Couso Inmaculada, Evans Bradley S, Li Jia, Liu Yu, Ma Fangfang, Diamond Spencer, Allen Doug K, Umen James G
Donald Danforth Plant Science Center, St. Louis, Missouri 63132.
Earth and Planetary Science, University of California, Berkeley, California 94720.
Plant Cell. 2016 Sep;28(9):2026-2042. doi: 10.1105/tpc.16.00351. Epub 2016 Sep 6.
The networks that govern carbon metabolism and control intracellular carbon partitioning in photosynthetic cells are poorly understood. Target of Rapamycin (TOR) kinase is a conserved growth regulator that integrates nutrient signals and modulates cell growth in eukaryotes, though the TOR signaling pathway in plants and algae has yet to be completely elucidated. We screened the unicellular green alga using insertional mutagenesis to find mutants that conferred hypersensitivity to the TOR inhibitor rapamycin. We characterized one mutant, , that is predicted to encode a conserved inositol hexakisphosphate kinase from the VIP family that pyrophosphorylates phytic acid (InsP) to produce the low abundance signaling molecules InsP and InsP Unexpectedly, the rapamycin hypersensitive growth arrest of cells was dependent on the presence of external acetate, which normally has a growth-stimulatory effect on Chlamydomonas. mutants also constitutively overaccumulated triacylglycerols (TAGs) in a manner that was synergistic with other TAG inducing stimuli such as starvation. cells had reduced InsP and InsP, both of which are dynamically modulated in wild-type cells by TOR kinase activity and the presence of acetate. Our data uncover an interaction between the TOR kinase and inositol polyphosphate signaling systems that we propose governs carbon metabolism and intracellular pathways that lead to storage lipid accumulation.
目前人们对光合细胞中控制碳代谢和细胞内碳分配的网络了解甚少。雷帕霉素靶蛋白(TOR)激酶是一种保守的生长调节因子,可整合营养信号并调节真核生物中的细胞生长,不过植物和藻类中的TOR信号通路尚未完全阐明。我们利用插入诱变技术筛选了单细胞绿藻,以寻找对TOR抑制剂雷帕霉素敏感的突变体。我们对一个突变体进行了表征,该突变体预计编码VIP家族中一种保守的肌醇六磷酸激酶,该激酶将植酸(InsP)焦磷酸化以产生低丰度信号分子InsP和InsP。出乎意料的是,突变体细胞对雷帕霉素敏感的生长停滞取决于外部乙酸盐的存在,而乙酸盐通常对衣藻具有生长刺激作用。突变体还以与饥饿等其他TAG诱导刺激协同的方式组成型地过度积累三酰甘油(TAG)。突变体细胞中InsP和InsP减少,而在野生型细胞中,这两者都通过TOR激酶活性和乙酸盐的存在而动态调节。我们的数据揭示了TOR激酶与肌醇多磷酸信号系统之间的相互作用,我们认为这种相互作用控制着碳代谢和导致储存脂质积累的细胞内途径。