduce motor and sensory symptoms of chemotherapy-induced peripheral neuropathy-a randomized controlled pilot trial. Support Care Cancer. 2019;27:2471–8.
doi: 10.1007/s00520-018-4531-4
Zimmer P, Trebing S, Timmers-Trebing U, et al. Eight-week, multimodal exercise counteracts a progress of chemotherapy-induced peripheral neuropathy and improves balance and strength in metastasized colorectal cancer patients: a randomized controlled trial. Support Care Cancer. 2018;26:615–24.
doi: 10.1007/s00520-017-3875-5
Dhawan S, Andrews R, Kumar L, et al. A randomized controlled trial to assess the effectiveness of muscle strengthening and balancing exercises on chemotherapy-induced peripheral neuropathic pain and quality of life among cancer patients. Cancer Nurs. 2020;43(4):269–80.
doi: 10.1097/NCC.0000000000000693
Kleckner IR, Kamen C, Gewandter JS, et al. Effects of exercise during chemotherapy on chemotherapy-induced peripheral neuropathy: a multicenter, randomized controlled trial. Support Care Cancer. 2018;26:1019–28.
doi: 10.1007/s00520-017-4013-0
Bland KA, Kirkham AA, Bovard J, et al. Effect of exercise on taxane chemotherapy-induced peripheral neuropathy in women with breast cancer: a randomized controlled trial. Clin Breast Cancer. 2019;19:411–22.
doi: 10.1016/j.clbc.2019.05.013
Kruse RL, Lemaster JW, Madsen RW. Fall and balance outcomes after an intervention to promote leg strength, balance, and walking in people with diabetic peripheral neuropathy: “feet first” randomized controlled trial. Phys Ther. 2010;90:1568–79.
doi: 10.2522/ptj.20090362
Kordi Yoosefinejad A, Shadmehr A, Olyaei G, et al. Short-term effects of the whole-body vibration on the balance and muscle strength of type 2 diabetic patients with peripheral neuropathy: a quasi-randomized-controlled trial study. J Diabetes Metab Disord. 2015;14:45.
doi: 10.1186/s40200-015-0173-y
Eftekhar-Sadat B, Azizi R, Aliasgharzadeh A, et al. Effect of balance training with Biodex Stability System on balance in diabetic neuropathy. Ther Adv Endocrinol Metab. 2015;6:233–40.
doi: 10.1177/2042018815595566
Hozo SP, Djulbegovic B, Hozo I. Estimating the mean and variance from the median, range, and the size of a sample. BMC Med Res Methodol. 2005;5:13.
doi: 10.1186/1471-2288-5-13
Wan X, Wang W, Liu J, Tong T. Estimating the sample mean and standard deviation from the sample size, median, range and/or interquartile range. BMC Med Res Methodol. 2014;14:135.
doi: 10.1186/1471-2288-14-135
Borenstein M, Hedges LV, Higgins JP, Rothstein HR. A basic introduction to fixed-effect and random-effects models for meta-analysis. Res Synth Methods. 2010;1:97–111.
doi: 10.1002/jrsm.12
Deeks J, Higgins, J. Statistical algorithms in review manager 5. In: Statistical methods group of the Cochrane Collaboration. 2010; p. 1–11.
Amrhein V, Greenland S, McShane B. Scientists rise up against statistical significance. Nature. 2019;567:305–7.
doi: 10.1038/d41586-019-00857-9
Blakeley B, McShane DG, Gelman A, Robert C, Tackett Jl. Abandon statistical significance. Am Stat. 2019;73:235–45.
doi: 10.1080/00031305.2018.1527253
Greenland S, Senn SJ, Rothman KJ, et al. Statistical tests, P values, confidence intervals, and power: a guide to misinterpretations. Eur J Epidemiol. 2016;31:337–50.
doi: 10.1007/s10654-016-0149-3
Fisch GS, Cohen IL, Jenkins EC, Brown WT. Screening developmentally disabled male populations for fragile X: the effect of sample size. Am J Med Genet. 1988;30:655–63.
doi: 10.1002/ajmg.1320300166
Kanchanasamut W, Pensri P. Effects of weight-bearing exercise on a mini-trampoline on foot mobility, plantar pressure and sensation of diabetic neuropathic feet; a preliminary study. Diabet Foot Ankle. 2017;8:1287239.
doi: 10.1080/2000625X.2017.1287239
