Structural model of the CaV1.2 pore

被引:20
|
作者
Stary, Anna [1 ,2 ]
Shafrir, Yinon [3 ]
Hering, Steffen [2 ]
Wolschann, Peter [1 ]
Guy, H. Robert [3 ]
机构
[1] Univ Vienna, Inst Theoret Chem, Vienna, Austria
[2] Univ Vienna, Inst Pharmacol & Toxicol, Vienna, Austria
[3] NCI, Cell Biol Lab, Natl Inst Hlth, Bethesda, MD 20892 USA
基金
奥地利科学基金会;
关键词
homology model; Ca(V)1.2 pore structure; domain arrangement; MD simulation; open conformation;
D O I
10.4161/chan.2.3.6158
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Understanding the structure and functional mechanisms of voltage - gated calcium channels remains a major task in membrane biophysics. In the absence of three dimensional structures, homology modeling techniques are the method of choice, to address questions concerning the structure of these channels. We have developed models of the open Ca(V)1.2 pore, based on the crystal structure of the mammalian voltage - gated potassium channel K(V)1.2 and a model of the bacterial sodium channel NaChBac. Our models are developed to be consistent with experimental data and modeling criteria. The models highlight major differences between voltage - gated potassium and calcium channels in the P segments, as well as the inner pore helices. Molecular dynamics simulations support the hypothesis of a clockwise domain arrangement and experimental observations of asymmetric calcium channel behavior. In the accompanying paper these models were used to study structural effects of a channelopathy mutation.
引用
收藏
页码:210 / 215
页数:6
相关论文
共 50 条
  • [41] CaVβ-subunit dependence of forward and reverse trafficking of CaV1.2 calcium channels
    Laurent Ferron
    Sydney D. Guderyan
    Ethan J. Smith
    Gerald W. Zamponi
    Molecular Brain, 15
  • [42] Cell surface abundance of CaV1.2 is regulated by CaVβ-depending endocytic turnover
    Conrad, R.
    Kortzak, D.
    Hidalgo, P.
    ACTA PHYSIOLOGICA, 2019, 227
  • [43] Regulation of CaV1.2 current:: Interaction with intracellular molecules
    Kobayashi, Takeshi
    Yamada, Yoichi
    Fukao, Mitsuhiro
    Tsutsuura, Masaaki
    Tohse, Noritsugu
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2007, 103 (04) : 347 - 353
  • [44] Remodeling of human Cav1.2 calcium channels in atherosclerosis
    Tiwari, Swasti
    Zhang, Yuwei
    Heller, Jennifer
    Abernethy, Darrell R.
    Soldatov, Nikolai M.
    BIOPHYSICAL JOURNAL, 2007, : 129A - 130A
  • [45] Unraveled roles of Cav1.2 in proliferation and stemness of ameloblastoma
    Li, Shujin
    Lee, Dong-Joon
    Kim, Hyun-Yi
    Kim, Jun-Young
    Jung, Young-Soo
    Jung, Han-Sung
    CELL AND BIOSCIENCE, 2022, 12 (01):
  • [46] Mapping the CaV1.2 Interactome in Rat Heart in vivo
    Kushner, Jared S.
    Rodriques, Aaron
    Zakharov, Sergey
    Katchman, Alexander
    Fanourakis, Stavros
    Marx, Steven
    CIRCULATION, 2022, 146
  • [47] Probing the Pathogenic Mechanisms Underlying CaV1.2 Channelopathies
    Bamgboye, Moradeke
    Traficante, Maria
    Herold, Kevin
    Owoyemi, Josiah
    Dick, Ivy
    CIRCULATION RESEARCH, 2020, 127
  • [48] CaV1.2 sparklets in heart and vascular smooth muscle
    Navedo, Manuel F.
    Santana, Luis F.
    JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2013, 58 : 67 - 76
  • [49] Cardiac CaV1.2 Signature Induced by Mineralocorticoid in Vessels
    Boyano, Debora Falcon
    Mesquita, Thassio R.
    Salazar-Enciso, Rogelio
    Kobeissy, Hussein
    Rueda, Angelica
    Lopez-Andres, Natalia
    Gomez Gomez, Ana Maria
    Benitah, Jean-Pierre
    BIOPHYSICAL JOURNAL, 2018, 114 (03) : 627A - 627A
  • [50] Cavβ-subunit dependence of forward and reverse trafficking of Cav1.2 calcium channels
    Ferron, Laurent
    Guderyan, Sydney D.
    Smith, Ethan J.
    Zamponi, Gerald W.
    MOLECULAR BRAIN, 2022, 15 (01)