Back

A nanodomain anchored-scaffolding complex is required for PI4K? function and localization in plants

Jaillais, Y.; Noack, L. C.; Bayle, V.; Armengot, L.; Rozier, F.; Mamode-Cassim, A.; Stevens, F. D.; Caillaud, M.-C.; Munnik, T.; Mongrand, S.

2020-12-09 plant biology
10.1101/2020.12.08.415711 bioRxiv
Show abstract

Phosphoinositides are low-abundant lipids that participate in the acquisition of membrane identity through their spatiotemporal enrichment in specific compartments. PI4P accumulates at the plant plasma membrane driving its high electrostatic potential, and thereby facilitating interactions with polybasic regions of proteins. PI4K1 has been suggested to produce PI4P at the plasma membrane, but how it is recruited to this compartment is unknown. Here, we pin-point the mechanism that tethers PI4K1 to the plasma membrane via a nanodomain-anchored scaffolding complex. We identified that PI4K1 is part of a complex composed of proteins from the NO-POLLEN-GERMINATION, EFR3-OF-PLANTS, and HYCCIN-CONTAINING families. Comprehensive knock-out and knock-down strategies revealed that subunits of the PI4K1 complex are essential for pollen, embryonic and post-embryonic development. We further found that the PI4K1 complex is immobilized in plasma membrane nanodomains. Using synthetic mis-targeting strategies, we demonstrate that a combination of lipid anchoring and scaffolding localizes PI4K1 to the plasma membrane, which is essential for its function. Together, this work opens new perspectives on the mechanisms and function of plasma membrane nanopatterning by lipid kinases.

Matching journals

The top 3 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.