Zhang X, Zhang Y, Gao X, et al. Investigating the role of backward walking therapy in alleviating plantar pressure of patients with diabetic peripheral neuropathy. Arch Phys Med Rehabil. 2014;95:832–9.
doi: 10.1016/j.apmr.2014.01.003
Abdelbasset WK, Alrawaili SM, Nambi G, et al. Therapeutic effects of proprioceptive exercise on functional capacity, anxiety, and depression in patients with diabetic neuropathy: a 2-month prospective study. Clin Rheumatol. 2020;39(10):3091–7.
doi: 10.1007/s10067-020-05086-4
Ahmad I, Noohu MM, Verma S, et al. Effect of sensorimotor training on balance measures and proprioception among middle and older age adults with diabetic peripheral neuropathy. Gait Posture. 2019;74:114–20.
doi: 10.1016/j.gaitpost.2019.08.018
Win M, Fukai K, Nyunt HH, Linn KZ. Hand and foot exercises for diabetic peripheral neuropathy: a randomized controlled trial. Nurs Health Sci. 2019;22(2):416–26.
doi: 10.1111/nhs.12676
Nadi M, Bambaeichi E, Marandi SM. Comparison of the effect of two therapeutic exercises on the inflammatory and physiological conditions and complications of diabetic neuropathy in female patients. Diabetes Metab Syndr Obes. 2019;12:1493–501.
doi: 10.2147/DMSO.S206454
Hung ES, Chen SC, Chang FC, et al. Effects of interactive video game-based exercise on balance in diabetic patients with peripheral neuropathy: an open-level, crossover pilot study. Evid Based Complement Alternat Med. 2019;2019:4540709.
doi: 10.1155/2019/4540709
Rojhani-Shirazi Z, Barzintaj F, Salimifard MR. Comparison the effects of two types of therapeutic exercises Frenkele vs. Swiss ball on the clinical balance measures in patients with type II diabetic neuropathy. Diabetes Metab Syndr. 2017;11 Supp 1:S29–32.
doi: 10.1016/j.dsx.2016.08.020
Sartor CD, Watari R, Passaro AC, et al. Effects of a combined strengthening, stretching and functional training program versus usual-care on gait biomechanics and foot function for diabetic neuropathy: a randomized controlled trial. BMC Musculoskelet Disord. 2012;13:36.
doi: 10.1186/1471-2474-13-36
Lee K, Lee S, Song C. Whole-body vibration training improves balance, muscle strength and glycosylated hemoglobin in elderly patients with diabetic neuropathy. Tohoku J Exp Med. 2013;231:305–14.
doi: 10.1620/tjem.231.305
Song CH, Petrofsky JS, Lee SW, et al. Effects of an exercise program on balance and trunk proprioception in older adults with diabetic neuropathies. Diabetes Technol Ther. 2011;13:803–11.
doi: 10.1089/dia.2011.0036
Allet L, Armand S, de Bie RA, et al. The gait and balance of patients with diabetes can be improved: a randomised controlled trial. Diabetologia. 2010;53:458–66.
doi: 10.1007/s00125-009-1592-4
Gholami F, Nazari H, Alimi M. Cycle Training improves vascular function and neuropathic symptoms in patients with type 2 diabetes and peripheral neuropathy: A randomized controlled trial. Exp Gerontol. 2020;131:110799.
doi: 10.1016/j.exger.2019.110799
Dixit S, Maiya A, Shastry BA. Effects of aerobic exercise on vibration perception threshold in type 2 diabetic peripheral neuropathy population using 3-sites method: single-blind randomized controlled trial. Altern Ther Health Med. 2019;25:36–41.
Stubbs EB Jr, Fisher MA, Miller CM, et al. Randomized controlled trial of physical exercise in diabetic veterans with length-dependent distal symmetric polyneuropathy. Front Neurosci. 2019;13:51.
doi: 10.3389/fnins.2019.00051
Gholami F, Nikookheslat S, Salekzamani Y, et al. Effect of aerobic training on nerve conduction in men with type 2 diabetes and peripheral neuropathy: a randomized controlled trial. Neurophysiol Clin. 2018;48(4):195–202.
doi: 10.1016/j.neucli.2018.03.001
Dixit S, Maiya A, Shastry B. Effect of aerobic exercise on quality of life in population with diabetic peripheral neuropathy in type 2 diabetes: a single blind, randomized controlled trial. Qual Life Res. 2014;23:1629–40.
