Three distinct structural environments of a transmembrane domain in the inwardly rectifying potassium channel ROMK1 defined by perturbation.
- 19 December 1995
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 92 (26) , 12046-12049
- https://doi.org/10.1073/pnas.92.26.12046
Abstract
To probe the protein environment of an ion channel, we have perturbed the structure of a transmembrane domain by substituting side chains with those of two different sizes by using site-specific mutagenesis. We have used Trp and Ala as a high- and a low-impact perturbation probe, respectively, to replace each of 18 consecutive residues within the putative second transmembrane segment, M2, of an inwardly rectifying potassium channel, ROMK1. Our rationale is that a change in the channel function as a consequence of these mutations at a particular position will reflect the structural environment of the altered side chain. Each position can then be assigned to one of three classes of environments, as grated by different levels of perturbation: very tolerant (channel functions with both Trp and Ala substitutions), tolerant (function preserved with Ala but not with Trp substitution), and intolerant (either Ala or Trp substitution destroys function). We identify the very tolerant environment as being lipid-facing, tolerant as protein-interior-facing, and intolerant as pore-facing. We observe a strikingly ordered pattern of perturbation of all three environmental classes. This result indicates that M2 is a straight alpha-helix.Keywords
This publication has 37 references indexed in Scilit:
- Silver as a Probe of Pore-Forming Residues in a Potassium ChannelScience, 1995
- Images of purified Shaker potassium channelsCurrent Biology, 1994
- Structure of the membrane channel porin from Rhodopseudomonas blastica at 2.0 Å resolutionProtein Science, 1994
- The Role of Backbone Flexibility in the Accommodation of Variants That Repack the Core of T4 LysozymeScience, 1993
- Cloning and expression of an inwardly rectifying ATP-regulated potassium channelNature, 1993
- Structural and energetic consequences of disruptive mutations in a protein coreBiochemistry, 1992
- Determination of the subunit stoichiometry of a voltage-activated potassium channelNature, 1991
- Site-directed mutagenesis by overlap extension using the polymerase chain reactionGene, 1989
- Cloning of Genomic and Complementary DNA from Shaker , a Putative Potassium Channel Gene from DrosophilaScience, 1987
- Knowledge-based prediction of protein structures and the design of novel moleculesNature, 1987