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Artificial Mn4SrO4-Cluster Mimicking the Structural Changes of the Photosynthetic Oxygen-Evolving Center

  • Changhui Chen
  • , Zaining Wang
  • , Meilin Zhang
  • , Kexin Jia
  • , Feng Pan
  • , Hongjun Fan*
  • , Su Yuan Xie
  • , Jian Ren Shen*
  • , Jihu Su
  • , Bing Wu Wang*
  • , Chunxi Zhang*
  • *Corresponding author for this work
  • CAS - Institute of Chemistry
  • University of Chinese Academy of Sciences
  • Xiamen University
  • CAS - Dalian Institute of Chemical Physics
  • Peking University
  • CAS - Institute of Botany
  • Okayama University
  • University of Science and Technology of China

Research output: Contribution to journalArticlepeer-review

Abstract

The oxygen-evolving center (OEC) of photosystem II (PSII) is characterized by a unique Mn4CaO5- or Mn4SrO5-cluster. Understanding the structure–function relationship and the catalytic mechanism of the OEC has been hindered by the lack of a rational model that precisely mimics both the static and dynamic structures of this biological cluster. Herein, we report a series of synthetic Mn4SrO4-clusters that closely mimic the main metal-oxide core, peripheral coordination sphere, redox properties, and the oxidation states of the four Mn ions in the Sr2+-containing OEC. Crystal structural measurements demonstrate that the presence of additional neutral ligands on Sr2+of the S1state Mn4SrO4-cluster can significantly modify the geometric conformation of the cluster, whereas the oxidation states and the dominant antiferromagnetic interactions of four Mn ions are largely undisturbed. EPR investigations and DFT calculations on the S2state Mn4SrO4-cluster demonstrate that the presence of additional neutral ligands can significantly affect the magnetic interactions of the cluster, converting the high-spin state giving rise to a g ≈ 4 EPR signal into a low-spin state with a g = 2 multiline EPR signal. Mass spectroscopic measurements show that a Mn4SrO5-cluster can be generated in solution from the synthetic Mn4SrO4-cluster. These observations provide chemical insights into the functional role of the redox-inactive metal ion (calcium or strontium), dynamic structural changes, and catalytic mechanism of its biological counterpart.

Original languageEnglish
Pages (from-to)41012-41022
Number of pages11
JournalJournal of the American Chemical Society
Volume147
Issue number44
DOIs
StatePublished - 5 Nov 2025
Externally publishedYes

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