Spatiotemporal control of Atg2 association with the ER during autophagosome formation

T Tetsuya Kotani (Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo) H Haruki Tanabe (Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, The University of Osaka) S Shinri Kitta (Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka) M Momoko Higashi (Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, The University of Osaka) T Tatsuya Niwa T Tatsuya Kaminishi (Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka) C Chika Kakuta (Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo) J Junko Shimasaki (Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo) H Hidetaka Kosako T Tamotsu Yoshimori (Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, Osaka University) A Akiko Kuma (Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka) H Hitoshi Nakatogawa (Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo)

Abstract

Autophagy degrades various intracellular components by sequestering them within membrane vesicles called autophagosomes and delivering them to lysosomes or vacuoles. Previous studies have revealed that the conserved, bridge-like lipid transfer protein Atg2 tethers autophagosome precursors to the endoplasmic reticulum (ER) and mediates lipid supply from the ER to drive their expansion into autophagosomes. However, how Atg2 docks onto the ER has remained unclear. Here, we show in Saccharomyces cerevisiae that Atg2 interacts with the ER-resident VAP family protein Scs2. This interaction is mediated by a phospho-FFAT motif in Atg2 and the major sperm protein domain of Scs2 and enhanced by phosphorylation of the motif by the autophagy-initiating kinase Atg1, which is activated at the autophagosome formation site upon autophagy induction. This interaction cooperates with the N-terminal region of Atg2, which contains a weakly amphipathic helix, to mediate Atg2 association with the ER. Thus, the Atg2–Scs2 interaction functions as a spatiotemporal switch that controls Atg2–ER association. We also show that mammalian ATG2 interacts with the VAP-like proteins MOSPD1 and MOSPD3 to promote autophagosome formation. Collectively, this study reveals a conserved mechanism that initiates lipid transfer during autophagosome formation.

Article Details

Volume / Issue Vol. 123, Issue 31
Published August 04, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

T

Tetsuya Kotani

Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo

H

Haruki Tanabe

Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, The University of Osaka

S

Shinri Kitta

Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka

M

Momoko Higashi

Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, The University of Osaka

T

Tatsuya Niwa

T

Tatsuya Kaminishi

Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka

C

Chika Kakuta

Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo

J

Junko Shimasaki

Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo

H

Hidetaka Kosako

T

Tamotsu Yoshimori

Laboratory of Intracellular Membrane Dynamics, Graduate School of Frontier Biosciences, Osaka University

A

Akiko Kuma

Beyond Cell Reborn Research, Graduate School of Medicine, The University of Osaka

H

Hitoshi Nakatogawa

Cell Biology Center, Institute of Integrated Research, Institute of Science Tokyo