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Deciphering Molecular Mechanisms and Intervening in Physiological and Pathophysiological Processes of Ca2+ Signaling Mechanisms Using Optogenetic Tools

期刊

CELLS
卷 10, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/cells10123340

关键词

ion channels; calcium signaling; optogenetics; opsins; CRAC channel; light-sensitive Ca2+ permeable channels

资金

  1. National Institutes of Health [R01-GM129325]
  2. Office of Cyber Infrastructure and Computational Biology, National Institute of Allergy and Infectious Diseases
  3. Austrian Science Fund (FWF)

向作者/读者索取更多资源

Calcium ion channels play crucial roles in various biological functions and their dysfunction can lead to diseases. Traditional techniques have limitations in understanding the structure-function relationship of ion channels, which can be partially overcome by optogenetics. Optogenetics has significantly advanced our understanding of Ca2+ signaling proteins and their manipulation in biological processes.
Calcium ion channels are involved in numerous biological functions such as lymphocyte activation, muscle contraction, neurotransmission, excitation, hormone secretion, gene expression, cell migration, memory, and aging. Therefore, their dysfunction can lead to a wide range of cellular abnormalities and, subsequently, to diseases. To date various conventional techniques have provided valuable insights into the roles of Ca2+ signaling. However, their limited spatiotemporal resolution and lack of reversibility pose significant obstacles in the detailed understanding of the structure-function relationship of ion channels. These drawbacks could be partially overcome by the use of optogenetics, which allows for the remote and well-defined manipulation of Ca2+-signaling. Here, we review the various optogenetic tools that have been used to achieve precise control over different Ca2+-permeable ion channels and receptors and associated downstream signaling cascades. We highlight the achievements of optogenetics as well as the still-open questions regarding the resolution of ion channel working mechanisms. In addition, we summarize the successes of optogenetics in manipulating many Ca2+-dependent biological processes both in vitro and in vivo. In summary, optogenetics has significantly advanced our understanding of Ca2+ signaling proteins and the used tools provide an essential basis for potential future therapeutic application.

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