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Published on: March 11, 2021
Probing ion binding in the selectivity filter of the Cav1.1 channel with molecular dynamics
Junliang Zhu1, Hu Qiu1, Wanlin Guo1
1Key Laboratory for Intelligent Nano Materials and Devices of the Ministry of Education, State Key Laboratory of Mechanics and Control of Mechanical Structures, Institute for Frontier Science, Nanjing University of Aeronautics and Astronautics, Nanjing, China.
Abstract:
Cav1.1 is the voltage-gated calcium channel essential for the contraction of skeletal muscles upon membrane potential changes. Structural determination of the Cav1.1 channel opens the avenue toward understanding of the structure-function relationship of voltage-gated calcium channels. Here, we show that there exist two Ca2+-binding sites, termed S1 and S2, within the selectivity filter of Cav1.1 through extensive molecular dynamics simulations on various initial ion arrangement configurations. The formation of both binding sites is associated with the four Glu residues (Glu292/614/1014/1323) that constitute the so-called EEEE locus. At the S1 site near the extracellular side, the Ca2+ ion is coordinated with the negatively charged carboxylic groups of these Glu residues and of the Asp615 residue either in a direct way or via an intermediate water molecule. At the S2 site, Ca2+ binding shows two distinct states: an upper state involving two out of the four Glu residues in the EEEE locus and a lower state involving only one Glu residue. In addition, there exist two recruitment sites for Ca2+ above the entrance of the filter. These findings promote the understanding of mechanism for ion permeation and selectivity in calcium channels.
Insights
Researchers identified two calcium (Ca2+) binding sites, S1 and S2, within the Ca v1.1 channel
Area of Science:
- Biophysics
- Molecular Biology
- Structural Biology
Background:
- Ca v1.1 is crucial for skeletal muscle contraction.
- Understanding its structure-function relationship is key for voltage-gated calcium channels.
Purpose of the Study:
- To elucidate the Ca2+ binding sites within the Ca v1.1 channel's selectivity filter.
- To understand the role of specific residues in ion binding and permeation.
Main Methods:
- Extensive molecular dynamics simulations were performed.
- Various initial ion configurations were analyzed.
Main Results:
- Two Ca2+ binding sites (S1 and S2) were identified in the selectivity filter.
- The EEEE locus (four Glu residues) is critical for Ca2+ binding at both sites.
- S1 involves direct or water-mediated coordination with Glu and Asp residues.
- S2 exhibits two states (upper and lower) involving one or two Glu residues.
- Two additional Ca2+ recruitment sites were found at the filter entrance.
Conclusions:
- The identified Ca2+ binding sites and their interactions provide insights into ion permeation and selectivity mechanisms.
- This structural understanding advances the knowledge of voltage-gated calcium channel function.
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