doi: 10.1007/s11136-013-0602-7
Dixit S, Maiya AG, Shastry BA. Effect of aerobic exercise on peripheral nerve functions of population with diabetic peripheral neuropathy in type 2 diabetes: a single blind, parallel group randomized controlled trial. J Diabetes Complic. 2014;28(3):332–9.
doi: 10.1016/j.jdiacomp.2013.12.006
Balducci S, Iacobellis G, Parisi L, Di Biase N, Calandriello E, Leonetti F, Fallucca F. Exercise training can modify the natural history of diabetic peripheral neuropathy. J Diabetes Complic. 2006;20:216–23.
doi: 10.1016/j.jdiacomp.2005.07.005
Seyedizadeh SH, Cheragh-Birjandi S, Hamedi Nia MR. The effects of combined exercise training (Resistance-Aerobic) on serum kinesin and physical function in type 2 diabetes patients with diabetic peripheral neuropathy (Randomized Controlled Trials). J Diabetes Res. 2020;2020:6978128.
doi: 10.1155/2020/6978128
Melai T, Schaper NCTHIJ, et al. Strength training affects lower extremity gait kinematics, not kinetics, in people with diabetic polyneuropathy. J Appl Biomech. 2014;30:221–30.
doi: 10.1123/jab.2013-0186
Ghavami H, Radfar M, Soheily S, et al. Effect of lifestyle interventions on diabetic peripheral neuropathy in patients with type 2 diabetes, result of a randomized clinical trial. Agriculture. 2018;30:165–70.
Streckmann FHCL, Balke M, Schenk A, Oberste M, Heller A, Schürhöster A, Elter T, Bloch W, Baumann FT. Sensorimotor- and whole-body vibration training have the potential to reduce motor- and sensory symptoms of Chemotherapy-induced peripheral neuropathy—a randomized controlled pilot trial. Support Care Cancer. 2019;27(7):2471–8.
doi: 10.1007/s00520-018-4531-4
Schwenk M, Grewal GS, Holloway D, et al. Interactive sensor-based balance training in older cancer patients with chemotherapy-induced peripheral neuropathy: a randomized controlled trial. Gerontology. 2016;62:553–63.
doi: 10.1159/000442253
Streckmann F, Kneis S, Leifert JA, et al. Exercise program improves therapy-related side-effects and quality of life in lymphoma patients undergoing therapy. Ann Oncol. 2014;25:493–9.
doi: 10.1093/annonc/mdt568
Kneis S, Wehrle A, Muller J, et al. It’s never too late - balance and endurance training improves functional performance, quality of life, and alleviates neuropathic symptoms in cancer survivors suffering from chemotherapy-induced peripheral neuropathy: results of a randomized controlled trial. BMC Cancer. 2019;19:414.
doi: 10.1186/s12885-019-5522-7
Vollmers PL, Mundhenke C, Maass N, et al. Evaluation of the effects of sensorimotor exercise on physical and psychological parameters in breast cancer patients undergoing neurotoxic chemotherapy. J Cancer Res Clin Oncol. 2018;144:1785–92.
doi: 10.1007/s00432-018-2686-5
Maharaj SS, Yakasai AM. Does a rehabilitation program of aerobic and progressive resisted exercises influence HIV-induced distal neuropathic pain? Am J Phys Med Rehabil. 2018;97:364–9.
doi: 10.1097/PHM.0000000000000866
Tumusiime DK, Stewart A, Venter FWD, Musenge E. The effects of a physiotherapist-led exercise intervention on peripheral neuropathy among people living with HIV on antiretroviral therapy in Kigali, Rwanda. S Afr J Physiother. 2019;75:1328.
doi: 10.4102/sajp.v75i1.1328
Quigley PA, Bulat T, Schulz B, et al. Exercise interventions, gait, and balance in older subjects with distal symmetric polyneuropathy: a three-group randomized clinical trial. Am J Phys Med Rehabil. 2014;93:1–12 (quiz 13-16).
doi: 10.1097/PHM.0000000000000052
Lindeman E, Leffers P, Spaans F, et al. Strength training in patients with myotonic dystrophy and hereditary motor and sensory neuropathy: a randomized clinical trial. Arch Phys Med Rehabil. 1995;76:612–20.
doi: 10.1016/S0003-9993(95)80629-6
