Postural balance and cognitive functions: interaction and significance for rehabilitation (scientific review)

Yu. P. Zverev , T. V. Builova , А. A. Tulichev

Physical and rehabilitation medicine, medical rehabilitation ›› 2024, Vol. 6 ›› Issue (2) : 143 -156.

PDF
Physical and rehabilitation medicine, medical rehabilitation ›› 2024, Vol. 6 ›› Issue (2) :143 -156. DOI: 10.36425/rehab626484
REVIEWS
review-article

Postural balance and cognitive functions: interaction and significance for rehabilitation (scientific review)

Author information +
History +
PDF

Abstract

The study analyses the patterns of postural-cognitive interaction and their possible application in physical rehabilitation. The morphofunctional basis of the relationship between postural balance and cognitive functions is considered, particularly the role of the vestibular system in cognitive processes and the participation of cognitive functions in the regulation of equilibrium. The interaction patterns between postural balance and cognitive functions were analyzed, including the global nature of postural-cognitive interaction, influence of multitasking, and type of motor task (static or dynamic), its complexity, novelty and variability. The review presents the prospects and advantages of the practical application of the concept of postural-cognitive interaction in physical rehabilitation. These include the use of cognitive training methods in rehabilitation programs, which, due to the positive transfer of the effect of training, improves cognitive functions and postural stability and increases the ability to perform two or more tasks, including those related to activities of daily living. Vestibular training is another promising area of practical application of interaction between cognitive functions and postural balance; accordingly, vestibular–cognitive interaction contributes to the improvement of cognitive status. Considering the social significance of neurocognitive disorders and the importance of their early diagnosis, issues related to the identification of objective correlates and predictors of cognitive decline, particularly the basic spatial and spatiotemporal parameters of static posturography and stabilometric indices, are taken into account.

Keywords

postural balance / cognitive functions / stabilometry / rehabilitation

Cite this article

Download citation ▾
Yu. P. Zverev, T. V. Builova, А. A. Tulichev. Postural balance and cognitive functions: interaction and significance for rehabilitation (scientific review). Physical and rehabilitation medicine, medical rehabilitation, 2024, 6(2): 143-156 DOI:10.36425/rehab626484

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Xiao T, Yang L, Smith L, et al. Correlation between cognition and balance among middle-aged and older adults observed through a tai chi intervention program. Front Psychol. 2020;(11):668. doi: 10.3389/fpsyg.2020.00668

[2]

Xiao T., Yang L., Smith L., et al. Correlation between cognition and balance among middle-aged and older adults observed through a tai chi intervention program // Front Psychol. 2020. N 11. Р. 668. doi: 10.3389/fpsyg.2020.00668

[3]

Bazanova OM, Kovaleva AV. Psychophysiological indicators of postural control. Contribution of the Russian scientific school. Part I. Human Physiol. 2022;48(2):113–136. EDN: KGLQBE doi: 10.31857/S0131164622020023

[4]

Базанова О.М., Ковалева А.В. Исследования психофизиологических показателей постурального контроля. Вклад российской научной школы. Часть I // Физиология человека. 2022. Т. 48, № 2. С. 113–136. EDN: KGLQBE doi: 10.31857/S0131164622020023

[5]

Horak FB. Postural orientation and equilibrium: What do we need to know about neural control of balance to prevent falls? Age Ageing. 2006;35(Suppl 2):ii7–ii11. EDN: IKEUWF doi: 10.1093/ageing/afl077

[6]

Horak F.B. Postural orientation and equilibrium: What do we need to know about neural control of balance to prevent falls? // Age Ageing. 2006. Vol. 35, Suppl. 2. P. ii7–ii11. EDN: IKEUWF doi: 10.1093/ageing/afl077

[7]

Stephan DN, Hensen S, Fintor E, et al. Influences of postural control on cognitive control in task switching. Front Psychol. 2018;(9):1153. doi: 10.3389/fpsyg.2018.01153

[8]

Stephan D.N., Hensen S., Fintor E., et al. Influences of postural control on cognitive control in task switching // Front Psychol. 2018. N 9. P. 1153. doi: 10.3389/fpsyg.2018.01153

[9]

Woollacott M, Shumway-Cook A. Attention and the control of posture and gait: A review of an emerging area of research. Gait Posture. 2002;16(1):1–14. doi: 10.1016/S0966-6362(01)00156-4

[10]

Woollacott M., Shumway-Cook A. Attention and the control of posture and gait: A review of an emerging area of research // Gait Posture. 2002. Vol. 16, N 1. P. 1–14. doi: 10.1016/S0966-6362(01)00156-4

[11]

Parfenov VA, Zakharov VV, Preobrazhenskaya IS. Cognitive disorders. Moscow: Remedium; 2014.192 р. (In Russ).

