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Takaramoto, S.

Publications and source records attributed to Takaramoto, S..

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Significance of extended N-terminal region and a first motif residue in a third transmembrane helix of a novel pump-like cation channelrhodopsin HulaCCR

Channelrhodopsins are light-gated ion channels consisting of seven-transmembrane helices and a retinal chromophore, which are used as popular optogenetic tools for modulating neuronal activity. Cation channelrhodopsins (CCRs), first recognized as the photoreceptors in the chlorophyte Chlamydomonas reinhardtii, have since been identified in diverse species of green algae, as well in other unicellular eukaryotes. The CCRs from non-chlorophyte species are commonly referred to as bacteriorhodopsin-like channelrhodopsins, or BCCRs, as most of them feature the three characteristic amino acid residues of the "DTD motif" in the third transmembrane helix (TM3 or helix C) matching the canonical DTD motif of the well-studied archaeal light-driven proton pump bacteriorhodopsin. Here, we report characterization of HulaCCR1, a novel BCCR identified through metatranscriptomic analysis of a unicellular eukaryotic community in Lake Hula, Israel. Interestingly, HulaCCR1 has an ETD motif in which the first residue of the canonical motif is substituted for glutamate. Electrophysiological measurements of the wild-type and a mutant with a DTD motif of HulaCCR1 suggest the critical role of the first glutamate in spectral tuning and channel gating. Additionally, HulaCCR1 exhibits long extensions at the N- and C-termini. Photocurrents recorded from a truncated variant without the signal peptide predicted at the N-terminus were diminished, and membrane localization of the truncated variant significantly decreased, indicating that the signal peptide is important for membrane trafficking of HulaCCR1. These characteristics of HulaCCR1 would be related to a new biological significance in the original unidentified species, distinct from those known for other BCCRs.

biophysics↗

Structural basis for ion selectivity in potassium-selective channelrhodopsins

The KCR channelrhodopsins are recently-discovered light-gated ion channels with high K+ selectivity, a property that has attracted broad attention among biologists- due to intense interest in creating novel inhibitory tools for optogenetics leveraging this K+ selectivity, and due to the mystery of how this selectivity is achieved in the first place. Indeed, the molecular and structural mechanism for K+ selectivity in KCRs has remained especially puzzling since these 7-transmembrane retinal-binding proteins completely lack structural similarity with known K+ channels, which generally coordinate K+ in a precisely symmetric conduction pathway formed by a tight interface among multiple small monomeric channel subunits (presumably not an accessible mechanism for the large KCR rhodopsin proteins). Here we present the cryo-electron microscopy structures of two KCRs from Hyphochytrium catenoides with distinct spectral properties for light absorption and channel actuation, HcKCR1, and HcKCR2, at resolutions of 2.6 and 2.5 [A], respectively. Structural comparison revealed first an unusually-shaped retinal binding pocket which induces rotation of the retinal in HcKCR2, explaining the large spectral difference between HcKCR1 and 2. Next, our combined structural, electrophysiological, computational, and spectroscopic analyses revealed a new solution to the challenging problem of K+-selective transport. KCRs indeed do not exhibit the canonical tetrameric K+ selectivity filter that specifically coordinates dehydrated K+; instead, single KCR monomers form a size exclusion filter using aromatic residues at the extracellular side of the pore which inhibits passage of bulky hydrated ions. This unique feature allows KCRs to function as K+ channels under relevant physiological conditions, providing not only a novel mechanism for achieving high K+ permeability ratios in biological ion channels, but also a framework for designing the next generation of inhibitory optogenetic tools. In BriefThe first structures of K+-selective channelrhodopsins (HcKCR1 and 2) are determined, revealing a K+ selectivity mechanism distinctly different from canonical K+ channels. HighlightsO_LIThe cryo-EM structures of K+-selective channelrhodopsins, HcKCR1 and 2, in nanodisc C_LIO_LIConditions under which naturally-occurring microbial rhodopsins have a 6-s-cis retinal C_LIO_LIIdentification of key residues for high K+ permeability ratios C_LIO_LIThe unique K+ selectivity mechanism of KCRs C_LI

biophysics↗