Yakasai AM, Maharaj SS, Kaka B, et al. Does exercise program of endurance and strength improve health-related quality of life in persons living with HIV-related distal symmetrical polyneuropathy? A randomized controlled trial. Qual Life Res. 2020;29:2383–93.
doi: 10.1007/s11136-020-02500-x
Steimann M, Kerschgens C, Barth J. Rehabilitation bei chemotherapieinduzierter polyneuropathie. Onkologe. 2011;17:940–7.
doi: 10.1007/s00761-011-2111-z
Lemaster JW, Mueller MJ, Reiber GE, et al. Effect of weight-bearing activity on foot ulcer incidence in people with diabetic peripheral neuropathy: feet first randomized controlled trial. Phys Ther. 2008;88:1385–98.
doi: 10.2522/ptj.20080019
Mueller MJ, Tuttle LJ, Lemaster JW, et al. Weight-bearing versus nonweight-bearing exercise for persons with diabetes and peripheral neuropathy: a randomized controlled trial. Arch Phys Med Rehabil. 2013;94:829–38.
doi: 10.1016/j.apmr.2012.12.015
Kohut ML, McCann DA, Russell DW, et al. Aerobic exercise, but not flexibility/resistance exercise, reduces serum IL-18, CRP, and IL-6 independent of beta-blockers, BMI, and psychosocial factors in older adults. Brain Behav Immun. 2006;20:201–9.
doi: 10.1016/j.bbi.2005.12.002
Cobianchi S, Arbat-Plana A, Lopez-Alvarez VM, Navarro X. Neuroprotective effects of exercise treatments after injury: the dual role of neurotrophic factors. Curr Neuropharmacol. 2017;15:495–518.
doi: 10.2174/1570159X14666160330105132
Park JS, Hoke A. Treadmill exercise induced functional recovery after peripheral nerve repair is associated with increased levels of neurotrophic factors. PLoS ONE. 2014;9:e90245.
doi: 10.1371/journal.pone.0090245
Pezet S, McMahon SB. Neurotrophins: mediators and modulators of pain. Annu Rev Neurosci. 2006;29:507–38.
doi: 10.1146/annurev.neuro.29.051605.112929
Obata K, Noguchi K. BDNF in sensory neurons and chronic pain. Neurosci Res. 2006;55:1–10.
doi: 10.1016/j.neures.2006.01.005
Tomlinson DR, Gardiner NJ. Glucose neurotoxicity. Nat Rev Neurosci. 2008;9:36–45.
doi: 10.1038/nrn2294
Kikkawa Y, Kuwabara S, Misawa S, et al. The acute effects of glycemic control on nerve conduction in human diabetics. Clin Neurophysiol. 2005;116:270–4.
doi: 10.1016/j.clinph.2004.08.011
Gollhofer A. Proprioceptive training: considerations for strength and power production. In: Komi PV, editor. Strenght and power in sport. 2nd ed. Oxford: Blackwell Publishing; 2003. p. 331–42.
doi: 10.1002/9780470757215.ch17
Dermanovic Dobrota V, Hrabac P, Skegro D, et al. The impact of neuropathic pain and other comorbidities on the quality of life in patients with diabetes. Health Qual Life Outcomes. 2014;12:171.
doi: 10.1186/s12955-014-0171-7
Malik RA, Aldinc E, Chan SP, et al. Perceptions of painful diabetic peripheral neuropathy in South-East Asia: results from patient and physician surveys. Adv Ther. 2017;34:1426–37.
doi: 10.1007/s12325-017-0536-5
Hawley JA, Lessard SJ. Exercise training-induced improvements in insulin action. Acta Physiol (Oxf). 2008;192:127–35.
doi: 10.1111/j.1748-1716.2007.01783.x
Colberg SR, Sigal RJ, Yardley JE, et al. Physical activity/exercise and diabetes: a position statement of the American Diabetes Association. Diabetes Care. 2016;39:2065–79.
doi: 10.2337/dc16-1728
Colberg SR. Key points from the updated guidelines on exercise and diabetes. Front Endocrinol (Lausanne). 2017;8:33.
doi: 10.3389/fendo.2017.00033
Taube W, Gruber M, Beck S, et al. Cortical and spinal adaptations induced by balance training: correlation between stance stability and corticospinal activation. Acta Physiol. 2007;189:347–58.
doi: 10.1111/j.1748-1716.2007.01665.x
Ahn S, Song R. Effects of Tai Chi Exercise on glucose control, neuropathy scores, balance, and quality of life in patients with type 2 diabetes and neuropathy. J Altern Complement Med. 2012;18:1172–8.
doi: 10.1089/acm.2011.0690

