4.8 Article

Reconstitution of CO2 Regulation of SLAC1 Anion Channel and Function of CO2-Permeable PIP2;1 Aquaporin as CARBONIC ANHYDRASE4 Interactor

期刊

PLANT CELL
卷 28, 期 2, 页码 568-582

出版社

AMER SOC PLANT BIOLOGISTS
DOI: 10.1105/tpc.15.00637

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资金

  1. National Science Foundation [MCB1414339]
  2. National Institutes of Health [GM060396-ES010337, U01-GM111251]
  3. China National Natural Science Foundation [31271515]
  4. Fundamental Research Funds for the Central Universities [2662015PY179]
  5. 1000-talents Plan for young researchers from China
  6. American Heart Association Postdoctoral Fellowships [AHA09POST2060873, AHA11POST7670014]
  7. Office of Naval Research Grants [N00014-11-1-0889, N00014-14-1-0716, N00014-15-1-2060]
  8. Meyer/Scarpa Chair
  9. Div Of Molecular and Cellular Bioscience
  10. Direct For Biological Sciences [1616236] Funding Source: National Science Foundation

向作者/读者索取更多资源

Dark respiration causes an increase in leaf CO2 concentration (Ci), and the continuing increases in atmospheric [CO2] further increases Ci. Elevated leaf CO2 concentration causes stomatal pores to close. Here, we demonstrate that high intracellular CO2/HCO3- enhances currents mediated by the Arabidopsis thaliana guard cell S-type anion channel SLAC1 upon coexpression of any one of the Arabidopsis protein kinases OST1, CPK6, or CPK23 in Xenopus laevis oocytes. Split-ubiquitin screening identified the PIP2;1 aquaporin as an interactor of the beta CA4 carbonic anhydrase, which was confirmed in split luciferase, bimolecular fluorescence complementation, and coimmunoprecipitation experiments. PIP2;1 exhibited CO2 permeability. Mutation of PIP2;1 in planta alone was insufficient to impair CO2- and abscisic acid-induced stomatal closing, likely due to redundancy. Interestingly, coexpression of beta CA4 and PIP2;1 with OST1-SLAC1 or CPK6/23-SLAC1 in oocytes enabled extracellular CO2 enhancement of SLAC1 anion channel activity. An inactive PIP2;1 point mutation was identified that abrogated water and CO2 permeability and extracellular CO2 regulation of SLAC1 activity. These findings identify the CO2-permeable PIP2;1 as key interactor of bCA4 and demonstrate functional reconstitution of extracellular CO2 signaling to ion channel regulation upon coexpression of PIP2;1, beta CA4, SLAC1, and protein kinases. These data further implicate SLAC1 as a bicarbonate-responsive protein contributing to CO2 regulation of S-type anion channels.

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