Osanai Takashi, Shirai Tomokazu, Iijima Hiroko, Kuwahara Ayuko, Suzuki Iwane, Kondo Akihiko, Hirai Masami Yokota
RIKEN Center for Sustainable Resource Science, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
Japan Science and Technology Agency (JST), PRESTO, 4-1-8 Honcho, Kawaguchi, Saitama, 332-0012, Japan.
Environ Microbiol. 2015 Jul;17(7):2430-40. doi: 10.1111/1462-2920.12715. Epub 2015 Jan 27.
Cyanobacteria possess circadian clocks consisting of KaiABC proteins, and circadian rhythm must closely relate to the primary metabolism. A histidine kinase, SasA, interacts with KaiC to transduce circadian signals and widely regulates transcription in Synechococcus sp. PCC 7942, although the involvement of SasA in primary metabolism has not been demonstrated at metabolite levels. Here, we generated a strain overexpressing hik8 (HOX80), an orthologue of SasA in Synechocystis sp. PCC 6803. HOX80 grew slowly under light conditions and lost viability under continuous dark conditions. Transcript levels of genes related to sugar catabolism remained higher in HOX80 under dark conditions. Metabolomic analysis revealed that under light conditions, glycogen was undetectable in HOX80, and there were decreased levels of metabolites of sugar catabolism and increased levels of amino acids, compared with those in the wild-type strain. HOX80 exhibited aberrant degradation of SigE proteins after a light-to-dark transition and immunoprecipitation analysis revealed that Hik8 directly interacts with KaiC1. The results of this study demonstrate that overexpression of hik8 widely alters sugar and amino acid metabolism, revealing the involvement of Hik8 in primary metabolism under both light and dark conditions in this cyanobacterium.
蓝藻拥有由KaiABC蛋白组成的生物钟,且昼夜节律必定与初级代谢密切相关。一种组氨酸激酶SasA与KaiC相互作用以转导昼夜节律信号,并广泛调节聚球藻属PCC 7942中的转录,尽管尚未在代谢物水平上证明SasA参与初级代谢。在此,我们构建了一株过表达集胞藻属PCC 6803中SasA的直系同源物hik8(HOX80)的菌株。HOX80在光照条件下生长缓慢,在持续黑暗条件下失去活力。在黑暗条件下,HOX80中与糖分解代谢相关的基因转录水平仍然较高。代谢组学分析表明,在光照条件下,HOX80中未检测到糖原,与野生型菌株相比,糖分解代谢的代谢物水平降低,氨基酸水平升高。HOX80在从光照到黑暗转变后表现出SigE蛋白的异常降解,免疫沉淀分析表明Hik8直接与KaiC1相互作用。本研究结果表明,hik8的过表达广泛改变了糖和氨基酸代谢,揭示了Hik8在该蓝藻的光照和黑暗条件下的初级代谢中的作用。