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2008, 9(4): 255–266. [doi: 10.1038/nrn2331]
[28] Bryant MS, Rintala DH, Lai EC, Protas EJ. A pilot study: Influence of visual cue color on freezing of gait in persons with Parkinson’s
disease. Disability and Rehabilitation: Assistive Technology, 2010, 5(6): 456–461. [doi: 10.3109/17483107.2010.495815]
[29] Donovan S, Lim C, Diaz N, Browner N, Rose P, Sudarsky LR, Tarsy D, Fahn S, Simon DK. Laserlight cues for gait freezing in Parkinson’s
disease: An open-label study. Parkinsonism & Related Disorders, 2011, 17(4): 240–245. [doi: 10.1016/j.parkreldis.2010.08.010]
[30] Zhao Y, Nonnekes J, Storcken EJM, Janssen S, van Wegen EEH, Bloem BR, Dorresteijn LDA, van Vugt JPP, Heida T, van Wezel RJA.
Feasibility of external rhythmic cueing with the Google Glass for improving gait in people with Parkinson’s disease. Journal of
Neurology, 2016, 263(6): 1156–1165. [doi: 10.1007/s00415-016-8115-2]
[31] Tang L, Gao C, Wang D, Liu A, Chen S, Gu D. Rhythmic laser cue is beneficial for improving gait performance and reducing freezing of
turning in Parkinson’s disease patients with freezing of gait. Int’l Journal of Clinical and Experimental Medicine, 2017, 10(12):
16802–16808.
[32] Barthel C, Nonnekes J, van Helvert M, Haan R, Janssen A, Delval A, Weerdesteyn V, Debû B, van Wezel R, Bloem BR, Ferraye MU.
The laser shoes: A new ambulatory device to alleviate freezing of gait in Parkinson disease. Neurology, 2018, 90(2): e164–e171. [doi: 10.
1212/WNL.0000000000004795]
[33] García-Casares N, Martín-Colom JE, García-Arnés JA. Music therapy in Parkinson’s disease. Journal of the American Medical Directors
Association, 2018, 19(12): 1054–1062. [doi: 10.1016/j.jamda.2018.09.025]
[34] Raglio A. Music therapy interventions in Parkinson’s disease: The state-of-the-art. Frontiers in Neurology, 2015, 6: 185. [doi: 10.3389/
fneur.2015.00185]
[35] Cancela J, Moreno EM, Arredondo MT, Bonato P. Designing auditory cues for Parkinson’s disease gait rehabilitation. In: Proc. of the
36th Annual Int’l Conf. of the IEEE Engineering in Medicine and Biology Society. Chicago: IEEE, 2014. 5852–5855.
[36] Gondo E, Mikawa S, Hayashi A. Using a portable gait rhythmogram to examine the effect of music therapy on Parkinson’s disease-
related gait disturbance. Sensors, 2021, 21(24): 8321. [doi: 10.3390/s21248321]
[37] Harrison EC, McNeely ME, Earhart GM. The feasibility of singing to improve gait in Parkinson disease. Gait & Posture, 2017, 53:
224–229. [doi: 10.1016/j.gaitpost.2017.02.008]
TM
[38] Lee A, Hellmers N, Vo M, Wang F, Popa P, Barkan S, Patel D, Campbell C, Henchcliffe C, Sarva H. Can Google Glass technology
improve freezing of gait in Parkinsonism? A pilot study. Disability and Rehabilitation: Assistive Technology, 2023, 18(3): 327–332. [doi:
10.1080/17483107.2020.1849433]
[39] Shahraki M, Sohrabi M, Taheri Torbati HR, Nikkhah K, NaeimiKia M. Effect of rhythmic auditory stimulation on gait kinematic
parameters of patients with multiple sclerosis. Journal of Medicine and Life, 2017, 10(1): 33–37.
[40] Mainka S, Wissel J, Völler H, Evers S. The use of rhythmic auditory stimulation to optimize treadmill training for stroke patients: A
randomized controlled trial. Frontiers in Neurology, 2018, 9: 755. [doi: 10.3389/fneur.2018.00755]
[41] Suh JH, Han SJ, Jeon SY, Kim HJ, Lee JE, Yoon TS, Chong HJ. Effect of rhythmic auditory stimulation on gait and balance in
hemiplegic stroke patients. NeuroRehabilitation, 2014, 34(1): 193–199. [doi: 10.3233/NRE-131008]
[42] Thaut MH, Rice RR, Braun Janzen T, Hurt-Thaut CP, McIntosh GC. Rhythmic auditory stimulation for reduction of falls in Parkinson’s
disease: A randomized controlled study. Clinical Rehabilitation, 2019, 33(1): 34–43. [doi: 10.1177/0269215518788615]
[43] Grahn JA. The role of the basal ganglia in beat perception: Neuroimaging and neuropsychological investigations. Annals of the New York
Academy of Sciences, 2009, 1169(1): 35–45. [doi: 10.1111/j.1749-6632.2009.04553.x]
[44] Lesicko AMH, Geffen MN. Diverse functions of the auditory cortico-collicular pathway. Hearing Research, 2022, 425: 108488. [doi: 10.
1016/j.heares.2022.108488]
[45] Zaatar MT, Alhakim K, Enayeh M, Tamer R. The transformative power of music: Insights into neuroplasticity, health, and disease. Brain,
Behavior, & Immunity—Health, 2024, 35: 100716. [doi: 10.1016/j.bbih.2023.100716]
[46] O’Shea IM, Popal HS, Olson IR, Murty VP, Smith DV. Distinct alterations in cerebellar connectivity with substantia nigra and ventral
tegmental area in Parkinson’s disease. Scientific Reports, 2022, 12(1): 3289. [doi: 10.1038/s41598-022-07020-x]
[47] Sen S, Kawaguchi A, Truong Y, Lewis MM, Huang X. Dynamic changes in cerebello-thalamo-cortical motor circuitry during progression
of Parkinson’s disease. Neuroscience, 2010, 166(2): 712–719. [doi: 10.1016/j.neuroscience.2009.12.036]
[48] Devlin K, Alshaikh JT, Pantelyat A. Music therapy and music-based interventions for movement disorders. Current Neurology and
Neuroscience Reports, 2019, 19(11): 83. [doi: 10.1007/s11910-019-1005-0]
[49] Colverson A, Barsoum S, Cohen R, Williamson J. Rhythmic musical activities may strengthen connectivity between brain networks
associated with aging-related deficits in timing and executive functions. Experimental Gerontology, 2024, 186: 112354. [doi: 10.1016/j.
exger.2023.112354]

