Arabidopsis PROTODERMAL FACTOR2 binds lysophosphatidylcholines and transcriptionally regulates phospholipid metabolism

Author:

Wojciechowska Izabela1,Mukherjee Thiya234ORCID,Knox‐Brown Patrick5ORCID,Hu Xueyun26ORCID,Khosla Aashima23ORCID,Subedi Bibek23ORCID,Ahmad Bilal23ORCID,Mathews Graham L.2,Panagakis Ashley A.2,Thompson Kyle A.2,Peery Sophie T.2,Szlachetko Jagoda1ORCID,Thalhammer Anja5ORCID,Hincha Dirk K.1,Skirycz Aleksandra17ORCID,Schrick Kathrin23ORCID

Affiliation:

1. Max Planck Institute of Molecular Plant Physiology 14476 Potsdam Germany

2. Division of Biology Kansas State University Manhattan KS 66506 USA

3. Molecular, Cellular and Developmental Biology Kansas State University Manhattan KS 66506 USA

4. Donald Danforth Plant Science Center Olivette MO 63132 USA

5. Physical Biochemistry University of Potsdam 14476 Potsdam Germany

6. Joint International Research Laboratory of Agriculture and Agri‐Product Safety of Ministry of Education of China Yangzhou University Yangzhou 225009 China

7. Department of Biochemistry and Molecular Biology Michigan State University East Lansing MI 48823 USA

Abstract

Summary Plant homeodomain leucine zipper IV (HD‐Zip IV) transcription factors (TFs) contain an evolutionarily conserved steroidogenic acute regulatory protein (StAR)‐related lipid transfer (START) domain. While the START domain is required for TF activity, its presumed role as a lipid sensor is not clear. Here we used tandem affinity purification from Arabidopsis cell cultures to demonstrate that PROTODERMAL FACTOR2 (PDF2), a representative member that controls epidermal differentiation, recruits lysophosphatidylcholines (LysoPCs) in a START‐dependent manner. Microscale thermophoresis assays confirmed that a missense mutation in a predicted ligand contact site reduces lysophospholipid binding. We additionally found that PDF2 acts as a transcriptional regulator of phospholipid‐ and phosphate (Pi) starvation‐related genes and binds to a palindromic octamer with consensus to a Pi response element. Phospholipid homeostasis and elongation growth were altered in pdf2 mutants according to Pi availability. Cycloheximide chase experiments revealed a role for START in maintaining protein levels, and Pi starvation resulted in enhanced protein destabilization, suggesting a mechanism by which lipid binding controls TF activity. We propose that the START domain serves as a molecular sensor for membrane phospholipid status in the epidermis. Our data provide insights toward understanding how the lipid metabolome integrates Pi availability with gene expression.

Funder

Agricultural Research Service

Division of Molecular and Cellular Biosciences

National Institute of General Medical Sciences

Johnson Cancer Research Center, Kansas State University

National Science Foundation

Publisher

Wiley

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A new START;New Phytologist;2024-07-30

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