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Santina, L. D.

Publications and source records attributed to Santina, L. D..

2 recordsLinked to original sources

Partial Input Loss Differentially Modifies Neural Pathways

Following input loss from degeneration, injury, and/or aging, downstream circuits undergo modifications that can impact neural computations. How neural computations across different pathways are affected by common input loss remain understudied. To leverage known cell types, well-defined circuitry, and molecular tools, we use the mouse retina to show how multiple pathways adjust their functional properties differently to common input loss and further locate these changes within each pathway. Specifically, we asked if two OFF ganglion cell types, alpha OFF-sustained (AOFF-S) and OFF-transient (AOFF-T) cells, and their respective dominant presynaptic partners, type 2 and type 3a cone bipolar cells, respond differentially to partial cone loss. We find that AOFF-T ganglion cells exhibit more circuit changes than AOFF-S ganglion cells, resulting in altered spatiotemporal tuning following partial cone loss. We show that the underlying mechanisms include changes in glutamatergic, GABAergic, and glycinergic circuits in the pathway of AOFF-T ganglion cells. In response to common input loss, our study finds different locations of circuit modifications across OFF pathways. These findings provide insight into how sensory pathways can compensate differentially to common input loss.

neuroscience↗

Microglia target synaptic sites early during excitatory circuit disassembly in neurodegeneration

During development, microglia prune excess synapses to refine neuronal circuits. In neurodegeneration, the role of microglia-mediated synaptic pruning in circuit remodeling and dysfunction is important for developing therapies aimed at modulating microglial function. Here we analyzed the role of microglia in the synapse disassembly of degenerating postsynaptic neurons in the inner retina. After inducing transient intraocular pressure elevation to injure retinal ganglion cells, microglia increase in number, shift to ameboid morphology, and exhibit greater process movement. Furthermore, due to the greater number of microglia, there is increased colocalization of microglia with synaptic components throughout the inner plexiform layer and with excitatory synaptic sites along individual ganglion cell dendrites. Microglia depletion partially restores ganglion cell function, suggesting that microglia activation may be neurotoxic in early neurodegeneration. Our results demonstrate the important role of microglia in synapse disassembly in degenerating circuits, highlighting their recruitment to synaptic sites early after neuronal injury. HighlightsEarly after transient intraocular pressure elevation: O_LIMicroglia increase in number, complexity, and process movement C_LIO_LIMicroglia-synaptic contacts increase in the inner plexiform layer C_LIO_LIMicroglia-synaptic contacts increase on retinal ganglion cell dendrites C_LIO_LIMicroglia depletion partially restores ganglion cell function C_LI

neuroscience↗