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Khusainov, I.

Publications and source records attributed to Khusainov, I..

4 recordsLinked to original sources

The killing of human gut commensal E. coli ED1a by tetracycline is associated with severe ribosome dysfunction

Ribosomes translate the genetic code into proteins. Recent technical advances have facilitated in situ structural analyses of ribosome functional states inside eukaryotic cells and the minimal bacterium Mycoplasma. However, such analyses of Gram-negative bacteria are lacking, despite their ribosomes being major antimicrobial drug targets. Here we compare two E. coli strains, a lab E. coli K-12 and human gut isolate E. coli ED1a, for which tetracycline exhibits bacteriostatic and bactericidal action, respectively. The in situ ribosome structures upon tetracycline treatment show a virtually identical drug binding-site in both strains, yet the distribution of ribosomal complexes clearly differs. While K-12 retains ribosomes in a translation competent state, tRNAs are lost in the vast majority of ED1a ribosomes. A differential response is also reflected in proteome-wide abundance and thermal stability assessment. Our study underlines the need to include molecular analyses and to consider gut bacteria when addressing antibiotic mode of action. O_LSTHIGHLIGHTSC_LST* Ribosome structures of gram-negative bacteria are analyzed in situ * Tetracyline is bactericidal to gut isolate despite identical ribosome structures * When antibiotic is bacteriostatic, ribosomal translation competent states are retained * When antibiotic is bactericidal, cells rapidly accumulate P-tRNAs-deficient ribosomes GRAPHICAL ABSTRACT

biophysics↗

THE PALISADE LAYER OF THE POXVIRUS CORE IS COMPOSED OF FLEXIBLE A10-TRIMERS

Although vaccinia virus (VACV) is the best studied poxvirus, the structure of the mature virus (MV) remains poorly understood. Its asymmetric shape, size and compactness poses a major challenge for electron microscopy (EM) analysis, including cryoEM. Sub-viral particles, in particular membrane-free viral cores, may overcome these limitations. We compare cores obtained by detergent-stripping MVs with cores in the cellular cytoplasm, early in infection. By combining cryo-electron tomography (cryoET), subtomogram averaging (STA) and AlphaFold2 (AF2), abundant core-structures are analyzed, focusing on the prominent palisade layer on the core surface. On detergent-stripped cores, the palisade is composed of densely packed trimers of the major core protein A10. On the core surface they display a random order and their classification indicate structural flexibility. On cytoplasmic cores A10 is organized in a similar manner, indicating that the structures obtained in vitro are physiologically relevant. CryoET and STA also uncover unexpected details of the layers beneath the palisade both on in vitro and in situ cores, that are compared to AF2 structure predictions of known VACV core-associated proteins. Altogether, our data identify for the first time the structure and molecular composition of the palisade units. The results are discussed in the context of the VACV replicative cycle, the assembly and disassembly of the infectious MV.

molecular biology↗

Translation dynamics in human cells visualized at high-resolution reveal cancer drug action

Ribosomes catalyze protein synthesis by cycling through various functional states. These states have been extensively characterized in vitro, yet their distribution in actively translating human cells remains elusive. Here, we optimized a cryo-electron tomography-based approach and resolved ribosome structures inside human cells with a local resolution of up to 2.5 angstroms. These structures revealed the distribution of functional states of the elongation cycle, a Z tRNA binding site and the dynamics of ribosome expansion segments. In addition, we visualized structures of Homoharringtonine, a drug for chronic myeloid leukemia treatment, within the active site of the ribosome and found that its binding reshaped the landscape of translation. Overall, our work demonstrates that structural dynamics and drug effects can be assessed at near-atomic detail within human cells. One-Sentence SummarySnapshots of ribosome dynamics at near-atomic resolution within native and drug-treated human cells are revealed.

cell biology↗

Bacterial cell widening alters periplasmic size and activates envelope stress responses

The Rcs signal transduction system is a phosphorelay responsible for sensing a wide variety of enterobacterial cell envelope stresses. In Escherichia coli, the Rcs system is required to survive A22 and mecillinam treatment, two drugs that perturb cell size. To test whether cell size changes might be correlated with envelope damage and thereby sensed by the Rcs system, we tuned E. coli cell size via drug inhibition with A22, point mutations to the cell-shape determinant MreB, and mechanically confined growth. In all conditions, cell width was strongly correlated with Rcs activation, with wider cells exhibiting more activation than wild-type. In all conditions, RcsF, the outer membrane-localized upstream component of the Rcs system, was essential for responding to cell width changes. Consistently, several envelope gene deletions known to induce the Rcs system via RcsF resulted in cells that were wider than wild-type. Cryo- electron microscopy revealed that the periplasm of a wide MreB mutant was on average [~]3 nm thinner than wild-type, thereby bringing RcsF closer to the downstream components of the signaling cascade in the inner membrane. Conversely, extending the flexible linker region of RcsF by [~]3 nm increased Rcs activity in wild-type cells. In summary, we propose that the Rcs system responds to changes in cell width because of altered periplasmic thickness.

microbiology↗