bioRxiv Science⌕ Search

Biology subjects

Egger, S.

Publications and source records attributed to Egger, S..

2 recordsLinked to original sources

Rebalance the inhibitory system in the elderly brain: Influence of balance learning on GABAergic inhibition and functional connectivity

Aging involves complex processes that impact the structure, function, and metabolism of the human brain. Declines in both structural and functional integrity along with reduced local inhibitory tone in the motor areas, as indicated by reduced {gamma}-Aminobutyric acid (GABA) levels, are often associated with compromised motor performance in elderly adults. Using multi-modal neuroimaging techniques including magnetic resonance spectroscopy (MRS), diffusion magnetic resonance imaging (MRI), functional MRI as well as transcranial magnetic stimulation to assess short interval intracortical inhibition (SICI), this study explores whether these age-related changes can be mitigated by motor learning. The investigation focused on the effects of long-term balance learning (3 months) on intracortical inhibition, metabolism, structural and functional connectivity in the cortical sensorimotor network among an elderly cohort. We found that after three months of balance learning, subjects significantly improved balance performance, upregulated sensorimotor cortical GABA levels and ventral sensorimotor network functional connectivity (VSN-FC) compared to a passive control group. Furthermore, correlation analysis suggested a positive association between baseline VSN-FC and balance performance, between baseline VSN-FC and SICI, and between improvements in balance performance and upregulation in SICI in the training group, though these correlations did not survive the false discovery rate correction. These findings demonstrate that balance learning has the potential to counteract aging-related decline in functional connectivity and cortical inhibition on the tonic (MRS) and functional (SICI) level and shed new light on the close interplay between the GABAergic system, functional connectivity, and behavior.

neuroscience↗

Repetitive magnetic stimuli over the motor cortex impair consolidation of a balance task by suppressing up-regulation of intracortical inhibition

Low-frequency repetitive transcranial magnetic stimulation (rTMS) over the primary motor cortex (M1) was shown to impair short-term consolidation of a balance task, emphasizing the importance of M1 in balance skill consolidation. However, the disruptive mechanisms of rTMS on neural consolidation processes and their persistence across multiple balance acquisition sessions remain unclear. GABAergic processes are crucial for motor consolidation and, at the same time, are up-regulated when learning balance skills. Therefore, this study investigated the impact of rTMS on GABA-mediated short-interval intracortical inhibition (SICI) and consolidation of balance performance. Participants (n=31) underwent six balance acquisition sessions on a rocker board, each followed by rTMS (n=15) or sham-rTMS (n=16). In the PRE-measurement, SICI was assessed at baseline and after balance acquisition with subsequent rTMS/sham-rTMS. In the POST-measurement, this procedure was repeated to assess the influence of motor memory reactivation on SICI. In addition, SICI-PRE and SICI-POST were compared to assess long-term processes. Both groups achieved similar improvements within the balance acquisition sessions. However, they did not consolidate equally well indicated by significant declines in performance for the rTMS group (p = 0.006) in the subsequent sessions. Both short-(p = 0.014) and long-term (p = 0.038) adaptations in SICI were affected by rTMS: while the sham-rTMS group up-regulated SICI, rTMS led to reductions in inhibition. The interfering effect of rTMS on both balance consolidation and up-regulation of SICI suggests that increased intracortical inhibition is an important factor to protect and consolidate the newly acquired motor memory.

neuroscience↗