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January 23, 2026Advanced Science0 citationsOpen Access

Cryo‐EM Structures Reveal the Molecular Basis of Asymmetric Allosteric Activation by MMOB in the Hydroxylase of Soluble Methane Monooxygenase

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YHYunha HwangBRBumhan RyuSPSoyeon Park

Key Points

  • This research aims to elucidate the structural mechanisms behind MMOB's allosteric activation of sMMO's hydroxylase.
  • Utilized cryogenic electron microscopy (cryo-EM) for structural analysis of sMMO under near-native conditions.
  • Conducted 3D variability analysis to observe the MMOH–MMOB complex in solution.
  • Resolved the cryo-EM structure of the MMOH–1MMOB complex at 2.85 Å resolution.
  • Identified an asymmetric MMOH–MMOB complex and two distinct protomers: MMOB-bound and non-MMOB-bound.
  • Shortened Fe···Fe distance in the MMOB-bound protomer to 2.7 Å, favorable for O2 activation.
  • Confirmed that the γ-subunit stabilizes the resting state of the non-MMOB-bound protomer.

Abstract

ABSTRACT Soluble methane monooxygenase (sMMO) catalyzes the hydroxylation of methane at non‐heme di‐iron active sites under ambient conditions. The regulatory component (MMOB) is essential for catalytic activity, inducing conformational changes in the active site and facilitating substrate ingress in hydroxylase (MMOH). Advances in cryogenic electron microscopy (cryo‐EM) have enabled structural studies of sMMO under near‐native conditions. 3D variability analysis reveals that an asymmetric MMOH–MMOB complex predominates in solution, supporting a sequential binding mechanism. Here, we report a 2.85 Å‐resolution cryo‐EM structure of MMOH–1MMOB (H‐1B) complex, in which a single MMOB binds to MMOH and generates two distinct protomers: MMOB‐bound protomer (HB A , αβγB) and non‐MMOB‐bound protomer (HB B , αβγ). MMOB initiates an allosteric cascade beginning at the N ‐terminal region of the HB A β‐subunit and extending to the di‐iron active site. This structural shift shortens the Fe···Fe distance in HB A to 2.7 Å, consistent with a geometry conducive to O 2 activation, while HB B retains a 3.1 Å distance. The γ‐subunit modulates this asymmetry by stabilizing the resting HB B and facilitating the reorganization of HB A . These findings support an asymmetric catalytic cycle that allows continuous hydroxylation and promotes electron transfer, thereby providing a structural basis for future mechanistic studies.

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Cite This Study

Hwang et al. (2026) studied this question.

synapsesocial.com/papers/69730f59c8125b09b0d1f177https://doi.org/10.1002/advs.202517312
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