The preferential transport of NO3- by full-length Guillardia theta anion channelrhodopsin 1 is enhanced by its extended cytoplasmic domain

J Biol Chem. 2023 Nov;299(11):105305. doi: 10.1016/j.jbc.2023.105305. Epub 2023 Sep 29.

Abstract

Previous research of anion channelrhodopsins (ACRs) has been performed using cytoplasmic domain (CPD)-deleted constructs and therefore have overlooked the native functions of full-length ACRs and the potential functional role(s) of the CPD. In this study, we used the recombinant expression of full-length Guillardia theta ACR1 (GtACR1_full) for pH measurements in Pichia pastoris cell suspensions as an indirect method to assess its anion transport activity and for absorption spectroscopy and flash photolysis characterization of the purified protein. The results show that the CPD, which was predicted to be intrinsically disordered and possibly phosphorylated, enhanced NO3- transport compared to Cl- transport, which resulted in the preferential transport of NO3-. This correlated with the extended lifetime and large accumulation of the photocycle intermediate that is involved in the gate-open state. Considering that the depletion of a nitrogen source enhances the expression of GtACR1 in native algal cells, we suggest that NO3- transport could be the natural function of GtACR1_full in algal cells.

Keywords: anion transport; intrinsically disordered protein; ion channel; kinetics; membrane protein; photobiology; photoreceptor; protein expression; rhodopsin; transmembrane domain.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Anions / metabolism
  • Channelrhodopsins / metabolism
  • Cryptophyta* / metabolism
  • Ion Transport
  • Nitrates / metabolism

Substances

  • Anions
  • Channelrhodopsins
  • Nitrates