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Biology subjects

Rudinskiy, M.

Publications and source records attributed to Rudinskiy, M..

2 recordsLinked to original sources

A novel class of allosteric glucosylceramidase beta 1 correctors that reduce cellular stress and enhance lysosomal function

Mutations in glucosylceramidase beta 1 (GCase) disrupt the proteins conformational maturation in the endoplasmic reticulum (ER) and hinder its transport to the lysosome. The intralysosomal accumulation of glucocerebrosides, which are substrates of the GCase enzyme, impairs lysosomal function and is linked to Gaucher disease (GD). GCase mutations also increase the risk of Parkinsons disease (PD) and Dementia with Lewy Bodies. We used Site-directed Enzyme Enhancement Therapy (SEE-Tx(R)) technology to design two structurally targeted allosteric regulators (STARs) of GCase. Administration of GT-02287 and GT-02329 to cultured GD patient-derived primary human fibroblasts enhances folding and protects the two most common disease-causing GCase variants, GCaseAsn370Ser and GCaseLeu444Pro, from proteasomal degradation. Mechanistically, these treatments facilitate the lysosomal delivery of enzymatically active forms of mutant GCase, leading to improved lysosomal function and reduced cellular stress in GD patient-derived fibroblasts. The findings suggest that the allosteric pharmacologic regulators GT-02287 and GT-02329 hold promise for further development as potential therapeutic agents for GCase-related disorders, including GD, PD and Dementia with Lewy Bodies.

cell biology↗

ER-phagy Receptors Intrinsically Disordered Modules Drive ER Fragmentation and ER-phagy

Membrane remodeling leading to fragmentation is crucial for autophagy programs that control capture by phagophores or endolysosomes of portions of organelles to be removed from cells. It is driven by membrane-bound autophagy receptors that display cytoplasmic intrinsically disordered modules (IDRs) engaging Atg8/LC3/GABARAP (LC3). Studies on endoplasmic reticulum (ER)-phagy receptors of the FAM134 family revealed the importance of sequential FAM134 proteins phosphorylation, ubiquitylation and clustering for execution of the ER-phagy programs. In this model, ER fragmentation is promoted/facilitated by the membrane-remodeling function of FAM134 reticulon homology domains (RHDs). However, RHDs are not conserved in ER-phagy receptors. The question that we tackle in this work is if activation of ER-phagy receptors anchored at the ER membrane with conventional membrane spanning domains, i.e., most of the ER-phagy receptors known to date, eventually trigger ER remodeling and fragmentation, and how. Here, we show that the membrane-tethering modules of ER-phagy receptors (RHDs for FAM134B, single/multi spanning transmembrane domains for TEX264 and SEC62) determine the sub-compartmental distribution of the receptors but are dispensable for ER fragmentation, regardless of their propensity to remodel the ER membrane. Rather, ER fragmentation is promoted by the ER-phagy receptors intrinsically disordered region (IDR) modules that are a conserved feature of all ER-phagy receptors exposed at the cytoplasmic face of the ER membrane. Since cytoplasmic IDRs with net negative charge are conserved in autophagy receptors at the limiting membrane of other organelles, we anticipate that conserved mechanisms of organelle fragmentaVon driven by cytoplasmic exposed IDRs could operate in eukaryoVc cells.

cell biology↗