Login / Signup

NAD + deficiency primes defense metabolism via 1 O 2 -escalated jasmonate biosynthesis in plants.

Yechun HongZongjun YuQian ZhouChunyu ChenYuqiong HaoZhen WangJian-Kang ZhuHongwei GuoAncheng C Huang
Published in: Nature communications (2024)
Nicotinamide adenine dinucleotide (NAD + ) is a redox cofactor and signal central to cell metabolisms. Disrupting NAD homeostasis in plant alters growth and stress resistance, yet the underlying mechanisms remain largely unknown. Here, by combining genetics with multi-omics, we discover that NAD + deficiency in qs-2 caused by mutation in NAD + biosynthesis gene-Quinolinate Synthase retards growth but induces biosynthesis of defense compounds, notably aliphatic glucosinolates that confer insect resistance. The elevated defense in qs-2 is resulted from activated jasmonate biosynthesis, critically hydroperoxidation of α-linolenic acid by the 13-lipoxygenase (namely LOX2), which is escalated via the burst of chloroplastic ROS-singlet oxygen ( 1 O 2 ). The NAD + deficiency-mediated JA induction and defense priming sequence in plants is recapitulated upon insect infestation, suggesting such defense mechanism operates in plant stress response. Hence, NAD homeostasis is a pivotal metabolic checkpoint that may be manipulated to navigate plant growth and defense metabolism for stress acclimation.
Keyphrases
  • cell wall
  • innate immune
  • plant growth
  • dna damage
  • stem cells
  • cell death
  • cell therapy
  • transcription factor
  • cell proliferation
  • mesenchymal stem cells
  • copy number
  • high frequency
  • smoking cessation
  • electron transfer