PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 21, 2026The Plant Cell3 citations

Breakdown of lipid droplets by the triacylglycerol lipase SDP1 contributes to cuticle assembly in poplar

View Full Paper
LZLijuan ZhouYXYan XuRCRui Cao

Key Points

  • To investigate how breakdown of lipid droplets by SDP1 influences cuticle assembly in poplar.
  • Genetic disruption of PagSDP1 to assess TAG accumulation and cuticle thickness.
  • Evaluation of drought sensitivity in knockout variants of PagSDP1 and PagPXA1.
  • Analysis of fatty acid mobilization for cutin and wax biosynthesis under drought stress.
  • Disrupting PagSDP1 increased TAG accumulation and reduced cuticle thickness.
  • PagPXA1 knockout led to a thicker cuticle and improved drought resistance.
  • Drought stress enhanced the role of LD-derived fatty acids in increasing cutin levels.

Abstract

In eukaryotic cells, lipid droplets (LDs) serve as energy reservoirs by storing triacylglycerols (TAGs). Lipases such as Sugar Dependent 1 (SDP1) break down LDs to release free fatty acids (FAs), which are then transported into peroxisomes via Peroxisomal ABC-transporter 1 (PXA1) for β-oxidation. Previous studies have established that SDP1-derived FAs act as the primary energy source during essential physiological processes, including seed germination and energy deprivation under prolonged darkness. Here, we show that in poplar 84K (Populus alba x Populus tremula var. glandulosa), SDP1-generated FAs not only fuel β-oxidation but also contribute to cuticle formation, a vital protective layer preventing water loss. Genetic disruption of PagSDP1 resulted in increased TAG accumulation but a thinner cuticle with reduced cutin, leading to drought hypersensitivity. Conversely, PagPXA1 knockout increased cuticular thickness and drought resistance, suggesting that blocking peroxisomal entry redirects acyl chains toward cutin biosynthesis. Intriguingly, drought stress accentuates this metabolic reprogramming; under water deficit, LD-derived FAs not only bolster cutin levels but also fuel the wax biosynthetic machinery-a shift not observed under normal conditions. Furthermore, we identified the transcription factor PagABI5 as a master regulator of this partitioning. PagABI5 directly binds to the promoters of PagSDP1a and PagPXA1s, activating the former to mobilize LDs while suppressing the latter to prioritize structural lipid production over catabolic breakdown. Our findings reveal a role for LD homeostasis in structural lipid assembly, providing a sophisticated model for how trees modulate metabolic flux to enhance environmental resilience.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69be369a6e48c4981c6759ffhttps://doi.org/10.1093/plcell/koag083
Ask AI
Helpful
Bookmark
Share
View Full Paper