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Samurkas, A.

Publications and source records attributed to Samurkas, A..

2 recordsLinked to original sources

The luminal and cytosolic domains of CLIMP-63 cooperate to set ER sheet width

The endoplasmic reticulum (ER) synthesized and folds secreted and transmembrane protein in regions composed of flattened sheets with a defined luminal width of [~]50 nm. CLIMP-63 has been proposed to be the principal determinant of this spacing, but the molecular mechanism by which it controls luminal width remains unclear. The luminal domain of CLIMP-63 has been proposed to act as a fixed-length spacer through antiparallel coiled-coil dimerization between molecules on opposing membranes. Here we revise this model. Using systematic cysteine trapping across the luminal domain, we demonstrate that CLIMP-63 assembles into parallel trimers. An AlphaFold-guided screen of CLIMP-63 orthologs combined with cryo-electron microscopy reveals that the luminal domain forms an elongated trimeric rod with intrinsic conformational flexibility at hinge regions. This flexibility is functionally required: replacing the human luminal domain with a more rigid ortholog causes complete ER vacuolation. Higher-order assembly of CLIMP-63 trimers beyond the trimer depends on the cytosolic tail rather than on luminal trans interactions, and the tails role in higher order assembly is separable from its other architectural functions. Together, these findings show that luminal trimeric extension and cytosolic tail-mediated clustering cooperate to determine ER sheet width.

cell biology↗

Molecular Regulation and Physiological Role of 1 GOLPH3-mediated Golgi retention

The Golgi complex serves as the central hub of the biosynthetic pathway, where anterograde and retrograde trafficking converge. How cargo and Golgi-resident proteins traverse this organelle has long been debated. Recent studies have identified a molecular machinery that sorts resident proteins into retrograde-directed COPI vesicles during cisternal maturation. Golgi phosphoprotein 3 (GOLPH3) is a key component of this system; however, its physiological relevance and regulatory mechanisms remain poorly defined. Here, we show that GOLPH3 depletion in mice disrupts both protein and lipid glycosylation, causes partially penetrant embryonic lethality, and severely impairs growth and bone mineralization. At the molecular level, we find that GOLPH3 is regulated by functionally antagonistic S-acylation events that control the topology of its membrane association. To mediate retrograde trafficking of Golgi-resident glycosyltransferases, GOLPH3 must bind their cytosolic tails. This occurs via a negatively charged surface region, which is correctly oriented only in one of the S-acylated GOLPH3 conformations. Together, these findings reveal a lipid-mediated regulatory mechanism for intra-Golgi trafficking and establish the critical role of GOLPH3 in vertebrate development.

cell biology↗