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March 4, 20260 citations

Secondary-Sphere Hydrogen Bonds Regulating Spin-Redox Interplay in Hemes.

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SPSubhadip PramanikCZChengxu ZhuPCPaulami Chakraborty

Key Points

  • The aim is to explore how secondary-sphere hydrogen bonding affects the redox properties and spin states of heme complexes.
  • Utilized iron(III) porphyrin-phenoxide complexes to examine hydrogen bonding effects.
  • Conducted electrochemical studies to measure redox properties.
  • Performed computational studies to support findings.
  • Hydrogen bonding influences the axial Fe─O bond length and porphyrin core geometry.
  • Secondary-sphere H-bonding stabilizes the intermediate-spin state (S = 3/2) of iron.
  • Observations include positive shifts in the Fe(III)/Fe(II) redox couple associated with hydrogen bonding.

Abstract

Hydrogen bonding (H-bonding) plays a pivotal role in regulating the chemical and electrochemical properties of metalloproteins by influencing substrate recognition, binding orientation, and active-site geometry. In heme enzymes, conserved H-bonding networks are directly linked to catalytic efficiency by modulating redox potentials and spin states of the iron center. Despite extensive studies on biological systems, the molecular origin of H-bonding effects on the electronic structure and redox properties of heme groups remains underexplored. We report here iron(III) porphyrin-phenoxide complexes where secondary-sphere H-bonding interactions exert a large influence on geometry, spin state, and redox properties. The H-bonding interactions elongate the axial Fe─O bond, contract the porphyrin core, and stabilize the intermediate-spin (S = 3/2) state of iron, while the absence of H-bonding favors the high-spin (S = 5/2) state. Similar effects are also observed in the iron(III)-chloro complex in which the axial ligand is engaged in secondary-sphere H-bonding interactions. Electrochemical studies reveal positive shifts in the Fe(III)/Fe(II) couple and 1e- oxidation, highlighting H-bonding as a regulator of redox noninnocence. Supported by computational studies, our findings provide fundamental insights into the interplay between H-bonding, spin state, and redox chemistry, thereby offering insight into enzymatic regulation for its biological functions.

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Cite This Study

Pramanik et al. (2026) studied this question.

synapsesocial.com/papers/69a7cc7ad48f933b5eed802fhttps://doi.org/10.1002/chem.70839
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