bioRxiv Science⌕ Search

Biology subjects

Murai, M.

Publications and source records attributed to Murai, M..

5 recordsLinked to original sources

Structure–activity relationship of antimycin A-like compounds as photosystem II inhibitors

Antimycin A (AA) is widely used as an inhibitor of the mitochondrial respiratory chain, targeting the Qi site of cytochrome bc1 (complex III). In photosynthetic organisms, AA is also well known to inhibit the photosynthetic PROTON GRADIENT REGULATION 5 (PGR5)-dependent cyclic electron flow around photosystem I (CEF-PSI). Although AA is frequently used as a specific inhibitor of PGR5-dependent CEF-PSI in photosynthetic reactions, we recently clarified that some of the major components of AA, which is typically a mixture of closely related compounds, also exert direct inhibitory effects on photosystem II (PSII). Nevertheless, the binding site and binding mode of AA in PSII remain largely unexplored. Structurally, AA consists of a salicylic acid moiety connected via an amide bond to a hydrophobic dilactone ring moiety. To identify important structural factors of AA for exhibiting inhibitory effects on PSII (assessed by QA- reoxidation measurements), we here investigated the relationship between structure and inhibitory potency using 38 AA-like compounds (AALCs), including commercial compounds and a series of synthetic AA analogs. Some AALCs exhibited substantially stronger impacts on PSII than natural AA. High acidity of the phenolic OH and the presence of a free amide NH of the salicylamide moiety were critical for the effects on PSII. In contrast, while the dilactone ring moiety also affected the inhibitory activity, this was replaceable with certain hydrophobic structures. Based on our results, together with the known structure-activity relationship and binding mode of AA in complex III, we propose tentative binding models for AA in PSII. HighlightsO_LIStructure-activity relationship of AA-like compounds on PSII is examined C_LIO_LISeveral AA-like compounds more potent than AA against PSII are identified C_LIO_LIPhenolic OH acidity and free amide NH of salicylamide moiety are key for AA effects C_LIO_LIThe dilactone ring moiety is replaceable with certain hydrophobic structures C_LIO_LITentative binding models for AA in PSII are proposed C_LI

Plant Biology↗

PIFI Stabilizes Chloroplast NDH-PSI Supercomplex to Maintain Plastoquinone Redox Balance and PSII Efficiency

Photosynthetic electron transport is mediated by several protein supercomplexes that are spatially arranged in the thylakoid membranes of chloroplasts. The chloroplast NADH dehydrogenase-like (NDH) complex is part of the photosynthetic alternative electron transport (AET) chain, which reduces the plastoquinone (PQ) pool using reduced ferredoxin as a substrate. This NDH complex is associated with photosystem I (PSI) and mediates a portion of AET in stroma lamellae, whereas photosystem II (PSII) is concentrated in grana stacks. This study presents the findings regarding post-illumination chlorophyll fluorescence increase (PIFI), a protein crucial for regulating AET via the NDH pathway. A marked increase in NDH activity and a reduction in the PQ pool in the dark were observed in PIFI-deficient mutant strains (g-pifi) generated by genome editing. Blue native PAGE analysis indicated that PIFI was associated with the NDH-PSI supercomplex in the wild type, and the NDH complex was dissociated from PSI in the g-pifi mutants. Additionally, the g-pifi mutants exhibited a decrease in the maximum quantum yield of PSII (Fv/Fm). Notably, Fv/Fm was restored in a double mutant harboring both g-pifi and NDH-deficient pnsl1 mutations, demonstrating that deregulated NDH activity in g-pifi causes downregulation of PSII efficiency. However, the lower Fv/Fm was not observed in a mutant lacking thioredoxin m4 (trxm4), which showed deregulated NDH activity but maintained the NDH-PSI supercomplex. These data suggest that PIFI stabilizes the NDH-PSI supercomplex and maintains the spatial localization of PQ reduction via AET in thylakoid membranes, which is essential for the proper functioning of PSII.

plant biology↗

In situ structure determination of Respiratory Supercomplexes and ATP synthase oligomers in mammalian mitochondrial inner membrane.

