| Literature DB >> 31866202 |
Petra Marhava1, Ana Cecilia Aliaga Fandino1, Samuel W H Koh1, Adriana Jelínková2, Martina Kolb3, Dorina P Janacek3, Alice S Breda1, Pietro Cattaneo1, Ulrich Z Hammes3, Jan Petrášek2, Christian S Hardtke4.
Abstract
Cell polarity is a key feature in the development of multicellular organisms. For instance, asymmetrically localized plasma-membrane-integral PIN-FORMED (PIN) proteins direct transcellular fluxes of the phytohormone auxin that govern plant development. Fine-tuned auxin flux is important for root protophloem sieve element differentiation and requires the interacting plasma-membrane-associated BREVIS RADIX (BRX) and PROTEIN KINASE ASSOCIATED WITH BRX (PAX) proteins. We observed "donut-like" polar PIN localization in developing sieve elements that depends on complementary, "muffin-like" polar localization of BRX and PAX. Plasma membrane association and polarity of PAX, and indirectly BRX, largely depends on phosphatidylinositol-4,5-bisphosphate. Consistently, mutants in phosphatidylinositol-4-phosphate 5-kinases (PIP5Ks) display protophloem differentiation defects similar to brx mutants. The same PIP5Ks are in complex with BRX and display "muffin-like" polar localization. Our data suggest that the BRX-PAX module recruits PIP5Ks to reinforce PAX polarity and thereby the polarity of all three proteins, which is required to maintain a local PIN minimum.Entities:
Keywords: Arabidopsis; DRP1A; PIP5K1; PIP5K2; endocytosis; phloem; polar auxin transport; polarity; protophloem; root
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Year: 2019 PMID: 31866202 DOI: 10.1016/j.devcel.2019.11.015
Source DB: PubMed Journal: Dev Cell ISSN: 1534-5807 Impact factor: 12.270