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Holland-Kaye, I.

Publications and source records attributed to Holland-Kaye, I..

2 recordsLinked to original sources

Structural insights into mitotic-centrosome assembly

Centrosomal material assembles rapidly in mitosis. In Drosophila, the coiled-coil protein Cnn forms a scaffold that recruits PCM clients; in C.elegans, SPD-5 plays an analogous role. Here we show that full-length Cnn and SPD-5 can both form spherical condensates in vitro, but that the interactions driving their assembly into scaffolds inside cells appear to diverge. We show that the Cnn PReM adopts a helical hairpin fold that autoinhibits CM2 binding but that phosphorylation appears to increase hairpin breathing to permit CM2 engagement and robust scaffold assembly. Phospho-blocking mutations prevent PReM-CM2 interactions and scaffold formation, whereas phospho-mimetic substitutions partially restore function. The human homologue CDK5RAP2 contains a CM2 domain that can partially substitute for fly CM2 in vivo and we identify a candidate CDK5RAP2 PReM region that forms macromolecular networks with human CM2 in vitro. By contrast, the putative PReM and CM2 regions of SPD-5 cannot substitute for their equivalent fly domains and they do not interact detectably, suggesting a distinct assembly mechanism in worms despite conserved PLK1-dependent control of PCM growth.

cell biology↗

Extracellular modulation of TREK-2 activity with nanobodies provides insights into the mechanism of K2P channel regulation

Potassium channels of the Two-Pore Domain (K2P) subfamily, KCNK1-KCNK18, play crucial roles in controlling the electrical activity of many different cell types and represent attractive therapeutic targets. However, the identification of highly selective small molecule drugs against these channels has been challenging due to the high degree of structural and functional conservation that exists not only between K2P channels, but across the whole K+ channel superfamily. To address the issue of selectivity, we generated camelid antibody fragments (nanobodies) against the TREK-2 (KCNK10) K2P K+ channel and identified selective binders including several that directly modulate channel activity. X-ray crystallography and CryoEM data of these nanobodies in complex with TREK-2 also reveal insights into their mechanisms of activation and inhibition via binding to the extracellular loops and Cap domain, as well as their suitability for immunodetection. It also facilitated design of a biparatropic inhibitory nanobody with markedly improved affinity and efficacy. These new tools therefore provide important insights into TREK channel gating and suggest alternative, highly selective approach to modulation of K2P channel activity via their extracellular domains.

biophysics↗