To understand how membrane protein complexes function within biological membranes, it is essential to determine their structure in their natural membrane environment. Here, we employed cryoEM structure analysis to elucidate the structures of ATP synthase FoF1 and respiratory Supercomplexes (SCs) on sub-mitochondrial particles (SMPs) isolated from bovine heart mitochondria. On SMPs, the majority of FoF1 was identified as dimers bound by the regulatory factor dimeric IF1. In addition, a tetrameric structure formed by association of FoF1 IF1 dimers and with a linear arrangement of the F1 head were also identified. These structures induced a steep membrane curvature, indicating the presence of a structure on SMPs similar to that found on the tips of mitochondrial cristae. High-resolution structures of the respiratory complexes were also determined, and sub-class structures of both CI and CIII2 were resolved. Most SCs were of the CI1CIII2CIV3 structure, although the presence of the CI2CIII2CIV6 mega complex was also identified. Our study enabled rapid in situ structural determination of SCs and FoF1 ATP synthase from small amount of membrane fractions, paving the way for elucidation of the molecular basis of metabolic disorders and mitochondrial diseases at the level of higher-order architecture.

biochemistry↗

The Na+-pumping mechanism driven by redox reactions in the NADH-quinone oxidoreductase from Vibrio cholerae relies on dynamic conformational changes

The Na+-pumping NADH-quinone oxidoreductase (Na+-NQR) is a key respiratory enzyme in many marine and pathogenic bacteria that couples electron transfer to Na+-pumping across the membrane. Earlier X-ray and cryo-EM structures of Na+-NQR from Vibrio cholerae suggested that the subunits harboring redox cofactors undergo conformational changes during catalytic turnover. However, these proposed rearrangements have not yet been confirmed. Here, we have identified at least five distinct conformational states of Na+-NQR using: mutants that lack specific cofactors, specific inhibitors or low-sodium conditions. Molecular dynamics simulations based on these structural insights indicate that 2Fe-2S reduction in NqrD/E plays a crucial role in triggering Na+ translocation by driving structural rearrangements in the NqrD/E subunits, which subsequently influence NqrC and NqrF positioning. This study provides the first structural insights into the mechanism of Na+ translocation coupled to electron transfer in Na-NQR.

biochemistry↗

Cryo-EM structures of Na+-pumping NADH-ubiquinone oxidoreductase from Vibrio cholerae

The Na+-pumping NADH-ubiquinone oxidoreductase (Na+-NQR) couples electron transfer from NADH to ubiquinone with Na+-pumping, generating an electrochemical Na+ gradient that is essential for energy-consuming reactions in bacteria. Since Na+-NQR is exclusively found in prokaryotes, it is a promising target for highly selective antibiotics. However, the molecular mechanism of inhibition is not well-understood for lack of the atomic structural information about an inhibitor-bound state. Here we present cryo-electron microscopy structures of Na+- NQR from Vibrio cholerae with or without a bound inhibitor at 2.5- to 3.1-[A] resolution. The structures reveal the arrangement of all six redox cofactors including riboflavin, whose position has been under debate, and a newly assigned 2Fe-2SNqrD/E cluster located between the membrane embedded NqrD and NqrE subunits. A large part of the hydrophilic NqrF near the cytoplasmic membrane surface is barely visible in the density map, suggesting a high degree of flexibility. This flexibility may be responsible to reducing the long distance between the 2Fe- 2S centers in NqrF and NqrD/E, consistent with physiologically relevant electron transfer. Two different types of specific inhibitors (korormicin A and aurachin D-42) bind to the N-terminal region of NqrB, which is disordered in the absence of inhibitors. The current inhibitor-bound structures reasonably explain our previous biochemical findings obtained by different chemistry-based experiments. This study provides a definite foundation for understanding the function of Na+-NQR and the molecular mechanism of its specific inhibitors to support molecular design of new antibiotics targeting the enzyme.

biochemistry↗