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李信金 等: 视听协同的交互式步态干预训练 2021
disease. The Lancet Neurology, 2021, 20(7): 559–572. [doi: 10.1016/S1474-4422(21)00061-2]
[7] de Bie RMA, Clarke CE, Espay AJ, Fox SH, Lang AE. Initiation of pharmacological therapy in Parkinson’s disease: When, why, and
how. The Lancet Neurology, 2020, 19(5): 452–461. [doi: 10.1016/S1474-4422(20)30036-3]
[8] Omberg L, Chaibub Neto E, Perumal TM, Pratap A, Tediarjo A, Adams J, Bloem BR, Bot BM, Elson M, Goldman SM, Kellen MR,
Kieburtz K, Klein A, Little MA, Schneider R, Suver C, Tarolli C, Tanner CM, Trister AD, Wilbanks J, Dorsey ER, Mangravite LM.
Remote smartphone monitoring of Parkinson’s disease and individual response to therapy. Nature Biotechnology, 2022, 40(4): 480–487.
[doi: 10.1038/s41587-021-00974-9]
[9] Cregg JM, Sidhu SK, Leiras R, Kiehn O. Basal ganglia-spinal cord pathway that commands locomotor gait asymmetries in mice. Nature
Neuroscience, 2024, 27(4): 716–727. [doi: 10.1038/s41593-024-01569-8]
[10] Mirelman A, Bonato P, Camicioli R, Ellis TD, Giladi N, Hamilton JL, Hass CJ, Hausdorff JM, Pelosin E, Almeida QJ. Gait impairments
in Parkinson’s disease. The Lancet Neurology, 2019, 18(7): 697–708. [doi: 10.1016/S1474-4422(19)30044-4]
[11] Cabreira V, Soares-da-Silva P, Massano J. Contemporary options for the management of motor complications in Parkinson’s disease:
Updated clinical review. Drugs, 2019, 79(6): 593–608. [doi: 10.1007/s40265-019-01098-w]
[12] Gao C, Liu J, Tan YY, Chen SD. Freezing of gait in Parkinson’s disease: Pathophysiology, risk factors and treatments. Translational
Neurodegeneration, 2020, 9(1): 12. [doi: 10.1186/s40035-020-00191-5]
[13] Azulay JP, Mesure S, Amblard B, Blin O, Sangla I, Pouget J. Visual control of locomotion in Parkinson’s disease. Brain, 1999, 122(1):
111–120. [doi: 10.1093/brain/122.1.111]
[14] Baugher B, Szewczyk N, Liao J. Augmented reality cueing for freezing of gait: Reviewing an emerging therapy. Parkinsonism & Related
Disorders, 2023, 116: 105834. [doi: 10.1016/j.parkreldis.2023.105834]
[15] Braunlich K, Seger CA, Jentink KG, Buard I, Kluger BM, Thaut MH. Rhythmic auditory cues shape neural network recruitment in
Parkinson’s disease during repetitive motor behavior. The European Journal of Neuroscience, 2019, 49(6): 849–858. [doi: 10.1111/ejn.
14227]
[16] Sweeney D, ÓLaighin G, Richardson M, Meskell P, Rosenthal L, McGeough A, Cunnington AL, Quinlan LR. Effect of auditory, visual
and somatosensory cueing strategies on on-state freezing of gait in Parkinson’s disease. Parkinsonism & Related Disorders, 2020, 77:
1–4. [doi: 10.1016/j.parkreldis.2020.06.010]
[17] Anguera JA, Boccanfuso J, Rintoul JL, Al-Hashimi O, Faraji F, Janowich J, Kong E, Larraburo Y, Rolle C, Johnston E, Gazzaley A.
Video game training enhances cognitive control in older adults. Nature, 2013, 501(7465): 97–101. [doi: 10.1038/nature12486]
[18] Kaminsky TA, Dudgeon BJ, Billingsley FF, Mitchell PH, Weghorst SJ. Virtual cues and functional mobility of people with Parkinson’s
disease: A single-subject pilot study. Journal of Rehabilitation Research and Development, 2007, 44(3): 437–448. [doi: 10.1682/jrrd.2006.
09.0109]
[19] Janssen S, Bolte B, Nonnekes J, Bittner M, Bloem BR, Heida T, Zhao Y, van Wezel RJA. Usability of three-dimensional augmented
visual cues delivered by smart glasses on (freezing of) gait in Parkinson’s disease. Frontiers in Neurology, 2017, 8: 279. [doi: 10.3389/
fneur.2017.00279]
[20] Thaut MH, McIntosh GC, Hoemberg V. Neurobiological foundations of neurologic music therapy: Rhythmic entrainment and the motor
system. Frontiers in Psychology, 2015, 5: 1185. [doi: 10.3389/fpsyg.2014.01185]
[21] Qiang W, Du Y, Li XJ, Fan XM, Su W, Chen HB, Sun W, Tian F. Auxiliary diagnosis for Parkinson’s disease using multimodel feature
analysis. Ruan Jian Xue Bao/Journal of Software, 2024, 35(5): 2192–2207 (in Chinese with English abstract). http://www.jos.org.cn/1000-
9825/7028.htm [doi: 10.13328/j.cnki.jos.007028]
[22] Buated W, Sriyudthsak M, Sribunruangrit N, Bhidayasiri R. A low-cost intervention for improving gait in Parkinson’s disease patients: A
cane providing visual cues. European Geriatric Medicine, 2012, 3(2): 126–130. [doi: 10.1016/j.eurger.2012.01.006]
[23] Ahn D, Chung H, Lee HW, Kang K, Ko PW, Kim NS, Park T. Smart gait-aid glasses for Parkinson’s disease patients. IEEE Trans. on
Biomedical Engineering, 2017, 64(10): 2394–2402. [doi: 10.1109/TBME.2017.2655344]
[24] Awad LN, Jayaraman A, Nolan KJ, Lewek MD, Bonato P, Newman M, Putrino D, Raghavan P, Pohlig RT, Harris BA, Parker DA,
Taylor SR. Efficacy and safety of using auditory-motor entrainment to improve walking after stroke: A multi-site randomized controlled
TM
trial of InTandem . Nature Communications, 2024, 15(1): 1081. [doi: 10.1038/s41467-024-44791-5]
[25] Green AM, Angelaki DE. Multisensory integration: Resolving sensory ambiguities to build novel representations. Current Opinion in
Neurobiology, 2010, 20(3): 353–360. [doi: 10.1016/j.conb.2010.04.009]
[26] Botta F, Santangelo V, Raffone A, Sanabria D, Lupiáñez J, Belardinelli MO. Multisensory integration affects visuo-spatial working
memory. Journal of Experimental Psychology: Human Perception and Performance, 2011, 37(4): 1099–1109. [doi: 10.1037/a0023513]
[27] Stein BE, Stanford TR. Multisensory integration: Current issues from the perspective of the single neuron. Nature Reviews Neuroscience,

