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Macchi, N. L.

Publications and source records attributed to Macchi, N. L..

2 recordsLinked to original sources

RhoA activation promotes ordered membrane domain coalescence and suppresses neuronal excitability

The formation of ordered proteolipid membrane domains (OMDs) within the plasma membrane has emerged as a fundamental process that modifies membrane function, particularly in response to cell stresses that promote pathological states. Here, we identify a previously unrecognized role for the small GTPase RhoA to promote the coalescence of OMDs, thereby linking cytoskeletal remodeling and membrane mechanics to OMD formation. Pharmacological and optogenetic manipulation of RhoA rapidly altered OMD dimensions in both human cell lines and dorsal root ganglion (DRG) nociceptors. The RhoA-dependent OMD expansion required actin remodeling, changes in membrane mechanical state, and protein palmitoylation. Functionally, RhoA inhibition increased action potential firing and potentiated HCN channel activity in DRG neurons. Conversely, in a spared nerve injury model characterized by altered membrane mechanics, reduced OMD size, and hyperexcitability, RhoA activation enlarged OMDs, suppressed HCN channel activity, and reduced firing. These findings highlight alterations in plasma membrane physical properties, including changes in OMD organization and membrane tension, as key features of neuropathic stress. RhoA/ROCK-driven OMD remodeling may serve as a compensatory membrane adaptation that counteracts neuropathic hyperexcitability.

biophysics↗

Disruption of Ordered Membrane Domains as a Mechanism Underlying Neuropathic Pain

Cell membranes consist of heterogeneous lipid nanodomains that influence key cellular processes. Using FRET-based fluorescent assays and fluorescence lifetime imaging microscopy (FLIM), we found that the dimension of cholesterol-enriched ordered membrane domains (OMD) varies considerably, depending on specific cell types. Particularly, nociceptor dorsal root ganglion (DRG) neurons exhibit large OMDs. Disruption of OMDs potentiated action potential firing in nociceptor DRG neurons and facilitated the opening of native hyperpolarization-activated cyclic nucleotide-gated (HCN) pacemaker channels. This increased neuronal firing is partially due to an increased open probability and altered gating kinetics of HCN channels. The gating effect on HCN channels was likely due to a direct modulation of their voltage sensors by OMDs. In animal models of neuropathic pain, we observed reduced OMD size and a loss of HCN channel localization within OMDs. Additionally, cholesterol supplementation inhibited HCN channels and reduced neuronal hyperexcitability in pain models. These findings suggest that disturbances in lipid nanodomains play a critical role in regulating HCN channels within nociceptor DRG neurons, influencing pain modulation.

biophysics↗