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Cecchini, D.

Publications and source records attributed to Cecchini, D..

4 recordsLinked to original sources

L-2-hydroxyglutarate recycling is linked to coenzyme Q biosynthesis

The mitochondrial COQ metabolon catalyzes the late stages of the biosynthesis of coenzyme Q, an essential and ubiquitous cofactor. Here, by integrating coevolution, coexpression, colocalization and domain-fusion analyses, we identify L-2-hydroxyglutarate dehydrogenase (L2HGDH) as an integral component of this assembly. By acting in physical proximity to the COQ metabolon, L2HGDH sustains coenzyme Q production by maintaining the biosynthetic intermediates in their catalytically-active reduced state. Consistently, analysis of fibroblasts and urine samples from patients with primary coenzyme Q deficiency displayed marked accumulation of L-2-hydroxyglutarate. Cryo-electron microscopy reveals that L2HGDH forms a stable complex with COQ3 and COQ6, defining a heterotrimeric assembly that organizes catalytic sites on a shared membrane-facing surface thereby enabling localized quinone reduction. Together, these findings identify L2HGDH as a previously unrecognized component of the COQ metabolon, establish a direct link between central carbon metabolism and coenzyme Q biosynthesis, and expand the functional roles of metabolons in coordinating metabolic flux across distinct pathways.

biochemistry↗

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

Coenzyme Q biosynthesis requires the atypical kinase-like COQ8 proteins, whose ATPase activity streamlines the membrane-associated COQ metabolon, yet its molecular mechanism has remained unclear. Taking advantage of the tetrapod ancestral coenzyme Q biosynthetic machinery and liposomes mimicking the inner mitochondrial membrane, we show that COQ8A and COQ8B act as a streamlining factor for the coenzyme Q metabolon by engaging in loose protein-protein interactions and delivering insoluble biosynthetic intermediates. Structural bioinformatics and pathological-variant-driven mutagenesis reveal that coenzyme Q intermediates are recognized via their head-groups in a pocket whose access is gated by long-range conformational changes controlled by ATP hydrolysis. Finally, it is demonstrated that excess coenzyme Q suppresses binding of early-stage intermediates and thereby abolishes the streamlining effect of COQ8 on the metabolon. Together, these results support a model in which COQ8 functions as a biochemical coenzyme Q sensor that tunes coenzyme Q biosynthesis by coupling ATPase-driven intermediate chaperoning with feedback regulation by the final product. TeaserCOQ8 enhances coenzyme Q metabolic flux via ATP hydrolysis-driven chaperoning of biosynthetic intermediates.

biochemistry↗

Complete Enzyme Clustering Enhances Coenzyme Q Biosynthesisvia Substrate Channeling

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 fine structure of the metabolon clusters is imperative for substrate channeling. Grounded in both experiment and simulation, these findings provide a framework for understanding the organization and function of metabolons across diverse metabolic pathways.

biophysics↗

Functional exploration of in vivo and in vitro lignocellulose-fed rumen bacterial microbiomes reveals novel enzymes involved in polysaccharide breakdown

BackgroundPlant cell walls are the main carbon sources for ruminal bacteria, which have evolved to produce sophisticated multi-functional enzyme cocktails in response to the structural diversity of lignocelulloses. Since a large proportion of ruminal bacteria are not yet cultured, we developed a high-throughput activity-based metagenomic approach to gain insight into this enzymatic diversity. ResultsA multi-step screening methodology was implemented to identify metagenomic clones acting on polysaccharides and polyaromatic compounds. This approach was used to explore the functional potential of two different microbial consortia derived from in vivo and in vitro enrichments of the bovine rumen microbiome on wheat straw. One hundred and sixty-eight fosmid clones were isolated from libraries. Five to seven times more {beta}-mannanase and {beta}-glucanase clones, and seven times less xylanase clones were obtained from the in vitro enrichment compared to the in vivo one. The sequencing of 51 fosmids, covering in total 1.4 Gb of metagenomic DNA, enabled the identification of various novel glycoside-hydrolases, esterases and oxidoreductases mostly encoded by unknown bacterial genera. Functional analysis showed that most of the identified xylanases belonged to Firmicutes members that were not enriched in the fermenter, while most cellulases and mannanases originate from Bacteroidetes. ConclusionThese enzymes, that, for most of them, had not been previously identified by in depth-metagenome sequencing, present a high potential for biotechnological applications, as they could be used alone or in cocktails to break down plant cell walls. The relationships established between enzyme function and taxonomy highlight the complementary roles played by ruminal Firmicutes and Bacteroidetes in plant cell wall degradation.

biochemistry↗