[12]

Парфенов В.А., Захаров В.В., Преображенская И.С. Когнитивные расстройства. Москва: Ремедиум, 2014. 192 с.

[13]

Horak FB, Nashner LM. Central programming of posture control: Adaptation to altered support surface configurations. J Neurophysiol. 1986;55(6):1369–1381. doi: 10.1152/jn.1986.55.6.1369

[14]

Horak F.B., Nashner L.M. Central programming of posture control: Adaptation to altered support surface configurations // J Neurophysiol. 1986. Vol. 55, N 6. P. 1369–1381. doi: 10.1152/jn.1986.55.6.1369

[15]

Ivanova GE, Skvortsov DV, Klimov LV. Postural function evaluation in clinical practice. Bulletin Rehabilitat Med. 2014;(1): 19–25. EDN: SPLBTF

[16]

Иванова Г.Е., Скворцов Д.В., Климов Л.В. Оценка постуральной функции в клинической практике // Вестник восстановительной медицины. 2014. № 1. С. 19–25. EDN: SPLBTF

[17]

Gazhe PM, Veber B. Posturology. Regulation and disorders of human body equilibrium. Saint Petersburg: Publishing House St. Petersburg Medical Academy of Postgraduate Education; 2008. 314 p. (In Russ).

[18]

Гаже П.М., Вебер Б. Постурология. Регуляция и нарушения равновесия тела человека. Санкт-Петербург: Издательский дом СПбМАПО, 2008. 314 c.

[19]

Cognitive disorders in the elderly and senile: clinical recommendations. Moscow: Pero Publishing House; 2021. 344 p. (In Russ).

[20]

Когнитивные расстройства у лиц пожилого и старческого возраста: клинические рекомендации. Москва: Перо; 2021. 344 с.

[21]

Kiely KM. Cognitive function. In: A.C. Michalos, editor. Encyclopedia of quality of life and well-being research. Dordrecht: Springer; 2014. Р. 974–978. doi: 1007/978-94-007-0753-5_426

[22]

Kiely K.M. Cognitive function. In: A.C. Michalos, editor. Encyclopedia of quality of life and well-being research. Dordrecht: Springer, 2014. Р. 974–978. doi: 1007/978-94-007-0753-5_426

[23]

Diagnostic and statistical manual of mental diseases. ed. (DSM-V). London: American Psychiatric Association; 2013. 947 р.

[24]

Diagnostic and statistical manual of mental diseases. V ed. (DSM-V). London: American Psychiatric Association, 2013. 947 р.

[25]

Diamond А. Executive functions. Ann Rev Psychol. 2013;(64): 135–168. doi: 10.1146/annurev-psych-113011-143750

[26]

Diamond А. Executive functions // Ann Rev Psychol. 2013. N 64. P. 135–168. doi: 10.1146/annurev-psych-113011-143750

[27]

International Classification of Functioning, Disability and Health: ICF [Internet resource]. Geneva: World Health Organisation; 2001. 351 р. (In Russ). Available from: https://skssrc.ru/files/2022/mkf.pdf. Accessed: 15.01.2024.

[28]

Международная классификация функционирования, ограничений жизнедеятельности и здоровья: МКФ [интернет-ресурс]. Женева: Всемирная организация здравоохранения, 2001. 351 с. Режим доступа: https://skssrc.ru/files/2022/mkf.pdf. Дата обращения: 15.01.2024.

[29]

Solovyova AP, Goryachev DV, Arkhipov VV. Criteria for assessing cognitive impairment in clinical trials. Bulletin Sci Center Examinat Med Products. 2018;8(4):218–230. EDN: YQDKHR doi: 10.30895/1991-2919-2018-8-4-218-230

[30]

Соловьева А.П., Горячев Д.В., Архипов В.В. Критерии оценки когнитивных нарушений в клинических исследованиях // Ведомости научного центра экспертизы средств медицинского применения. 2018. Т. 8, № 4. C. 218–230. EDN: YQDKHR doi: 10.30895/1991-2919-2018-8-4-218-230

[31]

Van der Fels IM, Wierike SC, Hartman Е, et al. The relationship between motor skills and cognitive skills in 4–16 year old typically developing children: A systematic review. J Sci Med Sport. 2015;18(6):697–703. doi: 10.1016/j.jsams.2014.09.007

[32]

