Basic & Clinical Medicine ›› 2022, Vol. 42 ›› Issue (11): 1804-1808.doi: 10.16352/j.issn.1001-6325.2022.11.1804
• Mini Reviews • Previous Articles Next Articles
LIU Li-na1, CHENG Yin-long2, DING Meng1, LI Zhe1, LIU Xiao-yu1*
Received:
2022-07-26
Revised:
2022-09-21
Online:
2022-11-05
Published:
2022-11-01
Contact:
* biolxy@163.com
CLC Number:
LIU Li-na, CHENG Yin-long, DING Meng, LI Zhe, LIU Xiao-yu. Research progress on the effect of acoustic stimulation on the neuropsychiatric system[J]. Basic & Clinical Medicine, 2022, 42(11): 1804-1808.
[1] | Feng K, Shen CY, Ma, XY, et al. Effects of music therapy on major depressive disorder: a study of prefrontal hemodynamic functions using fNIRS[J]. Psychiatry Res, 2019, 275: 86-93. |
[2] | Li WJ, Yu H, Yang JM, et al. Anxiolytic effect of music exposure on BDNFMet/Met transgenic mice[J]. Brain Res, 2010, 1347: 71-79. |
[3] | Ertekin Pinar S Rn P, Tel H Rn P. The effect of music on auditory hallucination and quality of life in Schizo-phrenic patients: a randomised controlled trial[J]. Issues Ment Health Nurs, 2019, 40: 50-57. |
[4] | Yao Y, He H, Duan M, et al. The effects of music intervention on pallidum-DMN circuit of Schizophrenia[J]. Biomed Res Int, 2020, 2020: 4107065.doi:10.1155/2020/4107065. |
[5] | Gomez-Gallego M, Gomez-Gallego JC, Gallego-Mellado M, et al. Comparative efficacy of active group music intervention versus group music listening in Alzheimer's disease[J]. Int J Environ Res Public Health, 2021, 18: 8067.doi:10.3390/ijerph18158067. |
[6] | Buard I, Dewispelaere WB, Thaut M, et al. Preliminary neurophysiological evidence of altered cortical activity and connectivity with neurologic music therapy in Parkinson's disease[J]. Front Neurosci, 2019, 13: 105.doi:10.3389/fnins.2019.00105. |
[7] | Chen W, Zheng J, Shen G, et al. Music therapy alleviates motor dysfunction in rats with focal cerebral ischemia-reperfusion injury by regulating BDNF expression[J]. Front Neurol, 2021, 12: 666311.doi:10.3389/fneur.2021.666311. |
[8] | Rafiee M, Patel K, Groppe DM, et al. Daily listening to Mozart reduces seizures in individuals with epilepsy: A randomized control study[J]. Epilepsia Open, 2020, 5: 285-294. |
[9] | Soderlund GBW, Asberg Johnels J, Rothen B, et al. Sensory white noise improves reading skills and memory recall in children with reading disability[J]. Brain Behav, 2021, 11: e02114.doi:10.1002/brb3.2114. |
[10] | Chen IC, Chan HY, Lin KC, et al. Listening to white noise improved verbal working memory in children with attention-deficit/hyperactivity disorder: a pilot study[J]. Int J Environ Res Public Health, 2022, 19: 7283.doi:10.3390/ijerph19127283. |
[11] | Rausch VH, Bauch EM, Bunzeck N. White noise improves learning by modulating activity in dopaminergic midbrain regions and right superior temporal sulcus[J]. J Cogn Neurosci, 2014, 26: 1469-1480. |
[12] | Ebben MR, Yan P, Krieger AC. The effects of white noise on sleep and duration in individuals living in a high noise environment in New York City[J]. Sleep Med, 2021, 83: 256-259. |
[13] | Martorell AJ, Paulson AL, Suk HJ, et al. Multi-sensory gamma stimulation ameliorates Alzheimer's-associated pathology and improves cognition[J]. Cell, 2019, 177: 256-271. |
[14] | He Q, Colon-Motas KM, Pybus AF, et al. A feasibility trial of gamma sensory flicker for patients with prodromal Alzheimer's disease[J]. Alzheimers Dement (N Y), 2021, 7: e12178.doi:10.1002/frc2.12178. |
[15] | Buxton RT, Pearson AL, Allou C, et al. A synthesis of health benefits of natural sounds and their distribution in national parks[J]. Proc Natl Acad Sci U S A, 2021, 118: e2013097118.doi:10.1073/pnas.2013097118. |
[16] | Generaal E, Timmermans EJ, Dekkers JEC, et al. Not urbanization level but socioeconomic, physical and social neighbourhood characteristics are associated with presence and severity of depressive and anxiety disorders[J]. Psychol Med, 2019, 49: 149-161. |
[17] | Smith MG, Ogren M, Thorsson P, et al. A laboratory study on the effects of wind turbine noise on sleep: results of the polysomnographic WiTNES study[J]. Sleep, 2020, 43: zsaa046.doi:10.1093/sleep/zsaa046. |
[18] | Foraster M, Esnaola M, Lopez-Vicente M, et al. Expo-sure to road traffic noise and cognitive development in schoolchildren in Barcelona, Spain: a population-based cohort study[J]. PLoS Med, 2022, 19: e1004001.doi:10.1371/journal.pmed1004001. |
[19] | Weuve J, D'Souza J, Beck T, et al. Long-term community noise exposure in relation to dementia, cognition, and cognitive decline in older adults[J]. Alzheimers Dement, 2021, 17: 525-533. |
[20] | Zeydabadi A, Askari J, Vakili M, et al. The effect of industrial noise exposure on attention, reaction time, and memory[J]. Int Arch Occup Environ Health, 2019, 92: 111-116. |
[21] | Li Q, Li H, Yao X, et al. Stress response and hearing loss differentially contribute to dynamic alterations in hippocampal neurogenesis and microglial reactivity in mice exposed to acute noise exposure[J]. Front Neurosci, 2021, 15: 749925.doi:10.3389/fnins.2021.749925. |
[22] | Sun G, Lin X, Yi X, et al. Aircraft noise, like heat stress, causes cognitive impairments via similar mechani-sms in male mice[J]. Chemosphere, 2021, 274: 129739.doi:10.1016/j.chemosphere.2021.129739. |
[23] | Zhang Y, Zhu M, Sun Y, et al. Environmental noise degrades hippocampus-related learning and memory[J]. Proc Natl Acad Sci U S A, 2021, 118: e2017841117.doi:10.1073/pnas.201784-1117. |
[24] | Paciello F, Rinaudo M, Longo V, et al. Auditory sensory deprivation induced by noise exposure exacerbates cogni-tive decline in a mouse model of Alzheimer's disease[J]. Elife, 2021, 10: e70908.doi:10.7554/eLife.70908. |
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