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Gubellini, F.

Publications and source records attributed to Gubellini, F..

2 recordsLinked to original sources

High resolution cryo-EM and crystallographic snapshots of the large actinobacterial 2-oxoglutarate dehydrogenase: an all-in-one fusion with unique properties

Actinobacteria possess unique ways to regulate the oxoglutarate node located in the central position of the tricarboxylic acid cycle, a crossroad between energy conservation and nitrogen metabolism. Here, we studied the decarboxylative oxidation route that leads, through the 2-oxoglutarate dehydrogenase (ODH) complex, to the generation of succinyl-CoA and reduced equivalents to feed the respiratory chain. Compared to most organisms in which the oxidative decarboxylation and reductive acylation steps are carried out by different enzymes within the ODH complex, actinobacteria rely on an all-in-one protein (OdhA) in which both activities are carried out by the same polypeptide. We describe high-resolution cryo-EM and X-ray crystallography snapshots of representative enzymes from Mycobacterium smegmatis and Corynebacterium glutamicum, showing that OdhA is an 800-kDa homohexamer that folds into a three-blade propeller shape. The obligate trimeric and dimeric states of the acyltransferase and dehydrogenase domains, respectively, are critical for maintaining the overall assembly, where both domains interact via subtle readjustments of their interfaces. Complexes obtained with substrate analogues, reaction products and allosteric regulators illustrate how these domains operate. Furthermore, we provide additional insights into the phosphorylation-dependent regulation of this enzymatic machinery by the FHA (Fork-Head Associated) signalling protein OdhI, delivering new molecular details on how this actinobacterial-specific switching mechanism operates. Overall, the quaternary organization of OdhA represents a new piece of the fascinating puzzle of the synergistic, mixed pyruvate dehydrogenase/2-oxoglutarate dehydrogenase actinobacterial supercomplex.

biochemistry↗

Characterization of TelD, an LXG effector of Streptococcus gallolyticus, antagonized by a non-canonical immunity protein

Streptococcus gallolyticus subsp. gallolyticus (SGG) is an opportunistic bacterial pathogen strongly associated with colorectal cancer. Here, through comparative genomics analysis, we demonstrated that the genetic locus encoding the Type VIIb Secretion System (T7SSb) machinery is uniquely present in SGG in two different arrangements. SGG UCN34 carrying the most prevalent T7SSb genetic arrangement was chosen as the reference strain. To identify the effectors secreted by this secretion system, we inactivated the essC gene encoding the motor of this machinery. Comparison of the proteins secreted by UCN34 WT and its isogenic {Delta}essC mutant revealed six T7SSb effector proteins, including the expected WXG effector EsxA and three LXG-containing proteins. In this work, we characterized an LXG-family toxin named herein TelE displaying pore-forming activity. Seven homologs of TelE harboring a conserved glycine zipper motif at the C-terminus were identified in different SGG isolates. Scanning mutagenesis of this motif showed that the glycine residue at position 470 was crucial for TelE pore-forming activity. Unlike other pore-forming toxins commonly antagonized by a membrane protein, TelE activity was antagonized by a small protein TipE belonging to the DUF5085 family. Overall, we report herein a unique SGG T7SSb effector exhibiting a pore-forming activity against non-immune bacteria. IMPORTANCEIn this study, 38 clinical isolates of Streptococcus gallolyticus subsp. gallolyticus (SGG) were sequenced and a genetic locus encoding the Type VIIb secretion system (T7SSb) was found conserved and absent from 16 genomes of the closely related S. gallolyticus subsp. pasteurianus (SGP). The T7SSb is a bona fide pathogenicity island. Here, we report that the model organism SGG strain UCN34 secretes six T7SSb effectors. One of the six effectors named TelE displayed a strong toxicity when overexpressed in Escherichia coli. Our results indicate that TelE is a pore forming toxin whose activity can be antagonized by a non-canonical immunity protein named TipE. Overall, we report a unique toxin-immunity protein pair and our data expand the range of effectors secreted through T7SSb.

microbiology↗