Van der Fels I.M., Wierike S.C., Hartman Е., et al. The relationship between motor skills and cognitive skills in 4–16 year old typically developing children: A systematic review // J Sci Med Sport. 2015. Vol. 18, N 6. P. 697–703. doi: 10.1016/j.jsams.2014.09.007

[33]

Anderson V, Anderson P, Northam E, et al. Development of executive functions through late childhood and adolescence: An Australian sample. Dev Neuropsychol. 2001;20(1):385–406. doi: 10.1207/S15326942DN2001_5

[34]

Anderson V., Anderson P., Northam E., et al. Development of executive functions through late childhood and adolescence: An Australian sample // Dev Neuropsychol. 2001. Vol. 20, N 1. P. 385–406. doi: 10.1207/S15326942DN2001_5

[35]

Roebers CM, Kauer M. Motor and cognitive control in a normative sample of 7-year-olds. Dev Sci. 2009;12(1):175–181. doi: 10.1111/j.1467-7687.2008.00755.x

[36]

Roebers C.M., Kauer M. Motor and cognitive control in a normative sample of 7-year-olds // Dev Sci. 2009. Vol. 12, N 1. P. 175–181. doi: 10.1111/j.1467-7687.2008.00755.x

[37]

Bigelow RT, Agrawal Y. Vestibular involvement in cognition: Visuospatialability, attention, executive function, and memory. J Vestib Res. 2015;25(2):73–89. EDN: UWTAIF doi: 10.3233/VES-150544

[38]

Bigelow R.T., Agrawal Y. Vestibular involvement in cognition: Visuospatialability, attention, executive function, and memory // J Vestib Res. 2015. Vol. 25, N 2. P. 73–89. EDN: UWTAIF doi: 10.3233/VES-150544

[39]

Dobbels B, Peetermans O, Boon B, et al. Impact of bilateral vestibulopathy on spatial and nonspatial cognition: A systematic review. Ear Hear. 2019;40(4):757–765. EDN: ORGLJZ doi: 10.1097/AUD.0000000000000679

[40]

Dobbels B., Peetermans O., Boon B., et al. Impact of bilateral vestibulopathy on spatial and nonspatial cognition: A systematic review // Ear Hear. 2019. Vol. 40, N 4. P. 757–765. EDN: ORGLJZ doi: 10.1097/AUD.0000000000000679

[41]

Mast FW, Preuss N, Hartmann M, Grabherr L. Spatial cognition, body representation and affective processes: The role of vestibular information beyond ocular reflexes and control of posture. Front Integr Neurosci. 2014;27(8):44. EDN: VJFCRF doi: 10.3389/fnint.2014.00044

[42]

Mast F.W., Preuss N., Hartmann M., Grabherr L. Spatial cognition, body representation and affective processes: The role of vestibular information beyond ocular reflexes and control of posture // Front Integr Neurosci. 2014. Vol. 27, N 8. P. 44. EDN: VJFCRF doi: 10.3389/fnint.2014.00044

[43]

Agrawal Y, Smith PF, Rosenberg PB. Vestibular impairment, cognitive decline and Alzheimer’s disease: Balancing the evidence. Aging Ment Health. 2020;24(5):705–708. doi: 10.1080/13607863.2019.1566813

[44]

Agrawal Y., Smith P.F., Rosenberg P.B. Vestibular impairment, cognitive decline and Alzheimer’s disease: Balancing the evidence // Aging Ment Health. 2020. Vol. 24, N 5. P. 705–708. doi: 10.1080/13607863.2019.1566813

[45]

Ventre-Dominey J. Vestibular function in the temporal and parietal cortex: Distinct velocity and inertial processing pathways. Front Integr Neurosci. 2014;(8):53. doi: 10.3389/fnint.2014.00053

[46]

Ventre-Dominey J. Vestibular function in the temporal and parietal cortex: Distinct velocity and inertial processing pathways // Front Integr Neurosci. 2014. N 8. Р. 53. doi: 10.3389/fnint.2014.00053

[47]

Gresty MA, Golding JF. Impact of vertigo and spatial disorientation on concurrent cognitive tasks. Ann NY Acad Sci. 2009;(1164): 263–267. doi: 10.1111/j.1749-6632.2008.03744.x

[48]

Gresty M.A., Golding J.F. Impact of vertigo and spatial disorientation on concurrent cognitive tasks // Ann NY Acad Sci. 2009. N 1164. P. 263–267. doi: 10.1111/j.1749-6632.2008.03744.x

[49]

