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Voltage-gated cation channels are crucial membrane proteins responsible for the electrical activity in excitable nerve, muscle and cardiac tissue. These channels respond to changes in the membrane potential via conformational changes in their voltage-sensing domains (VSDs) that lead to the opening and closing of the ion conduction pore. Since alternative states of the VSDs are difficult to capture via experimental methods, we investigated the application of AlphaFold2 and subsampling of its multiple sequence alignment input to computationally predict structures across a range of intermediate and endpoint states. By generating 600 models for 32 members of the voltage-gated cation channel superfamily we show that AlphaFold2 is capable of predicting diverse structures of the VSDs that could represent activated, deactivated and intermediate conformations with more diversity seen for some VSD families compared to others. Modeling the full sequence of pseudo-tetrameric channels also produced a range of heterogenous states in the pore and intracellular regions representative of local conformational changes and key secondary structural transitions. However, we observe that the global conformational coupling is limited across models, as different functional domains adopt physiologically incompatible states. Although short molecular dynamics simulations of a subset of the models suggest they are structurally plausible conformations, there are some incongruities between certain generated models and resolved cryo-EM structures. Further validation is required to confirm their structural and functional relevance.
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http://dx.doi.org/10.1016/j.bpj.2025.08.033 | DOI Listing |
J Phys Chem B
September 2025
School of Science, RMIT University, Melbourne 3000, Australia.
Pentameric ligand-gated ion channels control synaptic neurotransmission via an allosteric mechanism, whereby agonist binding induces global protein conformational changes that open an ion-conducting pore. For the proton-activated bacterial () ligand-gated ion channel (GLIC), high-resolution structures are available in multiple conformational states. We used a library of atomistic molecular dynamics (MD) simulations to study conformational changes and to perform dynamic network analysis to elucidate the communication pathways underlying the gating process.
View Article and Find Full Text PDFAdv Sci (Weinh)
September 2025
Department of Otolaryngology-Head and Neck Surgery, Stanford University, Palo Alto, 94304, USA.
The plasma membrane is actively regulated by lipid transporters that create electrochemical gradients between leaflets, and passively by scramblases that dissipate these gradients. Membrane properties such as lipid packing are critical for the proper function of transmembrane proteins, particularly mechanosensitive ion channels. Mechanosensation is a key component of many sensory processes including balance, and hearing.
View Article and Find Full Text PDFbioRxiv
August 2025
Department of Physics & Astronomy, Johns Hopkins University.
The α7-nicotinic acetylcholine receptor (α7-nAChR) is a cation-selective member of the superfamily of Cys-loop receptors. Ubiquitously expressed throughout the body of vertebrate animals, this pentameric ligand-gated ion channel participates in a wide range of physiological phenomena - as diverse as synaptic transmission and the control of excessive inflammation - and is an attractive therapeutic target for novel ligands. Although notable efforts have been made to understand this receptor-channel in terms of function and structure, many questions remain unanswered despite the molecular simplicity of its homomeric assembly.
View Article and Find Full Text PDFBiophys J
August 2025
Division of Biomedical Science and Biochemistry, Research School of Biology, Australian National University, Canberra, ACT 2601, Australia. Electronic address:
Voltage-gated cation channels are crucial membrane proteins responsible for the electrical activity in excitable nerve, muscle and cardiac tissue. These channels respond to changes in the membrane potential via conformational changes in their voltage-sensing domains (VSDs) that lead to the opening and closing of the ion conduction pore. Since alternative states of the VSDs are difficult to capture via experimental methods, we investigated the application of AlphaFold2 and subsampling of its multiple sequence alignment input to computationally predict structures across a range of intermediate and endpoint states.
View Article and Find Full Text PDFAnat Rec (Hoboken)
August 2025
Division of Anatomy, Department of Oral Growth and Development, School of Dentistry, Health Sciences University of Hokkaido, Hokkaido, Japan.
Annexins (ANXAs) are a calcium-dependent, membrane-bound protein superfamily involved in the transport of matrix vesicle ion channels and Ca ions, which are essential for early hard tissue calcification. However, the localization of ANXAs in dentin calcification is unknown. To analyze the localization and function of ANXA1, 2, 5, and 6 in odontoblast differentiation and dentin calcification, we examined the immunohistochemical localization of ANXAs in developing rat molars.
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