Structural basis of V-ATPase V<sub>O</sub> region assembly by Vma12p, 21p, and 22p.

Wang, Hanlin; Bueler, Stephanie A; Rubinstein, John L · Proc Natl Acad Sci U S A · 2023

basic_science · Level V

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Abstract

Vacuolar-type adenosine triphosphatases (V-ATPases) are rotary proton pumps that acidify specific intracellular compartments in almost all eukaryotic cells. These multi-subunit enzymes consist of a soluble catalytic V<sub>1</sub> region and a membrane-embedded proton-translocating V<sub>O</sub> region. V<sub>O</sub> is assembled in the endoplasmic reticulum (ER) membrane, and V<sub>1</sub> is assembled in the cytosol. However, V<sub>1</sub> binds V<sub>O</sub> only after V<sub>O</sub> is transported to the Golgi membrane, thereby preventing acidification of the ER. We isolated V<sub>O</sub> complexes and subcomplexes from <i>Saccharomyces cerevisiae</i> bound to V-ATPase assembly factors Vma12p, Vma21p, and Vma22p. Electron cryomicroscopy shows how the Vma12-22p complex recruits subunits a, e, and f to the rotor ring of V<sub>O</sub> while blocking premature binding of V<sub>1</sub>. Vma21p, which contains an ER-retrieval motif, binds the V<sub>O</sub>:Vma12-22p complex, "mature" V<sub>O</sub>, and a complex that appears to contain a ring of loosely packed rotor subunits and the proteins YAR027W and YAR028W. The structures suggest that Vma21p binds assembly intermediates that contain a rotor ring and that activation of proton pumping following assembly of V<sub>1</sub> with V<sub>O</sub> removes Vma21p, allowing V-ATPase to remain in the Golgi. Together, these structures show how Vma12-22p and Vma21p function in V-ATPase assembly and quality control, ensuring the enzyme acidifies only its intended cellular targets.

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