[1] |
YANKNER B A, LU T, LOERCH P. The aging brain[J]. Annu Rev Pathol, 2008, 3: 41-66.
doi: 10.1146/pathmechdis.2008.3.issue-1
|
[2] |
保莎莎, 朱钰, 杨露, 等. 多模态MRI技术评估脑老化及脑老化与脑疾病的关系研究进展[J]. 中国介入影像与治疗学, 2022, 19(2): 115-118.
|
|
BAO S S, ZHU Y, YANG L, et al. Research advances of multimodal MRI in evaluation on brain aging and the relationship of brain aging and brain diseases[J]. Chin J Interven Imag Ther, 2022, 19(2): 115-118.
|
[3] |
RANA M, VARAN A Q, DAVOUDI A, et al. Real-time fMRI in neuroscience research and its use in studying the aging brain[J]. Front Aging Neurosci, 2016, 8: 239.
pmid: 27803662
|
[4] |
鲁朝玉, 谢军, 余其贵. 人体平衡能力检测与衰弱指数在老年患者跌倒风险评估中的应用[J]. 当代临床医刊, 2022, 35(2): 23-24.
|
|
LU C Y, XIE J, YU Q G. Application of human balance ability test and frailty index in fall risk assessment for elders[J]. Med J Present Clin, 2022, 35(2): 23-24.
|
[5] |
DŁUGOSZ-BOŚ M, FILAR-MIERZWA K, STAWARZ R, et al. Effect of three months pilates training on balance and fall risk in older women[J]. Int J Environ Res Public Health, 2021, 18(7): 3663.
doi: 10.3390/ijerph18073663
|
[6] |
LARIVIÈRE S, XIFRA-PORXAS A, KASSINOPOULOS M, et al. Functional and effective reorganization of the aging brain during unimanual and bimanual hand movements[J]. Hum Brain Mapp, 2019, 40(10): 3027-3040.
doi: 10.1002/hbm.24578
pmid: 30866155
|
[7] |
SUTKOWY P, WOŹNIAK A, MILA-KIERZENKOWSKA C, et al. Physical activity vs. redox balance in the brain: brain health, aging and diseases[J]. Antioxidants (Basel, Switzerland), 2021, 11(1): 95.
|
[8] |
SURGENT O J, DADALKO O I, PICKETT K A, et al. Balance and the brain: a review of structural brain correlates of postural balance and balance training in humans[J]. Gait Posture, 2019, 71(2): 45-52.
|
[9] |
范晨雨, 李浩正, 谢鸿宇, 等. 基于功能性近红外光谱技术的健康青年人、老年人皮层脑网络静息态功能连接的特征研究[J]. 中国康复医学杂志, 2021, 36(8): 931-937, 942.
|
|
FAN C Y, LI H Z, XIE H Y, et al. Healthy young and old adults functional connectivity among cortical networks: a resting-state functional near-infrared spectroscopy study[J]. Chin J Rehabil Med, 2021, 36(8): 931-937, 942.
|
[10] |
CHEN W L, WAGNER J, HEUGEL N, et al. Functional near-infrared spectroscopy and its clinical application in the field of neuroscience: advances and future directions[J]. Front Neurosci, 2020, 14(7): 24.
doi: 10.3389/fnins.2020.00024
|
[11] |
PELICIONI P H S, LORD S R, STURNIEKS D L, et al. Cognitive and motor cortical activity during cognitively demanding stepping tasks in older people at low and high risk of falling[J]. Front Med (Lausanne), 2021, 8(5): 54231.
|
[12] |
DANS P W, FOGLIA S D, NELSON A J. Data processing in functional near-infrared spectroscopy (fNIRS) motor control research[J]. Brain Sci, 2021, 11(5): 606.
doi: 10.3390/brainsci11050606
|
[13] |
ZHAO W, HUI M, ZHANG X, et al. The relationship between motor coordination and imitation: an fNIRS study[J]. Brain Sci, 2021, 11(8): 1052.
