Pistil-derived lipids influence pollen tube growth and male fertility in Arabidopsis thaliana

Author:

Song Jingpu1ORCID,Mavraganis Ioannis1ORCID,Shen Wenyun1ORCID,Yang Hui1ORCID,Patterson Nii1ORCID,Wang Liping2ORCID,Xiang Daoquan1ORCID,Cui Yuhai34ORCID,Zou Jitao1ORCID

Affiliation:

1. Aquatic and Crop Resource Development Research Centre, National Research Council of Canada , Saskatoon, Saskatchewan , Canada S7N 0W9

2. Department of Molecular and Cellular Biology, University of Guelph , Guelph, ON , Canada N1G 2W1

3. London Research and Development Centre, Agriculture and Agri-Food Canada , London, ON , Canada N5V 4T3

4. Department of Biology, Western University , London, ON , Canada N6A 5B7

Abstract

Abstract Pollen germination and pollen tube elongation require rapid phospholipid production and remodeling in membrane systems that involve both de novo synthesis and turnover. Phosphatidic acid phosphohydrolase (PAH) and lysophosphatidylcholine acyltransferase (LPCAT) are 2 key enzymes in membrane lipid maintenance. PAH generates diacylglycerol (DAG), a necessary precursor for the de novo synthesis of phosphatidylcholine (PC), while LPCAT reacylates lysophosphatidylcholine to PC and plays an essential role in the remodeling of membrane lipids. In this study, we investigated the synthetic defects of pah and lpcat mutations in sexual reproduction of Arabidopsis (Arabidopsis thaliana) and explored the prospect of pistil lipid provision to pollen tube growth. The combined deficiencies of lpcat and pah led to decreased pollen tube growth in the pistil and reduced male transmission. Interestingly, pistils of the lipid mutant dgat1 ameliorated the male transmission deficiencies of pah lpcat pollen. In contrast, pollination with a nonspecific phospholipase C (NPC) mutant exacerbated the fertilization impairment of the pah lpcat pollen. Given the importance of DAG in lipid metabolism and its contrasting changes in the dgat1 and npc mutants, we further investigated whether DAG supplement in synthetic media could influence pollen performance. DAG was incorporated into phospholipids of germinating pollen and stimulated pollen tube growth. Our study provides evidence that pistil-derived lipids contribute to membrane lipid synthesis in pollen tube growth, a hitherto unknown role in synergistic pollen–pistil interactions.

Funder

National Research Council

Publisher

Oxford University Press (OUP)

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