The exocyst in context.

Biochem Soc Trans

Department of Medicine and Life Sciences, Universitat Pompeu Fabra, Barcelona 08003, Spain.

Published: October 2024

AI Article Synopsis

  • The exocyst is a key protein complex that helps with the process of exocytosis by linking secretory vesicles to the plasma membrane and coordinating various proteins involved in cell trafficking.
  • Despite known structural details, its complex and adaptable roles make understanding its full function challenging.
  • The review discusses current and potential future experimental methods to study the exocyst, ranging from isolated lab experiments to real-time imaging in living cells, to better understand its dynamics and functions in a natural context.

Article Abstract

The exocyst is a hetero-octameric complex involved in the exocytosis arm of cellular trafficking. Specifically, it tethers secretory vesicles to the plasma membrane, but it is also a main convergence point for many players of exocytosis: regulatory proteins, motor proteins, lipids and Soluble N-ethylmaleimide-sensitive factor Attachment Protein Receptor (SNARE) proteins are all connected physically by the exocyst. Despite extensive knowledge about its structure and interactions, the exocyst remains an enigma precisely because of its increasingly broad and flexible role across the exocytosis process. To solve the molecular mechanism of such a multi-tasking complex, dynamical structures with self, other proteins, and environment should be described. And to do this, interrogation within contexts increasingly close to native conditions is needed. Here we provide a perspective on how different experimental contexts have been used to study the exocyst, and those that could be used in the future. This review describes the structural breakthroughs on the isolated in vitro exocyst, followed by the use of membrane reconstitution assays for revealing in vitro exocyst functionality. Next, it moves to in situ cell contexts, reviewing imaging techniques that have been, and that ideally could be, used to look for near-native structure and organization dynamics. Finally, it looks at the exocyst structure in situ within evolutionary contexts, and the potential of structure prediction therein. From in vitro, to in situ, cross-context investigation of exocyst structure has begun, and will be critical for functional mechanism elucidation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11555703PMC
http://dx.doi.org/10.1042/BST20231401DOI Listing

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