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February 19, 2026Proceedings of the National Academy of Sciences2 citations

Conformational ensembles of the magnesium channel CorA reveal structural basis for channel gating

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SESatchal K. ErramilliKNKamil NosolKPKrzysztof J Pietrzak-Lichwa

Key Points

  • The aim is to unravel the structural basis of CorA channel gating and its regulation by intracellular magnesium levels.
  • Employed single-particle cryo-EM to determine structures of CorA in nanodiscs.
  • Utilized conformation-specific synthetic antibodies to stabilize structural differences.
  • Analyzed the relationship between conformational ensembles and magnesium concentration.
  • CorA exists as conformational ensembles with varying pore conformations.
  • Population size of these ensembles inversely relates to intracellular magnesium levels.
  • Asymmetric structural transitions affect the cytoplasmic domain and permeation pathway, controlling channel gating.

Abstract

In prokaryotes, CorA is the primary influx pathway for magnesium, a critical divalent cation in cellular physiology and biochemistry. Mechanistic studies show that homopentameric CorA is regulated through an intracellular Mg 2+ -dependent negative feedback loop, involving the asymmetric participation of individual subunits. To understand the connection between asymmetry and activation, we used single-particle cryo-EM to solve sixteen structures of nanodisc-reconstituted CorA. We utilized conformation-specific synthetic antibodies to stabilize subtle but significant conformational differences in the cryo-EM structures. Our results demonstrate that CorA exists as a set of conformational ensembles, where population size inversely correlates with intracellular Mg 2+ concentration. These ensembles include channels with a variety of pore conformations, both constricted and dilated, suggesting a spectrum of active CorA functional states. The ensembles connect asymmetric structural transitions in the cytoplasmic domain with conformational changes in the permeation pathway via an electrostatic network, ultimately controlling channel-gating events. We believe that these results establish a framework for understanding magnesium homeostasis in prokaryotic systems.

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Cite This Study

Erramilli et al. (2026) studied this question.

synapsesocial.com/papers/6996a84cecb39a600b3eedfdhttps://doi.org/10.1073/pnas.2512532123
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