Metabolons - transient assemblies of sequential metabolic enzymes - facilitate the reactions of multi-step metabolic pathways, yet, how they mechanistically bolster metabolic flux remains unknown. Here, we investigate the molecular determinants of metabolon formation in coenzyme Q (CoQ) biosynthesis using coarse-grained molecular dynamics simulations and biochemical experiments. We show that the COQ metabolon forms at the critical region of a phase transition, where both metabolon clustering and metabolic flux exhibit coordinated sigmoidal responses to changes in protein-protein interaction strength. These complete metabolons enable substrate channeling between sequential enzymes, leading to a crucial enhancement of CoQ production efficiency. Selectively disrupting protein-protein interactions and randomly shuffling the interaction network demonstrate that protein-proximity rather than a defined spatial organization of the metabolon clusters is imperative for substrate channeling. Grounded in both experiments and simulations, these findings provide a framework for understanding the organization and function of metabolons across diverse metabolic pathways.

Complete enzyme clustering enhances coenzyme Q biosynthesis via substrate channeling

Gottinger, Andrea
Methodology
;
Nicoll, Callum R
Methodology
;
Cecchini, Domiziana
Methodology
;
Malatesta, Marco
Methodology
;
Mattevi, Andrea
Conceptualization
;
2026-01-01

Abstract

Metabolons - transient assemblies of sequential metabolic enzymes - facilitate the reactions of multi-step metabolic pathways, yet, how they mechanistically bolster metabolic flux remains unknown. Here, we investigate the molecular determinants of metabolon formation in coenzyme Q (CoQ) biosynthesis using coarse-grained molecular dynamics simulations and biochemical experiments. We show that the COQ metabolon forms at the critical region of a phase transition, where both metabolon clustering and metabolic flux exhibit coordinated sigmoidal responses to changes in protein-protein interaction strength. These complete metabolons enable substrate channeling between sequential enzymes, leading to a crucial enhancement of CoQ production efficiency. Selectively disrupting protein-protein interactions and randomly shuffling the interaction network demonstrate that protein-proximity rather than a defined spatial organization of the metabolon clusters is imperative for substrate channeling. Grounded in both experiments and simulations, these findings provide a framework for understanding the organization and function of metabolons across diverse metabolic pathways.
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
17
1
8116
PROTEIN-PROTEIN INTERACTIONSMOLECULAR-DYNAMICSARTIFICIAL METABOLONSPATIAL-ORGANIZATIONSCAFFOLDSKINASECOMPARTMENTALIZATIONMECHANISMKINETICSPATHWAY
https://www.nature.com/articles/s41467-026-74806-2
11
info:eu-repo/semantics/article
262
Wang, Dianzhuo; Gottinger, Andrea; Jeong, Jio; Nicoll, Callum R; Liu, Junlang; Kadavá, Tereza; Cecchini, Domiziana; Malatesta, Marco; Heck, Albert J R...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/11571/1558740
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