Hüfner K, Stephan T, Hamilton DA, et al. Gray-matter atrophy after chronic complete unilateral vestibular deafferentation. Ann NY Acad Sci. 2009;(1164):383–385. doi: 10.1111/j.1749-6632.2008.03719.x

[50]

Hüfner K., Stephan T., Hamilton D.A., et al. Gray-matter atrophy after chronic complete unilateral vestibular deafferentation // Ann NY Acad Sci. 2009. N 1164. P. 383–385. doi: 10.1111/j.1749-6632.2008.03719.x

[51]

Kamil RJ, Jacob A, Ratnanather JT, et al. Vestibular function and hippocampal volume in the Вaltimore longitudinal study of aging (BLSA). Otol Neurotol. 2018;39(6):765–771. doi: 10.1097/MAO.0000000000001838

[52]

Kamil R.J., Jacob A., Ratnanather J.T., et al. Vestibular function and hippocampal volume in the Вaltimore longitudinal study of aging (BLSA) // Otol Neurotol. 2018. Vol. 39, N 6. P. 765–771. doi: 10.1097/MAO.0000000000001838

[53]

Lazarov O, Hollands C. Hippocampal neurogenesis: Learning to remember. Prog Neurobiol. 2016;(138–140):1–18. doi: 10.1016/j.pneurobio.2015.12.006

[54]

Lazarov O., Hollands C. Hippocampal neurogenesis: Learning to remember // Prog Neurobiol. 2016. N 138-140. P. 1–18. doi: 10.1016/j.pneurobio.2015.12.006

[55]

Tighilet B, Chabbert C. Adult neurogenesis promotes balance recovery after vestibular loss. Prog Neurobiol. 2019;(174):28–35. doi: 10.1016/j.pneurobio.2019.01.001

[56]

Tighilet B., Chabbert C. Adult neurogenesis promotes balance recovery after vestibular loss // Prog Neurobiol. 2019. N 174. P. 28–35. doi: 10.1016/j.pneurobio.2019.01.001

[57]

Suzuki Y, Tsubaki T, Nakaya K, et al. New balance capability index as a screening tool for mild cognitive impairment. BMC Geriatrics. 2023;23(1):74. EDN: IPNXXV doi: 10.1186/s12877-023-03777-6

[58]

Suzuki Y., Tsubaki T., Nakaya K., et al. New balance capability index as a screening tool for mild cognitive impairment // BMC Geriatrics. 2023. Vol. 23, N 1. P. 74. EDN: IPNXXV doi: 10.1186/s12877-023-03777-6

[59]

Rizzato A, Paoli A, Andretta M, et al. Are static and dynamic postural balance assessments two sides of the same coin? A cross-sectional study in the older adults. Front Physiol. 2021;(12):681370. doi: 10.3389/fphys.2021.681370

[60]

Rizzato A., Paoli A., Andretta M., et al. Are static and dynamic postural balance assessments two sides of the same coin? A cross-sectional study in the older adults // Front Physiol. 2021. N 12. P. 681370. doi: 10.3389/fphys.2021.681370

[61]

McIsaac TL, Lamberg EM, Muratori LM. Building a framework for a dual task taxonomy. BioMed Res Int. 2015;2015:591475. doi: 10.1155/2015/591475

[62]

McIsaac T.L., Lamberg E.M., Muratori L.M. Building a framework for a dual task taxonomy // BioMed Res Int. 2015. Vol. 2015. P. 591475. doi: 10.1155/2015/591475

[63]

Tombu M, Jolicoeur PA. Central capacity sharing model of dual-task performance. J Exp Psychol Hum Percept Perform. 2003;29(1): 3–18. EDN: GXKDQL doi: 10.1037//0096-1523.29.1.3

[64]

Tombu M., Jolicoeur P. A central capacity sharing model of dual-task performance // J Exp Psychol Hum Percept Perform. 2003. Vol. 29, N 1. P. 3–18. EDN: GXKDQL doi: 10.1037//0096-1523.29.1.3

[65]

Borel L, Alescio-Lautier B. Posture and cognition in the elderly: Interaction and contribution to the rehabilitation strategies. Neurophysiol Clin. 2014;44(1):95–107. doi: 10.1016/j.neucli.2013.10.129

[66]

Borel L., Alescio-Lautier B. Posture and cognition in the elderly: Interaction and contribution to the rehabilitation strategies // Neurophysiol Clin. 2014. Vol. 44, N 1. P. 95–107. doi: 10.1016/j.neucli.2013.10.129

[67]

