Bottom-up design of Ca<sup>2+</sup> channels from defined selectivity filter geometry.

Liu, Yulai; Weidle, Connor; Mihaljević, Ljubica; Watson, Joseph L; Li, Zhe; Yu, Le Tracy; Majumder, Sagardip; Borst, Andrew J et al. · Nature · 2025

basic_science · Level V

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Abstract

Native ion channels play key roles in biological systems, and engineered versions are widely used as chemogenetic tools and in sensing devices<sup>1,2</sup>. Protein design has been harnessed to generate pore-containing transmembrane proteins, but the design of selectivity filters with precise arrangements of amino acid side chains specific for a target ion, a crucial feature of native ion channels<sup>3</sup>, has been constrained by the lack of methods for placing the metal-coordinating residues with atomic-level precision. Here we describe a bottom-up RFdiffusion-based approach to construct Ca<sup>2+</sup> channels from defined selectivity filter residue geometries, and use this approach to design symmetric oligomeric channels with Ca<sup>2+</sup> selectivity filters having different coordination numbers and different geometries at the entrance of a wider pore buttressed by multiple transmembrane helices. The designed channel proteins assemble into homogeneous pore-containing particles and, for both tetrameric and hexameric ion-coordinating configurations, patch-clamp experiments show that the designed channels have higher conductances for Ca<sup>2+</sup> than for Na<sup>+</sup> and other divalent ions (Sr<sup>2+</sup> and Mg<sup>2+</sup>) that are eliminated after mutation of selectivity filter residues. Cryogenic electron microscopy indicates that the design method has high accuracy: the structure of the hexameric Ca<sup>2+</sup> channel is nearly identical to that of the design model. Our bottom-up design approach now enables the testing of hypotheses relating filter geometry to ion selectivity by direct construction, and provides a roadmap for creating selective ion channels for a wide range of applications.

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