Search bioRxiv⌕ Search

Biology subjects

Liu, M.-G.

Publications and source records attributed to Liu, M.-G..

2 recordsLinked to original sources

Post-weaning social isolation impairs the orbitofrontal cortical circuit subserving contagious pain and prosocial behaviors

Empathic behaviors are sensitive to environmental factors like post-weaning social isolation (SI), yet the mechanisms by which SI affects empathy remain unclear. Here, we show that mice subjected to SI exhibit marked impairments in contagious pain and prosocial behaviors, including allo-grooming and allo-licking toward cagemates experiencing inflammatory pain. Mechanistically, we identify the glutamatergic projection from the ventromedial thalamic nucleus (VM) to the orbitofrontal cortex (OFC) as critical for these empathy-like responses. SI induces hypoexcitability of OFC glutamatergic neurons and attenuates excitatory synaptic transmission within the VM[->]OFC pathway. Remarkably, chemogenetic activation of OFC neurons or the VM[->]OFC projection restores empathic behaviors in SI mice. Furthermore, we uncover a molecular basis for SI-induced OFC hypoexcitability: the downregulation of Grik3, encoding a kainate-type glutamate receptor subunit. These findings reveal a previously uncharacterized thalamocortical mechanism through which early-life social deprivation disrupts empathic behaviors, offering insights into the underpinnings of social-affective dysfunction.

neuroscience↗

Phosphatidylserine controls synaptic targeting and membrane stability of ASIC1a

Phospholipid-protein interaction is highly specialized at the membranous nanodomains and critical for membrane receptor signaling. Calcium-permeable acid-sensing ion channel isoform 1a (ASIC1a) is a major neuronal proton sensor that contributes to synaptic plasticity. The functional outcome of ASIC1a is dependent on its surface targeting in synaptic subdomains; however, the lipid environment for ASIC1a and its role in channel targeting remain poorly understood. Here, we report that anionic phosphatidylserine (PS) is enriched in dendritic spines during neurodevelopment and it directly binds to ASIC1a through an electrostatic interaction with a di-arginine motif at ASIC1a C-terminus. PS regulates the membrane targeting and function of ASIC1a, which are both strongly suppressed by inhibition of PS synthesis. In cortical neuron dendrites, both PS and ASIC1a are predominately localized to peri-synaptic sites of spine heads, surrounding instead of overlapping with postsynaptic markers, PSD-95 and GluN1. Uncoupling the interaction between PS and ASIC1a by changing the charges to neutral or acidic at the di-arginine PS-binding motif, or applying a membrane penetrating competing peptide, caused mistargeting of ASIC1a at the synaptic sites, an overall increase in internalization and/or cytoplasmic accumulation of ASIC1a, and a decrease in its channel function. Together, our results provide novel insights on lipid microenvironment that governs ASIC1a expression and function at the membrane surface, especially peri-synaptic regions of dendritic spines, through an electrostatic interaction with anionic phospholipids.

neuroscience↗