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Chauvire, T.

Publications and source records attributed to Chauvire, T..

2 recordsLinked to original sources

Modulating radical propagation in proteins by proton-coupled electron transfer and hydrogen bonding

Long-range protein electron transfer (ET) often depends on tryptophan and tyrosine residues acting as radical relay sites. For example, cytochrome c peroxidase (CcP) generates a W191^dot+ radical to increase ET from cytochrome c (Cc) to the active center. W191 substitution to Tyr reduces ET rates, but introduction of an adjacent general base (as Glu or His) at position 232 (Y191:E/H232 CcP) recovers activity. E232 fluorination lowers the pKa of the conjugate base and confirms that a hydrogen bond is critical to elevate the Y191^dot formal potential for effective ET. Photoinitiated ET between Zn-porphyrin (ZnP) CcP (ZnCcP) and Cc also depends on activating Y191 with a basic residue, but through a different mechanism than for the peroxide-driven system. In ZnCcP, pH dependencies and solvent isotope effects indicate that proton-coupled electron transfer to the basic residue and ZnP^dot+, respectively, facilitates Y191^dot formation. Replacing Cc with the irreversible oxidant [Co(NH3)5Cl]2+ isolates distinct protein radicals for characterization by Electron Paramagnetic Resonance (EPR) spectroscopy. Radical distributions and computation indicate that W191^dot+ lies close in potential to ZnP^dot+ and that the two radicals exchange on a slow time scale despite their close separation. Remarkably, Y191:E/H232 ZnCcP variants propagate radicals differently to peripheral sites depending on the nature of the 232 residue. QM/MM calculations support radical exchange between ZnP^dot+/Trp^dot+ and the importance of a hydrogen bond to Y191^dot for maintaining a high potential to oxidize peripheral donors. These resolved reactivity patterns of CcP/ZnCcP have general relevance for engineering proton management to separate and migrate charge in proteins and potentially other molecular systems.

biochemistry↗

Flavoproteins as native and genetically encoded spin probes for in cell ESR spectroscopy

Flavin cofactors are attractive Electron Spin Resonance (ESR) probes for proteins because cellular reductants and light can generate their semiquinone states. We have used ESR spectroscopy to study the bacterial transmembrane aerotaxis receptor (Aer) in its native Escherichia coli membrane environment. Optimization of the spectroscopic (electronic relaxation times) and cell growth (isotopic labeling) conditions allowed for measurements of Aer with its partners - the histidine kinase (CheA) and the coupling protein (CheW) - in native signaling arrays. Continuous-wave ESR measurements at room temperature showed a rigid Aer flavin immobilized in the cofactor pocket and Q-band electron nuclear double resonance (ENDOR) measurements identified a predominant anionic semiquinone radical state in cell. Q-band four-pulse double electron-electron resonance (4P-DEER) measurements indicated a 4.1 nm distance between the two flavins of an Aer homodimer, consistent with previous in vitro measurements, but also revealed additional separations in cell indicative of chemoreceptor arrays, not previously observed for Aer. For general application, we further developed a genetically encoded Light-Oxygen and Voltage (LOV) domain for incorporation into target proteins as an ESR probe of structural properties in cell. This approach provides a framework to elucidate protein oligomeric states and conformations that are difficult to reproduce in vitro.

biochemistry↗