Coenzyme Q biosynthesis requires two atypical kinase-like proteins (COQ8A and COQ8B), whose detailed molecular mechanism remains unclear. Here, we show that both paralogs function as adenosine triphosphatases (ATPases) that promote coenzyme Q biosynthetic metabolon activity by engaging in loose protein-protein interactions and delivering insoluble biosynthetic intermediates. Structural bioinformatics and pathological variant–driven mutagenesis identify a previously uncharacterized pocket that selectively recognizes coenzyme Q biosynthetic intermediates via their head groups. X-ray crystallography reveals that access to this pocket is gated by long-range conformational changes controlled by adenosine 5′-triphosphate hydrolysis. Last, excess coenzyme Q suppresses binding of early-stage intermediates and thereby abolishes the promoting effect of COQ8 on the metabolon. Together, these findings support a model in which COQ8 tunes coenzyme Q biosynthesis by coupling ATPase-driven intermediate chaperoning to feedback inhibition by the final product.

COQ8 chaperones coenzyme Q lipid intermediates through ATP-driven structural gating

Gottinger, Andrea
Methodology
;
Malatesta, Marco
Methodology
;
Nicoll, Callum R
Methodology
;
Burbach, Natalie E
Methodology
;
Cecchini, Domiziana
Methodology
;
Mattevi, Andrea
Supervision
2026-01-01

Abstract

Coenzyme Q biosynthesis requires two atypical kinase-like proteins (COQ8A and COQ8B), whose detailed molecular mechanism remains unclear. Here, we show that both paralogs function as adenosine triphosphatases (ATPases) that promote coenzyme Q biosynthetic metabolon activity by engaging in loose protein-protein interactions and delivering insoluble biosynthetic intermediates. Structural bioinformatics and pathological variant–driven mutagenesis identify a previously uncharacterized pocket that selectively recognizes coenzyme Q biosynthetic intermediates via their head groups. X-ray crystallography reveals that access to this pocket is gated by long-range conformational changes controlled by adenosine 5′-triphosphate hydrolysis. Last, excess coenzyme Q suppresses binding of early-stage intermediates and thereby abolishes the promoting effect of COQ8 on the metabolon. Together, these findings support a model in which COQ8 tunes coenzyme Q biosynthesis by coupling ATPase-driven intermediate chaperoning to feedback inhibition by the final product.
2026
Biochemistry & Biophysics focuses on the structure and chemistry of biomolecules and covers all aspects of basic biochemistry/biophysics, including molecular structure, enzyme kinetics and protein-protein interaction; this category also contains cross-disciplinary resources focused on a specific class of biological molecules, e.g., nucleic acids, steroids, magnesium, growth factors, free radicals, bio-membranes, and peptides. Excluded are resources dealing with the application of biochemical techniques to specific topics listed elsewhere in CC/LS. Resources with a strong emphasis on the integration of biochemical pathways (such as signal transduction or molecular motors) at the cellular level are placed in the Cell & Developmental Biology category.
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
12
31
coenzyme Q; metabolon; kinase, metabolism; drug design
https://www.science.org/doi/10.1126/sciadv.aeg1124
17
info:eu-repo/semantics/article
262
Gottinger, Andrea; Malatesta, Marco; Nicoll, Callum R; Ansari, Georg; Quinodoz, Mathieu; Kaminska, Karolina; Tang, Rachael W C; Tan, Tien-En; Fenner, ...espandi
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1558741
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