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Perera, N. D.

Publications and source records attributed to Perera, N. D..

4 recordsLinked to original sources

Abnormal mu rhythm state-related cortical and corticospinal responses in chronic stroke

The motor cortexs activity is state-dependent. Specifically, the sensorimotor mu rhythm phase relates to fluctuating levels of primary motor cortex (M1) excitability, previously demonstrated in young and healthy volunteers. However, it is unknown whether this observation is generalizable to individuals with brain lesions after a stroke. We investigated the phase relationship between the mu rhythm and cortical excitability by combining real-time processing of electroencephalography (EEG) signals and transcranial magnetic stimulation (TMS) of M1. In 11 chronic subcortical stroke survivors and 12 similar-aged healthy volunteers, we applied TMS to M1 at the peak, falling, trough, and rising phase of the sensorimotor mu oscillation. As outcome measures, we investigated the M1-to-muscle excitability by measuring motor-evoked potentials (MEPs) and local cortical activation by measuring TMS-evoked potentials (TEPs). We found that M1-to-muscle excitability in stroke survivors and older volunteers shows a phase-dependency similar to that in young healthy adults. That is, MEPs were increased and decreased at the trough and peak of the mu rhythm, respectively. However, individuals with stronger stroke-related motor symptoms showed a decreased phase preference. Further, phase-dependency was abolished in the local cortical activity, as measured with EEG, in the stroke-affected hemisphere, in contrast to the non-affected hemisphere as well as either hemisphere in healthy volunteers. Altogether, these results shed light on the state-dependency of motor cortex excitability after stroke. Our results indicate that the strength of phase preference of TMS motor responses could indicate the severity of motor impairment. These results could enable the development of improved TMS paradigms for recovery of motor impairment after stroke.

neuroscience↗

State dependent motor cortex stimulation reveals distinct mechanisms for corticospinal excitability and cortical responses

Transcranial magnetic stimulation (TMS) is a non-invasive brain stimulation method which can modulate brain activity by inducing electric fields in the brain. It is a popular tool to study causal brain-behavior relationships. However, brain states vary over time and affect the response of TMS. Neural oscillations can track the current brain state and are a promising marker to guide stimulation timing. Real-time, state-dependent brain stimulation has shown that neural oscillation phase modulates corticospinal excitability reflecting the connection from the primary motor cortex to a target muscle. However, such motor-evoked potentials (MEPs) only indirectly reflect motor cortex activation and are unavailable at other brain regions of interest. The direct and secondary cortical effects of phase-dependent brain stimulation remain an open question. In this study, we recorded the cortical responses during single-pulse transcranial magnetic stimulation (TMS) using electroencephalography (EEG) concurrently with the MEP measurements. TMS was delivered at peak, rising, trough, and falling phases of mu (8-13 Hz) and beta (14-30 Hz) oscillations in the motor cortex. The cortical responses were quantified through TMS-evoked potential components N15, P50, and N100 as peak-to-peak amplitudes (P50-N15 and P50-N100). We further analyzed whether the pre-stimulus frequency band power was predictive of the motor cortical responses. We found a significant main effect of neural oscillation phase on early evoked component (P50-N15). Furthermore, we found an interaction effect of oscillation phase and frequency on both early and late (P50-N100) components. Next, we compared the direct EEG response to the corticospinal excitability reflected by MEP amplitude. Interestingly, the preferred phase of the mu rhythm showed a 900 phase shift between the early TEP components and MEPs. The late component showed the same phase preference between EEG and MEPs. However, such a well-defined relationship did not exist for either of the components during beta phase specific stimulation. In addition, pre-TMS mu oscillatory power and phase significantly predicted both early and late cortical EEG responses when mu rhythm was targeted, indicating the independent causal effects of phase and power. However, only pre-TMS beta power significantly predicted the early and late TEP components when beta rhythm was targeted. Further analysis indicated that both pre-TMS mu and beta power jointly affect early cortical responses. In contrast, the late cortical responses were only influenced by pre-TMS mu power. These findings provide insight to mechanistic understanding of neural oscillation states in cortical and corticospinal activation in humans.

neuroscience↗

Experimental validation of computational models for the prediction of phase distribution during multi-channel transcranial alternating current stimulation

Transcranial alternating current stimulation (tACS) is a widely used noninvasive brain stimulation (NIBS) technique to affect neural activity. Neural oscillations exhibit phase-dependent associations with cognitive functions, and tools to manipulate local oscillatory phases can affect communication across remote brain regions. A recent study demonstrated that multi-channel tACS can generate electric fields with a phase gradient or traveling waves in the brain. Computational simulations using phasor algebra can predict the phase distribution inside the brain and aid in informing parameters in tACS experiments. However, experimental validation of computational models for multi-phase tACS is still lacking. Here, we develop such a framework for phasor simulation and evaluate its accuracy using in vivo recordings in nonhuman primates. We extract the phase and amplitude of electric fields from intracranial recordings in two monkeys during multi-channel tACS and compare them to those calculated by phasor analysis using finite element models. Our findings demonstrate that simulated phases correspond well to measured phases (r = 0.9). Further, we systematically evaluated the impact of accurate electrode placement on modeling and data agreement. Finally, our framework can predict the amplitude distribution in measurements given calibrated tissues conductivity. Our validated general framework for simulating multi-phase, multi-electrode tACS provides a streamlined tool for principled planning of multi-channel tACS experiments.

bioengineering↗

Mesoscale neural effects of transcranial magnetic stimulation

Transcranial magnetic stimulation (TMS) is a non-invasive brain stimulation method that is rapidly growing in popularity for studying causal brain-behavior relationships. However, its dose-dependent direct neural mechanisms, i.e., due to electric field or connectivity, and peripheral sensory co-stimulation effects remain debated. Understanding how TMS stimulation parameters affect brain responses is vital for the rational design of TMS protocols. Studying these mechanisms in humans is challenging due to the limited spatiotemporal resolution of available non-invasive neuroimaging methods. Here, we leverage invasive recordings of local field potentials in non-human primates to study TMS mesoscale responses. We demonstrate that early TMS-evoked potentials show a sigmoidal dose-response with stimulation intensity. We further show that stimulation responses are spatially specific. We employ several control conditions to dissociate direct neural responses from auditory and somatosensory co-activation. These results provide crucial evidence regarding TMS neural effects at the brain circuit level. Our findings are highly relevant for interpreting human TMS studies and biomarker developments for TMS target engagement in clinical applications.

neuroscience↗