Divandari N, Bird ML, Vakili M, Jaberzadeh S. The association between cognitive domains and postural balance among healthy older adults: A systematic review of literature and meta-analysis. Curr Neurol Neurosci Rep. 2023;23(11):681–693. EDN: WFFPPN doi: 10.1007/s11910-023-01305-y

[68]

Divandari N., Bird M.L., Vakili M., Jaberzadeh S. The association between cognitive domains and postural balance among healthy older adults: A systematic review of literature and meta-analysis // Curr Neurol Neurosci Rep. 2023. Vol. 23, N 11. P. 681–693. EDN: WFFPPN doi: 10.1007/s11910-023-01305-y

[69]

Demnitz N, Patrick E, Helen D, аt al. A systematic review and meta-analysis of cross-sectional studies examining the relationship between mobility and cognition in healthy older adults. Gait Posture. 2016;(50):164–174. doi: 10.1016/j.gaitpost.2016.08.028

[70]

Demnitz N., Patrick E., Helen D., аt al. A systematic review and meta-analysis of cross-sectional studies examining the relationship between mobility and cognition in healthy older adults // Gait Posture. 2016. N 50. P. 164–174. doi: 10.1016/j.gaitpost.2016.08.028

[71]

Stuhr C, Hughes CM, Stöckel T. Task-specific and variability driven activation of cognitive control processes during motor performance. Sci Rep. 2018;8(1):10811. EDN: YJECQH doi: 10.1038/s41598-018-29007-3

[72]

Stuhr C., Hughes C.M., Stöckel T. Task-specific and variability driven activation of cognitive control processes during motor performance // Sci Rep. 2018. Vol. 8, N 1. P. 10811. EDN: YJECQH doi: 10.1038/s41598-018-29007-3

[73]

Best JR. Effects of physical activity on children’s executive function: Contributions of experimental research on aerobic exercise. Dev Rev. 2010;30(4):331–351. doi: 10.1016/j.dr.2010.08.001

[74]

Best J.R. Effects of physical activity on children’s executive function: Contributions of experimental research on aerobic exercise // Dev Rev. 2010. Vol. 30, N 4. P. 331–351. doi: 10.1016/j.dr.2010.08.001

[75]

Rosano C, Simonsick EM, Harris TB, et al. Association between physical function and cognitive function in healthy elderly: The health, aging and body composition study. Neuroepidemiology. 2005; 24(1-2):8–14. doi: 10.1159/000081043

[76]

Rosano C., Simonsick E.M., Harris T.B., et al. Association between physical function and cognitive function in healthy elderly: The health, aging and body composition study // Neuroepidemiology. 2005. Vol. 24, N 1-2. P. 8–14. doi: 10.1159/000081043

[77]

Heaw YC, Singh DK, Tan MP, Kumar S. Bidirectional association between executive and physical functions among older adults: A systematic review. Austral J Ageing. 2022;41(1):20–41. doi: 10.1111/ajag.13008

[78]

Heaw Y.C., Singh D.K., Tan M.P., Kumar S. Bidirectional association between executive and physical functions among older adults: A systematic review // Austral J Ageing. 2022. Vol. 41, N 1. P. 20–41. doi: 10.1111/ajag.13008

[79]

Stöckel T, Wunsch K, Hughes CM. Age-related decline in anticipatory motor planning and its relation to cognitive and motor skill proficiency. Front Aging Neurosci. 2017;(9):283. doi: 10.3389/fnagi.2017.00283

[80]

Stöckel T., Wunsch K., Hughes C.M. Age-related decline in anticipatory motor planning and its relation to cognitive and motor skill proficiency // Front Aging Neurosci. 2017. N 9. Р. 283. doi: 10.3389/fnagi.2017.00283

[81]

Bayot M, Dujardin K, Tard C, et al. The interaction between cognition and motor control: A theoretical framework for dual-task interference effects on posture, gait initiation, gait and turning. Neurophysiol Clin. 2018;48(6):361–375. doi: 10.1016/j.neucli.2018.10.003

[82]

Bayot M., Dujardin K., Tard C., et al. The interaction between cognition and motor control: A theoretical framework for dual-task interference effects on posture, gait initiation, gait and turning // Neurophysiol Clin. 2018. Vol. 48, N 6. P. 361–375. doi: 10.1016/j.neucli.2018.10.003

[83]

Chein JM, Schneider W. Neuroimaging studies of practice-related change: fMRI and meta-analytic evidence of a domain general control network for learning. Cogn Brain Res. 2005;25(3):607–623. doi: 10.1016/j.cogbrainres.2005.08.013

[84]

Chein J.M., Schneider W. Neuroimaging studies of practice-related change: fMRI and meta-analytic evidence of a domain general control network for learning // Cogn Brain Res. 2005. Vol. 25, N 3.P. 607–623. doi: 10.1016/j.cogbrainres.2005.08.013

[85]

Winter DA. Biomechanics and motor control of human movement. 4th ed. New York: John Wiley; 2009. 384 р.

