AI Article Synopsis

  • Organelles connect at membrane contact sites, and the endoplasmic reticulum has receptors (VAP-A, VAP-B, MOSPD2) that facilitate this by interacting with proteins on other organelles.
  • * Researchers discovered a non-conventional FFAT motif where an acidic residue is replaced with serine/threonine, and its phosphorylation is essential for recognition by the MSP domain.
  • * A novel prediction algorithm was developed to identify proteins with these Phospho-FFAT motifs, highlighting that phosphorylation serves as a crucial switch for forming connections between organelles, impacting functions like sterol transfer.

Article Abstract

Organelles are physically connected in membrane contact sites. The endoplasmic reticulum possesses three major receptors, VAP-A, VAP-B, and MOSPD2, which interact with proteins at the surface of other organelles to build contacts. VAP-A, VAP-B, and MOSPD2 contain an MSP domain, which binds a motif named FFAT (two phenylalanines in an acidic tract). In this study, we identified a non-conventional FFAT motif where a conserved acidic residue is replaced by a serine/threonine. We show that phosphorylation of this serine/threonine is critical for non-conventional FFAT motifs (named Phospho-FFAT) to be recognized by the MSP domain. Moreover, structural analyses of the MSP domain alone or in complex with conventional and Phospho-FFAT peptides revealed new mechanisms of interaction. Based on these new insights, we produced a novel prediction algorithm, which expands the repertoire of candidate proteins with a Phospho-FFAT that are able to create membrane contact sites. Using a prototypical tethering complex made by STARD3 and VAP, we showed that phosphorylation is instrumental for the formation of ER-endosome contacts, and their sterol transfer function. This study reveals that phosphorylation acts as a general switch for inter-organelle contacts.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7705450PMC
http://dx.doi.org/10.15252/embj.2019104369DOI Listing

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