4.8 Article

Day and night isotope labelling reveal metabolic pathway specific regulation of protein synthesis rates in Arabidopsis

期刊

PLANT JOURNAL
卷 109, 期 4, 页码 745-763

出版社

WILEY
DOI: 10.1111/tpj.15661

关键词

protein synthesis; protein degradation; deuterium labelling; diurnal regulation; photosynthetic machinery; Arabidopsis thaliana

资金

  1. Australian Research Council [CE140100008, DP180104136]
  2. Western Australian State Government
  3. Bioplatforms Australia under the Commonwealth Government National Collaborative Research Infrastructure Strategy

向作者/读者索取更多资源

Plants have different metabolic fluxes between day and night, and protein machinery requires differential maintenance. Light-harvesting complex proteins have faster synthesis and degradation rates during the day, while carbon metabolism and vesicle trafficking components are translated at similar rates day or night. Despite reduced protein synthesis rates at night, few leaf proteins change in abundance between day and night, indicating tightly coordinated protein degradation rates.
Plants have a diurnal separation of metabolic fluxes and a need for differential maintenance of protein machinery in the day and night. To directly assess the output of the translation process and to estimate the ATP investment involved, the individual rates of protein synthesis and degradation of hundreds of different proteins need to be measured simultaneously. We quantified protein synthesis and degradation through pulse labelling with heavy hydrogen in Arabidopsis thaliana rosettes to allow such an assessment of ATP investment in leaf proteome homeostasis on a gene-by-gene basis. Light-harvesting complex proteins were synthesised and degraded much faster in the day (approximately 10:1), while carbon metabolism and vesicle trafficking components were translated at similar rates day or night. Few leaf proteins changed in abundance between the day and the night despite reduced protein synthesis rates at night, indicating that protein degradation rates are tightly coordinated. The data reveal how the pausing of photosystem synthesis and degradation at night allows the redirection of a decreased energy budget to a selective night-time maintenance schedule.

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