434 / 2019-01-29 10:04:38
Genetic analyses of the arabidopsis atg1 kinase complex reveal both kinase-dependent and independent autophagic routes during fixed-carbon starvation
autophagy, ATG1 kinase complex, nitrogen starvation, fixed-carbon starvation, SnRK1, vacuole
摘要录用
Faqiang Li / College of Life Sciences, South China Agricultural University
Xiao Huang / College of Life Sciences, South China Agricultural University
Chunyan Zheng / College of Life Sciences, South China Agricultural University
Fen Liu / Department of Biology, Washington University in St. Louis
Xing Lu / Root Biology Center, State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, South China Agricultural University
Jian Tian / Root Biology Center, State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, South China Agricultural University
Taijoon Chung / Department of Biological Sciences, Pusan National University
Marisa Otegui / Department of Botany, University of Wisconsin-Madison
Shi Xiao / School of Life Sciences, Sun Yat-sen University
Richard Vierstra / Department of Biology, Washington University in St. Louis
Under nutrient and energy-limiting conditions, plants up-regulate sophisticated catabolic pathways such as autophagy to remobilize nutrients and restore energy homeostasis. Autophagic flux is tightly regulated under these circumstances through the autophagy-related (ATG)-1 kinase complex, which relays upstream nutrient and energy signals to the downstream components that drive autophagy. Here, we investigated the role(s) of the Arabidopsis ATG1 kinase during autophagy through an analysis of a quadruple mutant deficient in all four ATG1 isoforms. These isoforms appear to act redundantly, including the plant-specific, truncated ATG1t variant, and like other well-characterized atg mutants, homozygous atg1abct plants display early leaf senescence and hypersensitivity to nitrogen and fixed-carbon starvation. Although the ATG1 kinase is essential for up-regulating autophagy under nitrogen deprivation and short-term carbon starvation, it did not stimulate autophagy under prolonged carbon starvation. Instead, an ATG1-independent response arose requiring the PI3K and SnRK1 kinases, possibly through phosphorylation of the ATG6 subunit within the PI3K complex by the catalytic KIN10 subunit of SnRK1. Together, our data connect the ATG1 kinase to autophagy, and reveal that plants engage multiple pathways to activate autophagy during nutrient stress, which include the ATG1 route as well as an alternative route requiring SnRK1 and ATG6 signaling.
重要日期
  • 会议日期

    06月16日

    2019

    06月21日

    2019

  • 05月01日 2019

    初稿截稿日期

  • 06月21日 2019

    注册截止日期

联系方式
历届会议
移动端
在手机上打开
小程序
打开微信小程序
客服
扫码或点此咨询