Exogenous methylglyoxal alleviates drought-induced ‘plant diabetes’ and leaf senescence in maize

Author:

Lin Yi-Hsuan1,Zhou Ya-Ning1,Liang Xiao-Gui1,Jin Yu-Ka1,Xiao Zu-Dong1,Zhang Ying-Jun1,Huang Cheng1,Hong Bo1,Chen Zhen-Yuan1,Zhou Shun-Li12ORCID,Shen Si12ORCID

Affiliation:

1. College of Agronomy and Biotechnology, China Agricultural University , Beijing 100193 , China

2. Innovation Center of Agricultural Technology for Lowland Plain of Hebei , Wuqiao 061802 , China

Abstract

Abstract Drought-induced leaf senescence is associated with high sugar levels, which bears some resemblance to the syndrome of diabetes in humans; however, the underlying mechanisms of such ‘plant diabetes’ on carbon imbalance and the corresponding detoxification strategy are not well understood. Here, we investigated the regulatory mechanism of exogenous methylglyoxal (MG) on ‘plant diabetes’ in maize plants under drought stress applied via foliar spraying during the grain-filling stage. Exogenous MG delayed leaf senescence and promoted photoassimilation, thereby reducing the yield loss induced by drought by 14%. Transcriptome and metabolite analyses revealed that drought increased sugar accumulation in leaves through inhibition of sugar transporters that facilitate phloem loading. This led to disequilibrium of glycolysis and overaccumulation of endogenous MG. Application of exogenous MG up-regulated glycolytic flux and the glyoxalase system that catabolyses endogenous MG and glycation end-products, ultimately alleviating ‘plant diabetes’. In addition, the expression of genes facilitating anabolism and catabolism of trehalose-6-phosphate was promoted and suppressed by drought, respectively, and exogenous MG reversed this effect, implying that trehalose-6-phosphate signaling in the mediation of ‘plant diabetes’. Furthermore, exogenous MG activated the phenylpropanoid biosynthetic pathway, promoting the production of lignin and phenolic compounds, which are associated with drought tolerance. Overall, our findings indicate that exogenous MG activates defense-related pathways to alleviate the toxicity derived from ‘plant diabetes’, thereby helping to maintain leaf function and yield production under drought.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Agriculture Research System

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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