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1.
Nat Commun ; 15(1): 5411, 2024 Jun 26.
Artículo en Inglés | MEDLINE | ID: mdl-38926336

RESUMEN

Most rod-shaped bacteria elongate by inserting new cell wall material into the inner surface of the cell sidewall. This is performed by class A penicillin binding proteins (PBPs) and a highly conserved protein complex, the elongasome, which moves processively around the cell circumference and inserts long glycan strands that act as barrel-hoop-like reinforcing structures, thereby giving rise to a rod-shaped cell. However, it remains unclear how elongasome synthesis dynamics and termination events are regulated to determine the length of these critical cell-reinforcing structures. To address this, we developed a method to track individual elongasome complexes around the entire circumference of Bacillus subtilis cells for minutes-long periods using single-molecule fluorescence microscopy. We found that the B. subtilis elongasome is highly processive and that processive synthesis events are frequently terminated by rapid reversal or extended pauses. We found that cellular levels of RodA regulate elongasome processivity, reversal and pausing. Our single-molecule data, together with stochastic simulations, show that elongasome dynamics and processivity are regulated by molecular motor tug-of-war competition between several, likely two, oppositely oriented peptidoglycan synthesis complexes associated with the MreB filament. Altogether these results demonstrate that molecular motor tug-of-war is a key regulator of elongasome dynamics in B. subtilis, which likely also regulates the cell shape via modulation of elongasome processivity.


Asunto(s)
Bacillus subtilis , Proteínas Bacterianas , Pared Celular , Proteínas de Unión a las Penicilinas , Bacillus subtilis/metabolismo , Bacillus subtilis/genética , Pared Celular/metabolismo , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Proteínas de Unión a las Penicilinas/metabolismo , Proteínas de Unión a las Penicilinas/genética , Peptidoglicano/metabolismo , Peptidoglicano/biosíntesis , Microscopía Fluorescente , Imagen Individual de Molécula , Proteínas Motoras Moleculares/metabolismo , Proteínas Motoras Moleculares/genética
3.
Nat Microbiol ; 9(4): 1064-1074, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38480901

RESUMEN

Bacterial cell division requires septal peptidoglycan (sPG) synthesis by the divisome complex. Treadmilling of the essential tubulin homologue FtsZ has been implicated in septal constriction, though its precise role remains unclear. Here we used live-cell single-molecule imaging of the divisome transpeptidase PBP2B to investigate sPG synthesis dynamics in Bacillus subtilis. In contrast to previous models, we observed a single population of processively moving PBP2B molecules whose motion is driven by peptidoglycan synthesis and is not associated with FtsZ treadmilling. However, despite the asynchronous motions of PBP2B and FtsZ, a partial dependence of PBP2B processivity on FtsZ treadmilling was observed. Additionally, through single-molecule counting experiments we provide evidence that the divisome synthesis complex is multimeric. Our results support a model for B. subtilis division where a multimeric synthesis complex follows a single track dependent on sPG synthesis whose activity and dynamics are asynchronous with FtsZ treadmilling.


Asunto(s)
Bacillus subtilis , Proteínas Bacterianas , Bacillus subtilis/genética , Proteínas Bacterianas/genética , Peptidoglicano , Proteínas del Citoesqueleto/genética , Pared Celular
4.
5.
EMBO J ; 41(5): e109800, 2022 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-35037270

RESUMEN

All living organisms adapt their membrane lipid composition in response to changes in their environment or diet. These conserved membrane-adaptive processes have been studied extensively. However, key concepts of membrane biology linked to regulation of lipid composition including homeoviscous adaptation maintaining stable levels of membrane fluidity, and gel-fluid phase separation resulting in domain formation, heavily rely upon in vitro studies with model membranes or lipid extracts. Using the bacterial model organisms Escherichia coli and Bacillus subtilis, we now show that inadequate in vivo membrane fluidity interferes with essential complex cellular processes including cytokinesis, envelope expansion, chromosome replication/segregation and maintenance of membrane potential. Furthermore, we demonstrate that very low membrane fluidity is indeed capable of triggering large-scale lipid phase separation and protein segregation in intact, protein-crowded membranes of living cells; a process that coincides with the minimal level of fluidity capable of supporting growth. Importantly, the in vivo lipid phase separation is not associated with a breakdown of the membrane diffusion barrier function, thus explaining why the phase separation process induced by low fluidity is biologically reversible.


Asunto(s)
Bacillus subtilis/metabolismo , Escherichia coli/metabolismo , Fluidez de la Membrana/fisiología , Lípidos de la Membrana/metabolismo , Proteínas/metabolismo , Bacillus subtilis/fisiología , Membrana Celular/metabolismo , Membrana Celular/fisiología , Escherichia coli/fisiología
6.
J Mol Biol ; 431(18): 3568-3590, 2019 08 23.
Artículo en Inglés | MEDLINE | ID: mdl-30597160

RESUMEN

Within the larger ABC superfamily of ATPases, ABCF family members eEF3 in Saccharomyces cerevisiae and EttA in Escherichia coli have been found to function as ribosomal translation factors. Several other ABCFs including biochemically characterized VgaA, LsaA and MsrE confer resistance to antibiotics that target the peptidyl transferase center and exit tunnel of the ribosome. However, the diversity of ABCF subfamilies, the relationships among subfamilies and the evolution of antibiotic resistance (ARE) factors from other ABCFs have not been explored. To address this, we analyzed the presence of ABCFs and their domain architectures in 4505 genomes across the tree of life. We find 45 distinct subfamilies of ABCFs that are widespread across bacterial and eukaryotic phyla, suggesting that they were present in the last common ancestor of both. Surprisingly, currently known ARE ABCFs are not confined to a distinct lineage of the ABCF family tree, suggesting that ARE can readily evolve from other ABCF functions. Our data suggest that there are a number of previously unidentified ARE ABCFs in antibiotic producers and important human pathogens. We also find that ATPase-deficient mutants of all four E. coli ABCFs (EttA, YbiT, YheS and Uup) inhibit protein synthesis, indicative of their ribosomal function, and demonstrate a genetic interaction of ABCFs Uup and YheS with translational GTPase BipA involved in assembly of the 50S ribosome subunit. Finally, we show that the ribosome-binding resistance factor VmlR from Bacillus subtilis is localized to the cytoplasm, ruling out a role in antibiotic efflux.


Asunto(s)
Transportadoras de Casetes de Unión a ATP/química , Transportadoras de Casetes de Unión a ATP/metabolismo , Adenosina Trifosfatasas/metabolismo , Farmacorresistencia Microbiana/genética , Biosíntesis de Proteínas/efectos de los fármacos , Ribosomas/metabolismo , Transportadoras de Casetes de Unión a ATP/clasificación , Transportadoras de Casetes de Unión a ATP/genética , Adenosina Trifosfatasas/genética , Antibacterianos/farmacología , Bacillus subtilis/metabolismo , Farmacorresistencia Bacteriana/efectos de los fármacos , Farmacorresistencia Bacteriana/genética , Escherichia coli/metabolismo , Proteínas de Escherichia coli/genética , GTP Fosfohidrolasas/metabolismo , Humanos , Modelos Moleculares , Peptidil Transferasas/efectos de los fármacos , Conformación Proteica , Dominios Proteicos , Ribosomas/química , Ribosomas/efectos de los fármacos , Ribosomas/genética , Saccharomyces cerevisiae/metabolismo
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