Metabolic adaptation of wheat grains contributes to a stable filling rate under heat stress
Author(s) -
Xiaoming Wang,
Lijiang Hou,
Yunze Lu,
Bingjin Wu,
Xue Gong,
Manshuang Liu,
Jun Wang,
Qixin Sun,
Elizabeth Vierling,
Shengbao Xu
Publication year - 2018
Publication title -
journal of experimental botany
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.616
H-Index - 242
eISSN - 1460-2431
pISSN - 0022-0957
DOI - 10.1093/jxb/ery303
Subject(s) - heat stress , metabolism , protein metabolism , starch , chemistry , storage protein , protein biosynthesis , photosynthesis , adaptation (eye) , assimilation (phonology) , carbohydrate , biophysics , biochemistry , biology , food science , zoology , gene , neuroscience , philosophy , linguistics
Wheat (Triticum aestivum) is particularly vulnerable to heat stress during the grain filling stage, and this can adversely affect the final yield. However, the underlying physiological and molecular mechanisms are largely unknown. In this study, the effects of heat stress on grain filling were investigated using wheat varieties with different levels of thermotolerance. Decreased grain weights and filling durations, increased protein contents, and stable filling rates across diverse varieties under different heat regimes suggested a general mechanism for heat adaptation. Proteomic analysis identified 309 heat-responsive proteins (HRPs), and revealed a general decrease in protein synthesis components and metabolic proteins, but a significant increase in stress-response proteins and storage proteins. Metabolomic analysis identified 98 metabolites specifically changed by heat stress, and suggested a global decrease in the content of carbohydrate metabolites, an increased content of amino acids, and stable levels of starch synthesis precursors. The energy-consuming HRPs suggested that less energy was channelled into metabolism and protein synthesis, whereas more energy was allocated to the stress response under elevated heat conditions. Collectively, the data demonstrated a widely distributed mechanism for heat adaptation of metabolism, in which the assimilation and energy required for metabolism and protein synthesis are reallocated to heat protection and deposition of reserves, resulting in increased storage protein accumulation and a stable filling rate.
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