This is a new R01 proposal entitled """"""""Structures of Eukaryotic K Channels and Mistic Action"""""""" will focus on two main goals: 1) understanding how Mistic works to permit insertion and topogenesis of eukaryotic Integral Membrane (IM) proteins into E. coli membrane, and 2) three dimensional structures of eukaryotic voltage-gated K (Kv) channels by x-ray crystallography methods. Our proposed study will aim to expand scope and direction to a newer level by focusing on molecular working of 6 transmembrane (TM)-helix voltage-gated K channels. In the first Aim, we propose to study action mechanisms of Mistic, a novel chaperone protein that permits autonomous insertion of eukaryotic IM proteins into E coli membrane. We will analyze protein interaction with a model cargo protein, KvPae in association with Mistic. This work will address the structural basis of membrane topogenesis of IM proteins and their conformational flexibility. In the second Aim, we propose to determine crystal structure of eukaryotic Kv channels. We will establish a FLAG-based antibody in combination with FLAG-engineered Kv channel proteins to facilitate their crystallization. Furthermore, we will analyze protein interface between the entire N-terminal domain of eukaryotic Kv channel, a Kv1.1 , and its transmembrane domain. We will analyze the conformational change by NMR spectroscopy to address the structural basis of mechanism of channel inactivation by its own inactivation subdomain and by protein-protein interaction. In summary, we will probe structural changes occurring in the intact isolated eukaryotic Kv channels primarily by a combination of x-ray crystallography and NMR spectroscopy methods. We will learn a great deal about structural mechanisms underlying voltage activation and inactivation of eukaryotic Kv channels.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
1R01GM074821-01
Application #
6958879
Study Section
Special Emphasis Panel (ZRG1-BCMB-B (02))
Program Officer
Chin, Jean
Project Start
2005-08-01
Project End
2009-07-31
Budget Start
2005-08-01
Budget End
2006-07-31
Support Year
1
Fiscal Year
2005
Total Cost
$360,620
Indirect Cost
Name
Salk Institute for Biological Studies
Department
Type
DUNS #
078731668
City
La Jolla
State
CA
Country
United States
Zip Code
92037
Kefala, Georgia; Ahn, Chihoon; Krupa, Martin et al. (2010) Structures of the OmpF porin crystallized in the presence of foscholine-12. Protein Sci 19:1117-25
Blain, Katherine Y; Kwiatkowski, Witek; Choe, Senyon (2010) The functionally active Mistic-fused histidine kinase receptor, EnvZ. Biochemistry 49:9089-95
Dvir, Hay; Choe, Senyon (2009) Bacterial expression of a eukaryotic membrane protein in fusion to various Mistic orthologs. Protein Expr Purif 68:28-33
Dvir, Hay; Lundberg, Matthew E; Maji, Samir K et al. (2009) Mistic: cellular localization, solution behavior, polymerization, and fibril formation. Protein Sci 18:1564-70
Kuo, Mario Meng-Chiang; Maslennikov, Innokentiy; Molden, Brent et al. (2008) The desensitization gating of the MthK K+ channel is governed by its cytoplasmic amino terminus. PLoS Biol 6:e223
Kefala, Georgia; Kwiatkowski, Witek; Esquivies, Luis et al. (2007) Application of Mistic to improving the expression and membrane integration of histidine kinase receptors from Escherichia coli. J Struct Funct Genomics 8:167-72
Kuo, Mario Meng-Chiang; Saimi, Yoshiro; Kung, Ching et al. (2007) Patch clamp and phenotypic analyses of a prokaryotic cyclic nucleotide-gated K+ channel using Escherichia coli as a host. J Biol Chem 282:24294-301
Roosild, Tarmo P; Vega, Mark; Castronovo, Samantha et al. (2006) Characterization of the family of Mistic homologues. BMC Struct Biol 6:10
Roosild, Tarmo P; Castronovo, Samantha; Choe, Senyon (2006) Structure of anti-FLAG M2 Fab domain and its use in the stabilization of engineered membrane proteins. Acta Crystallogr Sect F Struct Biol Cryst Commun 62:835-9