[86]

Winter D.A. Biomechanics and motor control of human movement. 4th ed. New York: John Wiley, 2009. 384 р.

[87]

Muehlbauer T, Besemer C, Wehrle A, et al. Relationship between strength, power and balance performance in seniors. Gerontology. 2012;58(6):504–512. doi: 10.1159/000341614

[88]

Muehlbauer T., Besemer C., Wehrle A., et al. Relationship between strength, power and balance performance in seniors // Gerontology. 2012. Vol. 58, N 6. P. 504–512. doi: 10.1159/000341614

[89]

Takakusaki K, Takahashi M, Obara K, Chiba R. Neural substrates involved in the control of posture. Adv Robot. 2016;31(1-2):2–23. doi: 10.1080/01691864. 2016.1252690

[90]

Takakusaki K., Takahashi M., Obara K., Chiba R. Neural substrates involved in the control of posture // Adv Robot. 2016. Vol. 31, N 1-2. P. 2–23. doi: 10.1080/01691864. 2016.1252690

[91]

Morasso P, Cherif A, Zenzeri J. Quiet standing: the single inverted pendulum model is not so bad after all. PLoS One. 2019;14(3):e0213870. doi: 10.1371/journal.pone.0213870

[92]

Morasso P., Cherif A., Zenzeri J. Quiet standing: the single inverted pendulum model is not so bad after all // PLoS One. 2019. Vol. 14, N 3. P. e0213870. doi: 10.1371/journal.pone.0213870

[93]

Surgent OJ, Dadalko OI, Pickett KA, Travers BG. Balance and the brain: A review of structural brain correlates of postural balance and balance training in humans. Gait Posture. 2019;(71):245–252. doi: 10.1016/j.gaitpost.2019.05.011

[94]

Surgent O.J., Dadalko O.I., Pickett K.A., Travers B.G. Balance and the brain: A review of structural brain correlates of postural balance and balance training in humans // Gait Posture. 2019. N 71. P. 245–252. doi: 10.1016/j.gaitpost.2019.05.011

[95]

Bolton DA. The role of the cerebral cortex in postural responses to externally induced perturbations. Neurosci Biobehav Rev. 2015;(57):142–155. EDN: VGEUIZ doi: 10.1016/j.neubiorev.2015.08.014

[96]

Bolton D.A. The role of the cerebral cortex in postural responses to externally induced perturbations // Neurosci Biobehav Rev. 2015. N 57. P. 142–155. EDN: VGEUIZ doi: 10.1016/j.neubiorev.2015.08.014

[97]

Edwards AE, Guven O, Furman MD, et al. Electroencephalographic correlates of continuous postural tasks of increasing difficulty. Neuroscience. 2018;(395):35–48. EDN: PUTJGV doi: 10.1016/j.neuroscience.2018.10.040

[98]

Edwards A.E., Guven O., Furman M.D., et al. Electroencephalographic correlates of continuous postural tasks of increasing difficulty // Neuroscience. 2018. N 395. P. 35–48. EDN: PUTJGV doi: 10.1016/j.neuroscience.2018.10.040

[99]

Borella E, Carretti B, Ribo F, De Beni R. Working memory training in older adults: Evidence of transfer and maintenance effects. Psychol Aging. 2010;25(4):767–778. doi: 10.1037/a0020683

[100]

Borella E., Carretti B., Ribo F., De Beni R. Working memory training in older adults: Evidence of transfer and maintenance effects // Psychol Aging. 2010. Vol. 25, N 4. P. 767–778. doi: 10.1037/a0020683

[101]

Levine B, Stuss DT, Winocur G, et al. Cognitive rehabilitation in the elderly: Effects on strategic behaviour in relation to goal management. J Int Neuropsychol Soc. 2007;13(1):143–152. EDN: HWGCIT doi: 10.1017/S1355617707070178

[102]

Levine B., Stuss D.T., Winocur G., et al. Cognitive rehabilitation in the elderly: Effects on strategic behaviour in relation to goal management // J Int Neuropsychol Soc. 2007. Vol. 13, N 1. P. 143–152. EDN: HWGCIT doi: 10.1017/S1355617707070178

[103]

