Literature DB >> 29667190

Age-related changes in late I-waves influence motor cortex plasticity induction in older adults.

George M Opie1, John Cirillo2,3, John G Semmler1.   

Abstract

KEY POINTS: The response to neuroplasticity interventions using transcranial magnetic stimulation (TMS) is reduced in older adults, which may be due, in part, to age-related alterations in interneuronal (I-wave) circuitry. The current study investigated age-related changes in interneuronal characteristics and whether they influence motor cortical plasticity in older adults. While I-wave recruitment was unaffected by age, there was a shift in the temporal characteristics of the late, but not the early I-waves. Using I-wave periodicity repetitive TMS (iTMS), we showed that these differences in I-wave characteristics influence the induction of cortical plasticity in older adults. ABSTRACT: Previous research shows that neuroplasticity assessed using transcranial magnetic stimulation (TMS) is reduced in older adults. While this deficit is often assumed to represent altered synaptic modification processes, age-related changes in the interneuronal circuits activated by TMS may also contribute. Here we assessed age-related differences in the characteristics of the corticospinal indirect (I) waves and how they influence plasticity induction in primary motor cortex. Twenty young (23.7 ± 3.4 years) and 19 older adults (70.6 ± 6.0 years) participated in these studies. I-wave recruitment was assessed by changing the direction of the current used to activate the motor cortex, whereas short-interval intracortical facilitation (SICF) was recorded to assess facilitatory I-wave interactions. In a separate study, I-wave periodicity TMS (iTMS) was used to examine the effect of I-wave latency on motor cortex plasticity. Data from the motor-evoked potential (MEP) onset latency produced using different coil orientations suggested that there were no age-related differences in preferential I-wave recruitment (P = 0.6). However, older adults demonstrated significant reductions in MEP facilitation at all 3 SICF peaks (all P values < 0.05) and a delayed latency of the second and third SICF peaks (all P values < 0.05). Using I-wave intervals that were optimal for young and older adults, these changes in the late I-waves were shown to influence the plasticity response in older adults after iTMS. These findings suggest that temporal characteristics are delayed for the late I-waves in older adults, and that optimising TMS interventions based on I-wave characteristics may improve the plasticity response in older adults.
© 2018 The Authors. The Journal of Physiology © 2018 The Physiological Society.

Keywords:  ageing; corticospinal descending volley; transcranial magnetic stimulation

Mesh:

Year:  2018        PMID: 29667190      PMCID: PMC6023828          DOI: 10.1113/JP274641

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  58 in total

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3.  Priming theta burst stimulation enhances motor cortex plasticity in young but not old adults.

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Journal:  Brain Stimul       Date:  2017-01-04       Impact factor: 8.955

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5.  Effects of aging on the human motor cortical plasticity studied by paired associative stimulation.

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6.  Corticomotor plasticity and learning of a ballistic thumb training task are diminished in older adults.

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Review 2.  Age-related changes in motor cortex plasticity assessed with non-invasive brain stimulation: an update and new perspectives.

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3.  Cerebellar transcranial direct current stimulation disrupts neuroplasticity of intracortical motor circuits.

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Review 4.  Contribution of TMS and TMS-EEG to the Understanding of Mechanisms Underlying Physiological Brain Aging.

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Journal:  Brain Sci       Date:  2021-03-22

5.  Modulation of Motor Cortex Plasticity by Repetitive Paired-Pulse TMS at Late I-Wave Intervals Is Influenced by Intracortical Excitability.

Authors:  George M Opie; Ryoki Sasaki; Brodie J Hand; John G Semmler
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6.  I-waves in motor cortex revisited.

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