bioRxiv Science⌕ Search

Biology subjects

Rajavong, J.

Publications and source records attributed to Rajavong, J..

2 recordsLinked to original sources

Kinematics-based assessment of reaching and grasping movements in LRN ablated animals identifies a role for the LRN in endpoint stabilization and reach timing.

The lateral reticular nucleus (LRN) is thought to contribute to skilled forelimb control but its specific contributions to reaching and grasping remain unclear. In this paper, we examine skilled reaching in intact adult female Long-Evans rats after bilateral LRN ablation through single-pellet reaching tasks. Tasks were analyzed using sensitive quantitative kinematic analyses and qualitative behavioral scoring. Overall, limb transport was largely preserved after ablation, with results appearing in temporally restricted differences. The clearest deficits emerged in pellet-directed endpoint control. LRN-ablated animals showed broad variability in end-point covariance, endpoint spread, and increased trial-to-trial variability, indicating that the movement became less precise and less consistent. These effects were more consistent than any single spatial difference seen, suggesting that ablation of the LRN impairs movement refinement rather than inducing a simple directional bias, although the paw height during the reach was significantly effected. Reach duration also changed, but this temporal difference emerged later and was less prominent. Our results suggest that the LRN acts as an important contributor to endpoint stabilization and reach timing during skilled forelimb behavior.

neuroscience↗

Chemogenetic Manipulation of the Subthalamic Nucleus-Substantia Nigra Pars Reticulata Pathway Promotes Recovery in HemiParkinsonian Rat Models

Motor control through the basal ganglion is mediated primarily thought two pathways, the direct and indirect pathways. The indirect pathway functions in opposition to the direct pathway, balancing excitatory and inhibitory control over motor movement. In Parkinsons disease, the indirect pathway is thought to suppress movements through excessive excitation of inhibitory neurons within the globus pallidus internus and substantia nigra pars reticulata. In an attempt to restore this balance, we induced the expression of GAD65 in glutamatergic subthalamic neurons to enable the co-release of GABA. Previous studies indicated co-expression of GABA with glutamate reduces glutamate excitability and might restore balance to the network. Indeed, we observed a reduction in post-lesional amphetamine-induce rotations in 6OHDA lesioned rats co-transduced with GAD65 and excitatory DREADDs and activated by CNO. This study indicates rebalancing inhibitory and excitatory output from the subthalamic nucleus can have a positive effect on motor outcome.

neuroscience↗