Bherer L, Kramer AF, Peterson MS, et al. Transfer effects in task-set cost and dual-task cost after dual-task training in older and younger adults: Further evidence for cognitive plasticity in attentional control in late adulthood. Exp Aging Res. 2008;34(3): 188–219. doi: 10.1080/03610730802070068

[104]

Bherer L., Kramer A.F., Peterson M.S., et al. Transfer effects in task-set cost and dual-task cost after dual-task training in older and younger adults: Further evidence for cognitive plasticity in attentional control in late adulthood // Exp Aging Res. 2008. Vol. 34, N 3. P. 188–219. doi: 10.1080/03610730802070068

[105]

Rogge AK, Röder B, Zech A, et al. Balance training improves memory and spatial cognition in healthy adults. Sci Rep. 2017;7(1):572. doi: 10.1038/s41598-017-06071-9

[106]

Rogge A.K., Röder B., Zech A., et al. Balance training improves memory and spatial cognition in healthy adults // Sci Rep. 2017. Vol. 7, N 1. Р. 572. doi: 10.1038/s41598-017-06071-9

[107]

Chapman SB, Aslan S, Spence JS, et al. Shorter term aerobic exercise improves brain, cognition, and cardiovascular fitness in aging. Front Aging Neurosci. 2013;(5):75. doi: 10.3389/fnagi.2013.00075

[108]

Chapman S.B., Aslan S., Spence J.S., et al. Shorter term aerobic exercise improves brain, cognition, and cardiovascular fitness in aging // Front Aging Neurosci. 2013. N 5. Р. 75. doi: 10.3389/fnagi.2013.00075

[109]

Young J, Angevare M, Rusted J, Tabet N. Aerobic exercise to improve cognitive function in older people without known cognitive impairment. Cochrane Database Syst Rev. 2015;2015(4):CD005381. doi: 10.1002/14651858.CD005381.pub4

[110]

Young J., Angevare M., Rusted J., Tabet N. Aerobic exercise to improve cognitive function in older people without known cognitive impairment // Cochrane Database Syst Rev. 2015. Vol. 2015, N 4. Р. CD005381. doi: 10.1002/14651858.CD005381.pub4

[111]

Gholami M, Salari Z, Yarahmadi R, et al. Effects of balance training on cognitive function and activities of daily living in older adult patients with heart failure: A randomized controlled trial. Ir J Med Sci. 2023;193(1):111–121. EDN: NDFSDD doi: 10.1007/s11845-023-03436-0

[112]

Gholami M., Salari Z., Yarahmadi R., et al. Effects of balance training on cognitive function and activities of daily living in older adult patients with heart failure: A randomized controlled trial // Ir J Med Sci. 2023. Vol. 193, N 1. Р. 111–121. EDN: NDFSDD doi: 10.1007/s11845-023-03436-0

[113]

Smith PF, Darlington CL, Zheng Y. Move it or lose it: Is stimulation of the vestibular system necessary for normal spatial memory? Hippocampus. 2010;20(1):36–43. doi: 10.1002/hipo.20588

[114]

Smith P.F., Darlington C.L., Zheng Y. Move it or lose it: Is stimulation of the vestibular system necessary for normal spatial memory? // Hippocampus. 2010. Vol. 20, N 1. P. 36–43. doi: 10.1002/hipo.20588

[115]

Angelaki DE, Cullen KE. Vestibular system: The many facets of a multimodal sense. Ann Rev Neurosci. 2008;(31):125–150. doi: 10.1146/annurev.neuro.31.060407.125555

[116]

Angelaki D.E., Cullen K E. Vestibular system: The many facets of a multimodal sense // Annu Rev Neurosci. 2008. N 31. P. 125–150. doi: 10.1146/annurev.neuro.31.060407.125555

[117]

Bahureksa L, Najafi B, Saleh A, et al. The impact of mild cognitive impairment on gait and balance: A systematic review and meta-analysis of studies using instrumented assessment. Gerontology. 2017;63(1):67–83. doi: 10.1159/000445831

[118]

Bahureksa L., Najafi B., Saleh A., et al. The impact of mild cognitive impairment on gait and balance: A systematic review and meta-analysis of studies using instrumented assessment // Gerontology. 2017. Vol. 63, N 1. P. 67–83. doi: 10.1159/000445831

[119]

Livingston G, Huntley J, Sommerlad A, et al. Dementia prevention, intervention, and care: 2020 report of the lancet commission. Lancet. 2020;396(10248):413–446. EDN: VAADCC doi: 10.1016/S0140-6736(20)30367-6

[120]

