6u9t Citations

Selectivity filter ion binding affinity determines inactivation in a potassium channel.

Proc Natl Acad Sci U S A 117 29968-29978 (2020)
Related entries: 6u9p, 6u9y, 6u9z

Cited: 15 times
EuropePMC logo PMID: 33154158

Abstract

Potassium channels can become nonconducting via inactivation at a gate inside the highly conserved selectivity filter (SF) region near the extracellular side of the membrane. In certain ligand-gated channels, such as BK channels and MthK, a Ca2+-activated K+ channel from Methanobacterium thermoautotrophicum, the SF has been proposed to play a role in opening and closing rather than inactivation, although the underlying conformational changes are unknown. Using X-ray crystallography, identical conductive MthK structures were obtained in wide-ranging K+ concentrations (6 to 150 mM), unlike KcsA, whose SF collapses at low permeant ion concentrations. Surprisingly, three of the SF's four binding sites remained almost fully occupied throughout this range, indicating high affinities (likely submillimolar), while only the central S2 site titrated, losing its ion at 6 mM, indicating low K+ affinity (∼50 mM). Molecular simulations showed that the MthK SF can also collapse in the absence of K+, similar to KcsA, but that even a single K+ binding at any of the SF sites, except S4, can rescue the conductive state. The uneven titration across binding sites differs from KcsA, where SF sites display a uniform decrease in occupancy with K+ concentration, in the low millimolar range, leading to SF collapse. We found that ions were disfavored in MthK's S2 site due to weaker coordination by carbonyl groups, arising from different interactions with the pore helix and water behind the SF. We conclude that these differences in interactions endow the seemingly identical SFs of KcsA and MthK with strikingly different inactivating phenotypes.

Reviews citing this publication (2)

  1. Molecular Mechanisms for Bacterial Potassium Homeostasis. Stautz J, Hellmich Y, Fuss MF, Silberberg JM, Devlin JR, Stockbridge RB, Hänelt I. J Mol Biol 433 166968 (2021)
  2. Polycystin Channel Complexes. Esarte Palomero O, Larmore M, DeCaen PG. Annu Rev Physiol 85 425-448 (2023)

Articles citing this publication (13)

  1. Structural basis for C-type inactivation in a Shaker family voltage-gated K+ channel. Reddi R, Matulef K, Riederer EA, Whorton MR, Valiyaveetil FI. Sci Adv 8 eabm8804 (2022)
  2. Thermodynamics of ion binding and occupancy in potassium channels. Jing Z, Rackers JA, Pratt LR, Liu C, Rempe SB, Ren P. Chem Sci 12 8920-8930 (2021)
  3. Computational study of non-conductive selectivity filter conformations and C-type inactivation in a voltage-dependent potassium channel. Li J, Shen R, Rohaim A, Mendoza Uriarte R, Fajer M, Perozo E, Roux B. J Gen Physiol 153 e202112875 (2021)
  4. Ion-dependent structure, dynamics, and allosteric coupling in a non-selective cation channel. Lewis A, Kurauskas V, Tonelli M, Henzler-Wildman K. Nat Commun 12 6225 (2021)
  5. A distinct mechanism of C-type inactivation in the Kv-like KcsA mutant E71V. Rohaim A, Vermeulen BJA, Li J, Kümmerer F, Napoli F, Blachowicz L, Medeiros-Silva J, Roux B, Weingarth M. Nat Commun 13 1574 (2022)
  6. A selectivity filter mutation provides insights into gating regulation of a K+ channel. Friesacher T, Reddy HP, Bernsteiner H, Carlo Combista J, Shalomov B, Bera AK, Zangerl-Plessl EM, Dascal N, Stary-Weinzinger A. Commun Biol 5 345 (2022)
  7. Full opening of helix bundle crossing does not lead to NaK channel activation. Kurauskas V, Tonelli M, Henzler-Wildman K. J Gen Physiol 154 e202213196 (2022)
  8. Interactions between selectivity filter and pore helix control filter gating in the MthK channel. Kopec W, Thomson AS, de Groot BL, Rothberg BS. J Gen Physiol 155 e202213166 (2023)
  9. Structures of Gating Intermediates in a K+ channel. Reddi R, Matulef K, Riederer E, Moenne-Loccoz P, Valiyaveetil FI. J Mol Biol 433 167296 (2021)
  10. Calcium-gated potassium channel blockade via membrane-facing fenestrations. Fan C, Flood E, Sukomon N, Agarwal S, Allen TW, Nimigean CM. Nat Chem Biol (2023)
  11. Ion Conduction Mechanisms in Potassium Channels Revealed by Permeation Cycles. Lam CK, de Groot BL. J Chem Theory Comput 19 2574-2589 (2023)
  12. Molecular Events behind the Selectivity and Inactivation Properties of Model NaK-Derived Ion Channels. Giudici AM, Renart ML, Coutinho A, Morales A, González-Ros JM, Poveda JA. Int J Mol Sci 23 9246 (2022)
  13. Probing Ion Configurations in the KcsA Selectivity Filter with Single-Isotope Labels and 2D IR Spectroscopy. Ryan MJ, Gao L, Valiyaveetil FI, Zanni MT, Kananenka AA. J Am Chem Soc 145 18529-18537 (2023)