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Sarewicz, M.

Publications and source records attributed to Sarewicz, M..

2 recordsLinked to original sources

Stochastic spin selection in the mechanism of semiquinone formation at the ubiquinol oxidation Qo site of cytochrome bc1

Cytochrome bc1 is one of the key enzymes of biological energy-conserving systems. In its catalytic Q cycle, the central reaction is the oxidation of quinol (QH2), upon which electrons are directed to two separate cofactor chains. The molecular mechanism of this reaction remains elusive. The canonical model, assuming a sequence of reactions dictated by the equilibrium redox midpoint potentials of cofactors (the 2Fe2S cluster and heme bL), has recently been challenged by a new model of EB derived from quantum mechanical (QM) calculations - EMET (EMergent Electron Transfer) (https://doi.org/10.1021/acsomega.5c13233). These two models predict fundamentally different microstates of the enzyme in which semiquinone (SQ) is formed in the catalytic site (Q o) and also predict different lowest-energy configurations. Here, we test these predictions using EPR spectroscopy on highly concentrated preparations of isolated bacterial cytochrome bc1. We detect SQ spin-coupled to the reduced 2Fe2S cluster (2Fe2Sred), whose population markedly exceeds that of reduced heme bL and forms exclusively in sites containing oxidized heme. We also identify that the lowest-energy configuration corresponds to the state with reduced heme bH (adjacent to heme bL), oxidized heme bL and SQ-2Fe2Sred. These two features are precluded by the canonical model but are consistent with EMET. We conclude that EMET, unlike the canonical EB model, satisfactorily describes the occurrence of stochastic, spin-selective processes that result in electron stoichiometry among hemes b, the 2Fe2S cluster, and SQ at Qo that are observed spectroscopically.

biophysics↗

Electron bifurcation arises from emergent features of multicofactor enzymes

Quinone-based electron bifurcation (EB) catalyzed by cytochrome bc1 (cytbc1) plays a critical role in maximizing efficiency of biological energy conversion. The canonical EB model (CEB), grounded in equilibrium redox potentials, dictates the order of EB steps with initial endergonic reduction of high-potential iron-sulfur cluster (2Fe2S) by quinol followed by exergonic reduction of low-potential heme bL (bL) by semiquinone (SQ). However, this concept falls short in explaining several experimental observations, including intermediate semiquinone spin-coupled to 2Fe2S (SQ-2Fe2Sred) and the absence of short-circuiting. Presented here DFT calculations on large cluster models of cytbc1, encompassing both 2Fe2S and bL, identified location of donor (HOMO) and acceptor (LUMO) orbitals along with the previously not considered microstates to reveal that EB is an emergent property of an integrated system of redox cofactors where transient charge separations dynamically modulate electron affinities. In this system, electron transfer initiates preferentially toward bL, indicating a departure from the conventional sequence proposed by CEB. Based on this finding, we introduce an EMBER (EMergent BL-first Electron Routing) model of EB and demonstrate that its assumptions are supported by electron paramagnetic resonance spectroscopy data. Unlike CEB, EMBER proposes a relatively flat energy profile for EB that accommodates stable SQ-2Fe2Sred and explains suppression of short-circuits without additional assumptions. It highlights the importance of state-dependent electrostatic interactions in shaping electron transfer pathways. In general, the concept of emergence inherent to EMBER offers a mechanistic framework applicable to a broad range of multi-cofactor redox enzymes beyond cytbc1.

biophysics↗