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1.
Mol Microbiol ; 118(4): 417-425, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-36054785

RESUMEN

Glucose is taken up by Escherichia coli through the phosphotransferase system (PTS) as the preferred carbon source. PTS mutants grow with glucose as a carbon source only in the presence of pyrroloquinoline quinone (PQQ), which is needed as a redox cofactor for the glucose dehydrogenase Gcd. The membrane-anchored Gcd enzyme oxidises glucose to gluconolactone in the periplasm. For this reaction to occur, external supply of PQQ is required as E. coli is unable to produce PQQ de novo. Growth experiments show that PqqU (previously YncD) is the TonB-ExbBD-dependent transporter for PQQ through the outer membrane. PQQ protected the cells from the PqqU-dependent phage IsaakIselin (Bas10) by competition for the receptor protein. As a high affinity uptake system, PqqU allows E. coli to activate Gcd even at surrounding PQQ concentrations of about 1 nmoL/L. At about 30-fold higher PQQ concentrations, the activation of Gcd gets PqqU independent. Due to its small size, Pqq may also pass the outer membrane through porins. The PQQ-dependent production of gluconate has been demonstrated in many plant growth-promoting bacteria that solubilise phosphate minerals in the soil by secreting this acid. Under phosphate limiting conditions also E. coli induces the glucose dehydrogenase and secretes gluconate, even in absence of PTS, that is, even when the bacterium is unable to grow on glucose without PQQ.


Asunto(s)
Escherichia coli K12 , Cofactor PQQ , Carbono/metabolismo , Escherichia coli/metabolismo , Escherichia coli K12/genética , Escherichia coli K12/metabolismo , Gluconatos/metabolismo , Glucosa/metabolismo , Glucosa 1-Deshidrogenasa/genética , Glucosa 1-Deshidrogenasa/metabolismo , Fosfatos/metabolismo , Fosfotransferasas/metabolismo , Porinas/metabolismo , Cofactor PQQ/metabolismo , Quinonas/metabolismo , Suelo
2.
mBio ; 13(4): e0146922, 2022 08 30.
Artículo en Inglés | MEDLINE | ID: mdl-35856562

RESUMEN

The reactions of α-d-phosphohexomutases (αPHM) are ubiquitous, key to primary metabolism, and essential for several processes in all domains of life. The functionality of these enzymes relies on an initial phosphorylation step which requires the presence of α-d-glucose-1,6-bisphosphate (Glc-1,6-BP). While well investigated in vertebrates, the origin of this activator compound in bacteria is unknown. Here we show that the Slr1334 protein from the unicellular cyanobacterium Synechocysitis sp. PCC 6803 is a Glc-1,6-BP-synthase. Biochemical analysis revealed that Slr1334 efficiently converts fructose-1,6-bisphosphate (Frc-1,6-BP) and α-d-glucose-1-phosphate/α-d-glucose-6-phosphate into Glc-1,6-BP and also catalyzes the reverse reaction. As inferred from phylogenetic analysis, the slr1334 product belongs to a primordial subfamily of αPHMs that is present especially in deeply branching bacteria and also includes human commensals and pathogens. Remarkably, the homologue of Slr1334 in the human gut bacterium Bacteroides salyersiae catalyzes the same reaction, suggesting a conserved and essential role for the members of this αPHM subfamily. IMPORTANCE Glc-1,6-BP is known as an essential activator of phosphoglucomutase (PGM) and other members of the αPHM superfamily, making it a central regulator in glycogen metabolism, glycolysis, amino sugar formation as well as bacterial cell wall and capsule formation. Despite this essential role in carbon metabolism, its origin in prokaryotes has so far remained elusive. In this study we identify a member of a specific αPHM subfamily as the first bacterial Glc-1,6-BP synthase, forming free Glc-1,6-BP by using Frc-1,6-BP as phosphoryl-donor. PGMs of this subfamily are widely distributed among prokaryotes including human commensals and pathogens. By showing that a distinct subfamily member can also form Glc-1,6-BP, we provide evidence that Glc-1,6-BP synthase activity is a general feature of this group.


Asunto(s)
Glucosa-6-Fosfato , Fosfoglucomutasa , Animales , Glucosa , Glucosa-6-Fosfato/análogos & derivados , Glucosa-6-Fosfato/metabolismo , Humanos , Fosfoglucomutasa/química , Fosfoglucomutasa/genética , Fosfoglucomutasa/metabolismo , Filogenia
3.
Microb Physiol ; 31(2): 178-194, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33794535

RESUMEN

Escherichia coli is unable to grow on polymeric and oligomeric chitin, but grows on chitin disaccharide (GlcNAc-GlcNAc; N,N'-diacetylchitobiose) and chitin trisaccharide (GlcNAc-GlcNAc-GlcNAc; N,N',N''-triacetylchitotriose) via expression of the chb operon (chbBCARFG). The phosphotransferase system (PTS) transporter ChbBCA facilitates transport of both saccharides across the inner membrane and their concomitant phosphorylation at the non-reducing end, intracellularly yielding GlcNAc 6-phosphate-GlcNAc (GlcNAc6P-GlcNAc) and GlcNAc6P-GlcNAc-GlcNAc, respectively. We revisited the intracellular catabolism of the PTS products, thereby correcting the reported functions of the 6-phospho-glycosidase ChbF, the monodeacetylase ChbG, and the transcriptional regulator ChbR. Intracellular accumulation of glucosamine 6P-GlcNAc (GlcN6P-GlcNAc) and GlcN6P-GlcNAc-GlcNAc in a chbF mutant unraveled a role for ChbG as a monodeacetylase that removes the N-acetyl group at the non-reducing end. Consequently, GlcN6P- but not GlcNAc6P-containing saccharides likely function as coactivators of ChbR. Furthermore, ChbF removed the GlcN6P from the non-reducing terminus of the former saccharides, thereby degrading the inducers of the chb operon and facilitating growth on the saccharides. Consequently, ChbF was unable to hydrolyze GlcNAc6P-residues from the non-reducing end, contrary to previous assumptions but in agreement with structural modeling data and with the unusual catalytic mechanism of the family 4 of glycosidases, to which ChbF belongs. We also refuted the assumption that ChiA is a bifunctional endochitinase/lysozyme ChiA, and show that it is unable to degrade peptidoglycans but acts as a bona fide chitinase in vitro and in vivo, enabling growth of E. coli on chitin oligosaccharides when ectopically expressed. Overall, this study revises our understanding of the chitin, chitin oligosaccharide, and chitin disaccharide metabolism of E. coli.


Asunto(s)
Disacáridos , Escherichia coli , Quitina , Escherichia coli/genética , Oligosacáridos , Operón
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