TY - JOUR
T1 - TOM20-driven E3 ligase recruitment regulates mitochondrial dynamics through PLD6
AU - Raiff, Anat
AU - Zhao, Shidong
AU - Bekturova, Aizat
AU - Zenge, Colin
AU - Mazor, Shir
AU - Chen, Xinyan
AU - Ru, Wenwen
AU - Makaros, Yaara
AU - Ast, Tslil
AU - Ordureau, Alban
AU - Xu, Chao
AU - Koren, Itay
N1 - Publisher Copyright: © The Author(s), under exclusive licence to Springer Nature America, Inc. 2025.
PY - 2025/4/22
Y1 - 2025/4/22
N2 - Mitochondrial homeostasis is maintained through complex regulatory mechanisms, including the balance of mitochondrial dynamics involving fusion and fission processes. A central player in this regulation is the ubiquitin–proteasome system (UPS), which controls the degradation of pivotal mitochondrial proteins. In this study, we identified cullin–RING E3 ligase 2 (CRL2) and its substrate receptor, FEM1B, as critical regulators of mitochondrial dynamics. Through proteomic analysis, we demonstrate here that FEM1B controls the turnover of PLD6, a key regulator of mitochondrial dynamics. Using structural and biochemical approaches, we show that FEM1B physically interacts with PLD6 and that this interaction is facilitated by the direct association of FEM1B with the mitochondrial import receptor TOM20. Ablation of FEM1B or disruption of the FEM1B–TOM20 interaction impairs PLD6 degradation and induces mitochondrial defects, phenocopying PLD6 overexpression. These findings underscore the importance of FEM1B in maintaining mitochondrial morphology and provide further mechanistic insights into how the UPS regulates mitochondrial homeostasis. (Figure presented.)
AB - Mitochondrial homeostasis is maintained through complex regulatory mechanisms, including the balance of mitochondrial dynamics involving fusion and fission processes. A central player in this regulation is the ubiquitin–proteasome system (UPS), which controls the degradation of pivotal mitochondrial proteins. In this study, we identified cullin–RING E3 ligase 2 (CRL2) and its substrate receptor, FEM1B, as critical regulators of mitochondrial dynamics. Through proteomic analysis, we demonstrate here that FEM1B controls the turnover of PLD6, a key regulator of mitochondrial dynamics. Using structural and biochemical approaches, we show that FEM1B physically interacts with PLD6 and that this interaction is facilitated by the direct association of FEM1B with the mitochondrial import receptor TOM20. Ablation of FEM1B or disruption of the FEM1B–TOM20 interaction impairs PLD6 degradation and induces mitochondrial defects, phenocopying PLD6 overexpression. These findings underscore the importance of FEM1B in maintaining mitochondrial morphology and provide further mechanistic insights into how the UPS regulates mitochondrial homeostasis. (Figure presented.)
UR - http://www.scopus.com/inward/record.url?scp=105003166963&partnerID=8YFLogxK
U2 - 10.1038/s41589-025-01894-4
DO - 10.1038/s41589-025-01894-4
M3 - مقالة
C2 - 40263465
SN - 1552-4450
JO - Nature Chemical Biology
JF - Nature Chemical Biology
M1 - 3755
ER -