doi: 10.3390/brainsci11081052
|
[14] |
QIU Y, ZHENG Y, LIU Y, et al. Synergistic immediate cortical activation on mirror visual feedback combined with a soft robotic bilateral hand rehabilitation system: a functional near infrared spectroscopy study[J]. Front Neurosci, 2022, 16(8): 07045.
|
[15] |
ST GEORGE R J, HINDER M R, PURI R, et al. Functional near-infrared spectroscopy reveals the compensatory potential of pre-frontal cortical activity for standing balance in young and older adults[J]. Neuroscience, 2021, 452(2): 8-18.
|
[16] |
林强, 郑煜欣, 廖婉晨, 等. 脑卒中患者静态平衡的足底压力分析[J]. 中国康复理论与实践, 2021, 27(3): 290-296.
|
|
LIN Q, ZHENG Y X, LIAO W C, et al. Static balance function in stroke patients: a plantar pressure analysis[J]. Chin J Rehabil Theory Pract, 2021, 27(3): 290-296.
|
[17] |
ZHANG N, YUAN X, LI Q, et al. The effects of age on brain cortical activation and functional connectivity during video game-based finger-to-thumb opposition movement: a functional near-infrared spectroscopy study[J]. Neurosci Lett, 2021, 746: 135668.
doi: 10.1016/j.neulet.2021.135668
|
[18] |
BLINKOUSKAYA Y, CAÇOILO A, GOLLAMUDI T, et al. Brain aging mechanisms with mechanical manifestations[J]. Mech Age Dev, 2021, 200: 111575.
doi: 10.1016/j.mad.2021.111575
|
[19] |
AMBROSE A F, PAUL G, HAUSDORFF J M. Risk factors for falls among older adults: a review of the literature[J]. Maturitas, 2013, 75(1): 51-61.
doi: 10.1016/j.maturitas.2013.02.009
pmid: 23523272
|
[20] |
ARON L, ZULLO J, YANKNER B A. The adaptive aging brain[J]. Curr Opin Neurobiol, 2022, 72(5): 91-100.
doi: 10.1016/j.conb.2021.09.009
|
[21] |
TABARA Y, OKADA Y, OHARA M, et al. Association of postural instability with asymptomatic cerebrovascular damage and cognitive decline: the Japan Shimanami health promoting program study[J]. Stroke, 2015, 46(1): 16-22.
doi: 10.1161/STROKEAHA.114.006704
pmid: 25523051
|
[22] |
SEIDEL O, CARIUS D, KENVILLE R, et al. Motor learning in a complex balance task and associated neuroplasticity: a comparison between endurance athletes and nonathletes[J]. J Neurophysiol, 2017, 118(3): 1849-1860.
doi: 10.1152/jn.00419.2017
pmid: 28659467
|
[23] |
SURGENT O J, DADALKO O I, PICKETT K A, et al. Balance and the brain: a review of structural brain correlates of postural balance and balance training in humans[J]. Gait Posture, 2019, 71(2): 45-52.
|
[24] |
TEO W P, GOODWILL A M, HENDY A M, et al. Sensory manipulation results in increased dorsolateral prefrontal cortex activation during static postural balance in sedentary older adults: an fNIRS study[J]. Brain Behav, 2018, 8(10): e01109.
doi: 10.1002/brb3.2018.8.issue-10
|
[25] |
FUJITA H, KASUBUCHI K, WAKATA S, et al. Role of the frontal cortex in standing postural sway tasks while dual-tasking: a functional near-infrared spectroscopy study examining working memory capacity[J]. Biomed Res Int, 2016, 2016: 7053867.
|
[26] |
LEHMANN N, KUHN Y A, KELLER M, et al. Brain activation during active balancing and its behavioral relevance in younger and older adults: a functional near-infrared spectroscopy (fNIRS) study[J]. Front Aging Neurosci, 2022, 14(8): 28474.
|