Auteurs

Fiona Streckmann (F)

Department of Sport, Exercise and Health, University of Basel, Grosse Allee 6, 4052, Basel, Switzerland. fiona.streckmann@unibas.ch.
Department of Oncology, University Hospital Basel, Petersgraben 4, 4031, Basel, Switzerland. fiona.streckmann@unibas.ch.
Institute for Cardiovascular Research and Sports Medicine, German Sport University Cologne, Am Sportpark Müngersdorf 6, 50933, Cologne, Germany. fiona.streckmann@unibas.ch.

Maryam Balke (M)

Department of Early Neurological and Interdisciplinary Rehabilitation, St. Marien-Hospital, Kunibertskloster 11-13, 50668, Cologne, Germany.
Department of Rehabilitation Sciences, University of Witten/Herdecke, Holthauser Talstraße 2, 58256, Ennepetal, Germany.

Guido Cavaletti (G)

Experimental Neurology Unit, School of Medicine and Surgery and Milan Center for Neuroscience, University of Milano-Bicocca, via Cadore 48, 20900, Monza, Italy.

Alexandra Toscanelli (A)

Department of Sport, Exercise and Health, University of Basel, Grosse Allee 6, 4052, Basel, Switzerland.

Wilhelm Bloch (W)

Institute for Cardiovascular Research and Sports Medicine, German Sport University Cologne, Am Sportpark Müngersdorf 6, 50933, Cologne, Germany.

Bernhard F Décard (BF)

Department of Medicine, Neurologic Clinic and Policlinic, University Hospital Basel and University of Basel, 4031, Basel, Switzerland.
Department of Biomedicine, Neurologic Clinic and Policlinic, University Hospital Basel and University of Basel, 4031, Basel, Switzerland.
Department of Clinical Research, Neurologic Clinic and Policlinic, University Hospital Basel and University of Basel, 4031, Basel, Switzerland.

Helmar C Lehmann (HC)

Department of Neurology, University Hospital Cologne, Kerpener Straße 62, 50937, Cologne, Germany.

Oliver Faude (O)

Department of Sport, Exercise and Health, University of Basel, Grosse Allee 6, 4052, Basel, Switzerland.

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