The specific glycerolipid composition is responsible for maintaining the membrane stability of Physcomitrella patens under dehydration stress

J Plant Physiol. 2022 Jan:268:153590. doi: 10.1016/j.jplph.2021.153590. Epub 2021 Dec 10.

Abstract

Land colonization is a major event in plant evolution. Little is known about the evolutionary characteristics of lipids during this process. Here, we proved that Physcomitrella patens, a bryophyte that appeared in the early evolution of terrestrial plants, has short-term desiccation resistance. The maintenance of membrane integrity is related to its specific glycerolipid composition and key genes for lipid metabolism. We analyzed 414 types of lipid molecules, and found that phospholipids accounted for 61.7%, mainly PC and PI; glycolipids accounted for only 26.5%, with a special MGDG molecular map. The most abundant MDGD, that is, MGDG34:6, contained rare 15- and 19-carbon acyl chains; the level of neutral lipids was higher. This was consistent with the results observed by TEM, with fewer lamellae and obvious lipid droplets. Slight dehydration accumulated a large number of TAG molecules, and severe dehydration degraded phospholipids and caused membrane leakage, but PA and MGDG fluctuated less. The key genes of lipid metabolism, DGAT and PAP, were actively transcribed, suggesting that PA was one of the main DAG sources for TAG synthesis. This work proves that Physcomitrella patens adopts high-constitutive PC and PI similar to plant seeds, abundant TAG, and its own specific MGDG to resist extreme dehydration. This result provides a new insight into the lipid evolution of early terrestrial plants against unfavorable terrestrial environments.

Keywords: Desiccation resistance; Glycerolipid; Leafyshoots; Lipid profiling; Physcomitrella patens; Rapid dehydration.

MeSH terms

  • Bryopsida* / chemistry
  • Cell Membrane / chemistry*
  • Desiccation*
  • Phospholipids / chemistry*
  • Seeds

Substances

  • Phospholipids