Livingston G., Huntley J., Sommerlad A., et al. Dementia prevention, intervention, and care: 2020 report of the lancet commission // Lancet. 2020. Vol. 396, N 10248. P. 413–446. EDN: VAADCC doi: 10.1016/S0140-6736(20)30367-6

[121]

Mullard A. FDA approval for Biogen’s aducanumab sparks Alzheimer disease firestorm. Nat Rev Drug Discov. 2021;20(7):496. doi: 10.1038/d41573-021-00099-3

[122]

Mullard A. FDA approval for Biogen’s aducanumab sparks Alzheimer disease firestorm // Nat Rev Drug Discov. 2021. Vol. 20, N 7. P. 496. doi: 10.1038/d41573-021-00099-3

[123]

Leandri M, Cammisuli S, Cammarata S, et al. Balance features in Аlzheimer’s disease and amnestic mild cognitive impairment. J Alzheimer’s Dis. 2009;16(1):113–120. doi: 10.3233/JAD-2009-0928

[124]

Leandri M., Cammisuli S., Cammarata S., et al. Balance features in Аlzheimer’s disease and amnestic mild cognitive impairment // J Alzheimer’s Dis. 2009. Vol. 16, N 1. P. 113–120. doi: 10.3233/JAD-2009-0928

[125]

Alsubaie SF. the postural stability measures most related to aging, physical performance, and cognitive function in healthy adults. BioMed Res Int. 2020;2020:5301534. doi: 10.1155/2020/5301534

[126]

Alsubaie S.F. the postural stability measures most related to aging, physical performance, and cognitive function in healthy adults // BioMed Res Int. 2020. Vol. 2020. P. 5301534. doi: 10.1155/2020/5301534

[127]

Johansson J, Nordström A, Gustafson Y, et al. Increased postural sway during quiet stance as a risk factor for prospective falls in community-dwelling elderly individuals. Age Ageing. 2017;46(6): 964–970. doi: 10.1093/ageing/afx083

[128]

Johansson J., Nordström A., Gustafson Y., et al. Increased postural sway during quiet stance as a risk factor for prospective falls in community-dwelling elderly individuals // Age Ageing. 2017. Vol. 46, N 6. P. 964–970. doi: 10.1093/ageing/afx083

[129]

Lindsay B, Najafi В, Saleh А, et al. The impact of mild cognitive impairment on gait and balance: A systematic review and meta-analysis of studies using instrumented assessment. Gerontology. 2017;63(1):67–83. doi: 10.1159/000445831

[130]

Lindsay B., Najafi В., Saleh А., et al. The impact of mild cognitive impairment on gait and balance: A systematic review and meta-analysis of studies using instrumented assessment // Gerontology. 2017. Vol. 63, N 1. Р. 67–83. doi: 10.1159/000445831

[131]

Quialheiro A, Thaynara M, Zimermann TA, et al. Stabilometric analysis as a cognitive function predictor in adults over the age of 50: A cross-sectional study conducted in a memory clinic. J Bodyw Mov Ther. 2021;(27):640–646. doi: 10.1016/j.jbmt.2021.04.007

[132]

Quialheiro A., Thaynara M., Zimermann T.A., et al. Stabilometric analysis as a cognitive function predictor in adults over the age of 50: A cross-sectional study conducted in a memory clinic // J Bodyw Mov Ther. 2021. N 27. P. 640–646. doi: 10.1016/j.jbmt.2021.04.007

[133]

Kuan YC, Huang LK, Wang YH, et al. Balance and gait performance in older adults with early-stage cognitive impairment. Eur J Phys Rehabil Med. 2021;57(4):560–567. doi: 10.23736/S1973-9087.20.06550-8

[134]

Kuan Y.C., Huang L.K., Wang Y.H., et al. Balance and gait performance in older adults with early-stage cognitive impairment // Eur J Phys Rehabil Med. 2021. Vol. 57, N 4. P. 560–567. doi: 10.23736/S1973-9087.20.06550-8

[135]

Deary IJ, Whalley LJ, Batty GD, Starr JM. Physical fitness and lifetime cognitive change. Neurology. 2006;67(7):1195–2000. doi: 10.1212/01.wnl.0000238520.06958.6a

[136]

Deary I.J., Whalley L.J, Batty G.D., Starr J.M. Physical fitness and lifetime cognitive change // Neurology. 2006. Vol. 67, N 7. P. 1195–2000. doi: 10.1212/01.wnl.0000238520.06958.6a

RIGHTS & PERMISSIONS

Eco-Vector

AI Summary AI Mindmap
PDF

788

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/