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Kreis, P.

Publications and source records attributed to Kreis, P..

2 recordsLinked to original sources

Comparative analysis of neuronal proteolytic pathways reveals neuron-specific and sub-compartmental-specific capacities with aging

Proteostasis is essential for maintaining neuronal function, and its dysregulation is a hallmark of aging and neurodegeneration. The ubiquitin-proteasome system (UPS) and macroautophagy are the two major proteolytic pathways responsible for protein degradation. However, their capacity and regulation differ between cell types and across aging. To elucidate the activity of both proteolytic pathways with aging, we performed a comparative analysis of the activity of UPS and macroautophagy in distinct neuronal subcellular compartments, in the cytosol and at synaptic terminals, across aging in neurons of Mus musculus (mouse) and Caenorhabditis elegans (nematode). In mice, our results identified differences between brain areas. While the cortical proteasomal activity declined with aging in both the cytoplasmic as well as synaptic neuronal subcompartments, the cerebellar proteasomal activity decreased only in the cytoplasmic compartment with aging. In C. elegans, we detected a decrease of proteasomal activity in both cytoplasmic and synaptic compartments of neurons. Interestingly, we observed a dysregulation of macroautophagy in both neuronal subcompartments of the cortex and cerebellum in mice as well as in C. elegans neurons with aging. Thus, we uncovered neuron-specific and subcompartmental-specific proteolytic capacities with aging that could manifest in different neuronal vulnerabilities for proteotoxic challenges with aging.

biochemistry↗

Membrane protein condensates polymerize actin and form filopodia

Neuronal morphogenesis is guided by filopodia, dynamically generated plasma membrane protrusions filled with parallel actin filaments. However, how filopodial actin filaments are locally produced, organized, and maintained remains unclear. The transmembrane protein PLPPR3 induces filopodia in neurons and other cells. We find that the intracellular domain (ICD) of PLPPR3 forms liquid condensates, which exhibit strong co-partitioning of actin monomers. These condensates promote actin polymerization within the condensates at the expense of actin monomers in the environment, consistent with thermodynamic coupling of actin partitioning and polymerization, which we recapitulate in a modified polymerization kinetics model. This mechanism requires favorable actin partitioning into the condensate relative to the environment. Using crosslinking mass spectrometry, we identify a WH2-like actin-affinity domain within the PLPPR3 ICD. Deleting this domain lowers actin partitioning in vitro and decreases filopodia formation in vivo. Our findings establish a previously unrecognized mechanism for actin network remodeling, in which condensates act as actin sinks, locally boosting monomer concentrations and facilitating polymerization of actin filaments. One sentence summaryOur study uncovers PLPPR3 condensates to locally enrich actin monomers and promote actin polymerization, driving actin network remodeling and neuronal filopodia formation.

cell biology↗