Park DC, Reuter-Lorenz P. The adaptive brain: Aging and neurocognitive scaffolding. Annu Rev Psychol 2009, 60: 173–196.
Article PubMed PubMed Central Google Scholar
Koen JD, Rugg MD. Neural dedifferentiation in the aging brain. Trends Cogn Sci 2019, 23: 547–559.
Article PubMed PubMed Central Google Scholar
Grady C. The cognitive neuroscience of ageing. Nat Rev Neurosci 2012, 13: 491–505.
Article CAS PubMed PubMed Central Google Scholar
Jin M, Cai SQ. Mechanisms underlying brain aging under normal and pathological conditions. Neurosci Bull 2023, 39: 303–314.
Cabeza R. Hemispheric asymmetry reduction in older adults: The HAROLD model. Psychol Aging 2002, 17: 85–100.
Reuter-Lorenz PA, Park DC. How does it STAC up? Revisiting the scaffolding theory of aging and cognition. Neuropsychol Rev 2014, 24: 355–370.
Article PubMed PubMed Central Google Scholar
Alain C, Zendel BR, Hutka S, Bidelman GM. Turning down the noise: The benefit of musical training on the aging auditory brain. Hear Res 2014, 308: 162–173.
Zendel BR, Alain C. Musicians experience less age-related decline in central auditory processing. Psychol Aging 2012, 27: 410–417.
Dubinsky E, Wood EA, Nespoli G, Russo FA. Short-term choir singing supports speech-in-noise perception and neural pitch strength in older adults with age-related hearing loss. Front Neurosci 2019, 13: 1153.
Article PubMed PubMed Central Google Scholar
Zhang L, Fu X, Luo D, Xing L, Du Y. Musical experience offsets age-related decline in understanding speech-in-noise: Type of training does not matter, working memory is the key. Ear Hear 2021, 42: 258–270.
Zhang L, Wang X, Alain C, Du Y. Successful aging of musicians: Preservation of sensorimotor regions aids audiovisual speech-in-noise perception. Sci Adv 2023, 9: eadg7056.
Article PubMed PubMed Central Google Scholar
Yeend I, Beach EF, Sharma M, Dillon H. The effects of noise exposure and musical training on suprathreshold auditory processing and speech perception in noise. Hear Res 2017, 353: 224–236.
Boebinger D, Evans S, Rosen S, Lima CF, Manly T, Scott SK. Musicians and non-musicians are equally adept at perceiving masked speech. J Acoust Soc Am 2015, 137: 378–387.
Cabeza R, Albert M, Belleville S, Craik FIM, Duarte A, Grady CL. Maintenance, reserve and compensation: The cognitive neuroscience of healthy ageing. Nat Rev Neurosci 2018, 19: 701–710.
Article CAS PubMed PubMed Central Google Scholar
Erb J, Obleser J. Upregulation of cognitive control networks in older adults’ speech comprehension. Front Syst Neurosci 2013, 7: 116.
Article PubMed PubMed Central Google Scholar
Emch M, von Bastian CC, Koch K. Neural correlates of verbal working memory: An fMRI meta-analysis. Front Hum Neurosci 2019, 13: 180.
Article PubMed PubMed Central Google Scholar
Vaden KI Jr, Kuchinsky SE, Ahlstrom JB, Dubno JR, Eckert MA. Cortical activity predicts which older adults recognize speech in noise and when. J Neurosci 2015, 35: 3929–3937.
Article CAS PubMed PubMed Central Google Scholar
Wong PCM, Jin JX, Gunasekera GM, Abel R, Lee ER, Dhar S. Aging and cortical mechanisms of speech perception in noise. Neuropsychologia 2009, 47: 693–703.
Du Y, Buchsbaum BR, Grady CL, Alain C. Increased activity in frontal motor cortex compensates impaired speech perception in older adults. Nat Commun 2016, 7: 12241.
Article CAS PubMed PubMed Central Google Scholar
Reuter-Lorenz PA, Stanczak L, Miller AC. Neural recruitment and cognitive aging: Two hemispheres are better than one, especially as you age. Psychol Sci 1999, 10: 494–500.
Bellis TJ, Nicol T, Kraus N. Aging affects hemispheric asymmetry in the neural representation of speech sounds. J Neurosci 2000, 20: 791–797.
Article CAS PubMed PubMed Central Google Scholar
Cabeza R, Anderson ND, Locantore JK, McIntosh AR. Aging gracefully: Compensatory brain activity in high-performing older adults. NeuroImage 2002, 17: 1394–1402.
Müller LD, Guhn A, Zeller JBM, Biehl SC, Dresler T, Hahn T, et al. Neural correlates of a standardized version of the trail making test in young and elderly adults: A functional near-infrared spectroscopy study. Neuropsychologia 2014, 56: 271–279.
Nielson KA, Langenecker SA, Garavan H. Differences in the functional neuroanatomy of inhibitory control across the adult life span. Psychol Aging 2002, 17: 56–71.
Agcaoglu O, Miller R, Mayer AR, Hugdahl K, Calhoun VD. Lateralization of resting state networks and relationship to age and gender. NeuroImage 2015, 104: 310–325.
Article CAS PubMed Google Scholar
Li X, Zatorre RJ, Du Y. The microstructural plasticity of the arcuate Fasciculus undergirds improved speech in noise perception in musicians. Cereb Cortex 2021, 31: 3975–3985.
Article PubMed PubMed Central Google Scholar
Du Y, Zatorre RJ. Musical training sharpens and bonds ears and tongue to hear speech better. Proc Natl Acad Sci USA 2017, 114: 13579–13584.
Article CAS PubMed PubMed Central Google Scholar
Herholz SC, Zatorre RJ. Musical training as a framework for brain plasticity: Behavior, function, and structure. Neuron 2012, 76: 486–502.
Article CAS PubMed Google Scholar
Zendel BR, West GL, Belleville S, Peretz I. Musical training improves the ability to understand speech-in-noise in older adults. Neurobiol Aging 2019, 81: 102–115.
Parbery-Clark A, Anderson S, Hittner E, Kraus N. Musical experience offsets age-related delays in neural timing. Neurobiol Aging 2012, 33(1483): e1-1483.e4.
Luo C, Tu S, Peng Y, Gao S, Li J, Dong L, et al. Long-term effects of musical training and functional plasticity in salience system. Neural Plast 2014, 2014: 180138.
Article PubMed PubMed Central Google Scholar
Liu H, Stufflebeam SM, Sepulcre J, Hedden T, Buckner RL. Evidence from intrinsic activity that asymmetry of the human brain is controlled by multiple factors. Proc Natl Acad Sci U S A 2009, 106: 20499–20503.
Article CAS PubMed PubMed Central Google Scholar
Leipold S, Klein C, Jäncke L. Musical expertise shapes functional and structural brain networks independent of absolute pitch ability. J Neurosci 2021, 41: 2496–2511.
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