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Chembila Valappil, A.

Publications and source records attributed to Chembila Valappil, A..

2 recordsLinked to original sources

Rate of force development is correlated with corticospinal excitability during explosive voluntary contractions.

ObjectiveTo investigate the relationship between rate of torque development (RTD) and corticospinal excitability (denoted by motor-evoked potential; MEP) during explosive voluntary contractions. Also, to assess differences in MEP and silent period duration between different phases of explosive contraction and at maximum voluntary contraction (MVC) plateau. MethodsIn 14 adults, quadriceps muscle MEP and silent period duration were measured at [~]45 (early), [~]115 (middle), and [~]190 ms (late) from EMG onset during knee-extensor isometric explosive contractions, and at MVC plateau with superimposed transcranial magnetic stimulation (TMS). RTD was measured immediately prior to early-phase MEP during the same contractions, and these two variables were correlated across separate contractions, within participants, via repeated measures correlation (RmCorr). RTD was also measured in explosive contractions without TMS over early-, middle-, and late-phases and correlated to MEP averaged across the corresponding and preceding phases, via Pearsons r correlations, assessing relationships across participants. MEP and silent period duration were compared (ANOVA) between the different phases and at MVC plateau. ResultsMEP and RTD were correlated across separate contractions within participants (RmCorr r=0.43), and in the middle phase across participants (Pearsons r=0.56). MEP and RTD were not correlated in other phases (r[≥]0.09). Silent period duration increased throughout the different phases of contraction and up to MVC plateau (ANOVA, p=0.001) but MEP remained constant (ANOVA, p=0.42). ConclusionThe correlations between MEP and RTD suggests corticospinal excitability is an important determinant of RTD. During rapid torque development and up to MVC plateau, corticospinal inhibition increases but excitability remains constant.

physiology↗

The effects of combined action observation and motor imagery on corticospinal excitability and movement outcomes: A meta-analysis

Motor simulation interventions involving motor imagery (MI) and action observation (AO) have received considerable interest in the behavioral sciences. A growing body of research has focused on using AO and MI simultaneously, termed combined action observation and motor imagery (AOMI). The current paper includes two meta-analyses that quantify changes in corticospinal excitability and motor skill performance for AOMI compared to AO, MI and control conditions. Specifically, the first meta-analysis collated and synthesized existing motor evoked potential (MEP) amplitude data from transcranial magnetic stimulation studies and the second meta-analysis collated and synthesized existing movement outcome data from behavioral studies. AOMI had a positive effect compared to control and AO but not MI conditions for both MEP amplitudes and movement outcomes. No methodological factors moderated the effects of AOMI, indicating a robust effect of AOMI across the two outcome variables. The results of the meta-analyses are discussed in relation to existing literature on motor simulation and skill acquisition, before providing viable directions for future research on this topic. HighlightsO_LIMotor imagery (MI) and action observation (AO) can be combined (AOMI) C_LIO_LIThis paper synthesizes neurophysiological and behavioral evidence for AOMI C_LIO_LIAOMI had increased corticospinal excitability compared to AO and control but not MI C_LIO_LIAOMI led to improved movement outcomes compared to AO and control but not MI C_LIO_LIThe reported effects of AOMI were maintained across all moderators C_LI

neuroscience↗