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Zdorevskyi, O.

Publications and source records attributed to Zdorevskyi, O..

5 recordsLinked to original sources

A Protein Antibiotic Inhibits the BAM Complex to Kill Without Cell Entry

Many antibiotics are ineffective against Gram-negative pathogens such as Pseudomonas aeruginosa because they cannot penetrate the bacterial outer membrane. Here, we show that protein antibiotics called L-type pyocins kill P. aeruginosa by inhibiting the {beta}-barrel assembly machinery (BAM) complex at the cell surface, halting outer-membrane protein assembly. Using single-particle cryo-electron microscopy, we show that L-type pyocins bind a surface-exposed region of BamA and deploy a C-terminal peptide that competitively inhibits the BAM complex, demonstrating that cell entry is not required for antibiotic activity. We combine genetics, multi-omics and cryo-electron tomography to show that BAM complex inhibition by L-type pyocins or the peptide antibiotic darobactin triggers a multifaceted transcriptomic, proteomic and morphological response. Despite this, BAM inhibition ultimately leads to a catastrophic loss of membrane integrity and cell death. These results validate BAM as a target for antibiotics that do not enter the cell and define an engineerable system for their development.

microbiology↗

Structure and functional analysis of CDNF-BiP interaction reveal a role in endoplasmic reticulum proteostasis regulation

Cerebral dopamine neurotrophic factor (CDNF) was identified for ability to rescue midbrain dopamine neurons and as endoplasmic reticulum (ER)-located protein that can be secreted. Structurally homologous to mesencephalic astrocyte-derived neurotrophic factor (MANF), CDNF has been shown to interact with ER-localized chaperone BiP. The ER plays a crucial role in protein synthesis, folding, and quality control, with BiP being a key player in maintaining protein homeostasis. CDNF is protective against ER stress and involved in regulating the unfolded protein response (UPR) signaling and interaction with BiP. Recent studies have shown that CDNF interacts with UPR sensor proteins PERK, IRE1, and ATF6, suggesting an overlap in CDNF binding with UPR sensors and BiP. In rodent models of Parkinsons disease (PD), CDNF protects and restores the function of brain dopamine neurons and was successful in PD phase 1 clinical studies. CDNF has shown therapeutic potential for several neurological diseases, including amyotrophic lateral sclerosis, and ischemic stroke. Despite extensive knowledge on CDNFs impact on cellular function and neuronal degeneration, its detailed molecular mechanism of action in the ER remains unclear. Here, we have characterized the CDNF interaction with BiP both structurally and functionally and solved the crystal structures of CDNF-BiP complexes to 1.5 [A] resolution, complemented with molecular dynamics simulations. Results show CDNFs role as an antagonist of BiP nucleotide exchange, and thus in its chaperone function, binding to the ADP-bound state. Finally, we show its effect on neuroprotection with stem cell-derived human dopamine neurons, highlighting its potential in neurodegenerative disease treatment.

biochemistry↗

Proton transfer through a charged conduit in respiratory complex I - long range effects and conformational gating

Energy coupling processes in respiratory complex I - a large redox-driven proton pump in the inner mitochondrial membrane - remains one of the most enigmatic problems in modern bioenergetics. Recent high-resolution cryo EM structures of complex I revealed extensive hydration in the interior of the protein, including the buried E channel, which is an acidic charged conduit that bridges the quinone binding cavity with the extended membrane domain of the enzyme. Despite the general agreement that E channel participates in proton transfer, absence of proton density in the cryo-EM maps pose a significant challenge to develop viable models of proton pumping. By adhering to the hypothesis that E channel catalyzes transfer of proton(s) from the quinone binding cavity to the membrane-bound proton pumping site(s), we performed hybrid quantum mechanics/molecular mechanics (QM/MM) molecular dynamics (MD) simulations using the ~2.4 A cryo-EM structure of mitochondrial complex I from Mus musculus. By combining classical atomistic MD simulations with the hybrid QM/MM free energy calculations, we identify several energetically favorable Grotthuss-competent proton transfer paths in the E channel region. As part of the long-range coupling in complex I, our calculations show that protonation of a single acidic amino acid residue in the distal MM surroundings can alter the dynamics of proton transfer in the E channel region. Additionally, we pinpoint the gating function of a highly conserved tyrosine residue in the E channel, which undergoes conformational flipping to establish an energetically favorable proton transfer path. In the context of the redox-coupled proton pumping mechanism of complex I, we propose a stepping-stone model of proton transfer through the E channel.

biochemistry↗

Catalytic relevance of quinol anion in biological energy conversion by respiratory complex I

Redox chemistry of quinones is an essential component of life on earth. In the mitochondrial electron transport chain, ubiquinone molecule is reduced to ubiquinol by respiratory complex I to drive the synthesis of ATP. By performing both classical and hybrid QM/MM simulations on high-resolution cryo-EM structures, including quantitative free energy calculations, we show that semiquinone species in complex I is anionic in nature and is trapped in the active site chamber for its subsequent reduction. Two-electron reduction of ubiquinone yields a metastable ubiquinol anion, which is electrostatically pushed by 15-20 [A] towards the exit of the ubiquinone binding chamber to drive the proton pump of complex I. As part of the two-electron reduction of ubiquinone, protonic rearrangements take place in the active site in which a highly conserved histidine converts from its one tautomeric state to another. The combined findings provide a detailed and testable mechanistic picture of proton-coupled electron transfer reaction at the active site of complex I in wild-type as well as mutant conditions.

biochemistry↗

Structural basis of respiratory complexes adaptation to cold temperatures

In response to cold, mammals activate brown fat for respiratory-dependent thermogenesis reliant on the electron transport chain (1, 2). Yet, the structural basis of respiratory complex adaptation to cold remains elusive. Herein we combined thermoregulatory physiology and cryo-EM to study endogenous respiratory supercomplexes exposed to different temperatures. A cold-induced conformation of CI:III2 (termed type 2) was identified with a [~]25{degrees} rotation of CIII2 around its inter-dimer axis, shortening inter-complex Q exchange space, and exhibiting different catalytic states which favor electron transfer. Large-scale supercomplex simulations in lipid membrane reveal how unique lipid-protein arrangements stabilize type 2 complexes to enhance catalytic activity. Together, our cryo-EM studies, multiscale simulations and biochemical analyses unveil the mechanisms and dynamics of respiratory adaptation at the structural and energetic level.

cell biology↗