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Saotome, K.

Publications and source records attributed to Saotome, K..

3 recordsLinked to original sources

Cryo-EM structure of the mechanically activated ion channel OSCA1.2

Introduction Introduction Main Author Contributions Expression constructs Protein expression and... Cryo-EM sample preparation and... Cryo-EM image processing Model building and refinement Molecular dynamics simulations Generation of mutant, cell... Electrophysiology Methods Data availability References Methods References Mechanically activated (MA) ion channels underlie touch, hearing, shear-stress sensing, and response to turgor pressure1,2. Previously reported as putative ion channels sensitive to osmolality3-5, members of ...

biophysics

Structure of the Human Volume Regulated Anion Channel

SWELL1 (LRRC8A) is the only essential subunit of the Volume Regulated Anion Channel (VRAC), which regulates cellular volume homeostasis and is activated by hypotonic solutions. SWELL1, together with four other LRRC8 family members, forms a vastly heterogeneous cohort of VRAC channels with different properties; however, SWELL1 alone is also functional. Here, we report a high-resolution cryo-electron microscopy structure of full-length human homo-hexameric SWELL1. The structure reveals a trimer of dimers assembly with symmetry mismatch between the pore-forming domain and the cytosolic leucine-rich repeat (LRR) domains. Importantly, mutational analysis demonstrates that a charged residue at the narrowest constriction of the homomeric channel is an important pore determinant of heteromeric VRAC. This structure provides a scaffold for further dissecting the heterogeneity and mechanism of activation of VRAC.

biochemistry

Swapping Of Transmembrane Domains In The Epithelial Calcium Channel TRPV6

Tetrameric ion channels have either swapped or non-swapped arrangements of the S1-S4 and pore domains. Here we show that mutations in the transmembrane domain of TRPV6 can result in conversion from a domain-swapped to non-swapped fold. These results reveal structural determinants of domain swapping and raise the possibility that a single ion channel subtype can fold into either arrangement in vivo, affecting its function in normal or disease states.

biochemistry