Plant phospholipase D: novel structure, regulatory mechanism, and multifaceted functions with biotechnological application

Crit Rev Biotechnol. 2022 Feb;42(1):106-124. doi: 10.1080/07388551.2021.1924113. Epub 2021 Jun 24.

Abstract

Phospholipases D (PLDs) are important membrane lipid-modifying enzymes in eukaryotes. Phosphatidic acid, the product of PLD activity, is a vital signaling molecule. PLD-mediated lipid signaling has been the subject of extensive research leading to discovery of its crystal structure. PLDs are involved in the pathophysiology of several human diseases, therefore, viewed as promising targets for drug design. The availability of a eukaryotic PLD crystal structure will encourage PLD targeted drug designing. PLDs have been implicated in plants response to biotic and abiotic stresses. However, the molecular mechanism of response is not clear. Recently, several novel findings have shown that PLD mediated modulation of structural and developmental processes, such as: stomata movement, root growth and microtubule organization are crucial for plants adaptation to environmental stresses. Involvement of PLDs in regulating membrane remodeling, auxin mediated alteration of root system architecture and nutrient uptake to combat nitrogen and phosphorus deficiencies and magnesium toxicity is established. PLDs via vesicle trafficking modulate cytoskeleton and exocytosis to regulate self-incompatibility (SI) signaling in flowering plants, thereby contributes to plants hybrid vigor and diversity. In addition, the important role of PLDs has been recognized in biotechnologically important functions, including oil/TAG synthesis and maintenance of seed quality. In this review, we describe the crystal structure of a plant PLD and discuss the molecular mechanism of catalysis and activity regulation. Further, the role of PLDs in regulating plant development under biotic and abiotic stresses, nitrogen and phosphorus deficiency, magnesium ion toxicity, SI signaling and pollen tube growth and in important biotechnological applications has been discussed.

Keywords: Phospholipase D; abiotic stress; biotechnological application; biotic stress; crystal structure; lipid signaling; nutrient deficiency; regulation; self-incompatibility.

Publication types

  • Review

MeSH terms

  • Phosphatidic Acids
  • Phospholipase D*
  • Plant Development
  • Plants / enzymology*
  • Stress, Physiological

Substances

  • Phosphatidic Acids
  • Phospholipase D