Qiu Wen, Chen Rongfeng, Wang Xianxian, Liu Junying, Lv Weiguang
Eco-Environmental Protection Research Institute, Shanghai Academy of Agricultural Sciences, Shanghai 201403, China.
Shanghai Engineering Research Center of Low-Carbon Agriculture, Shanghai 201403, China.
Plants (Basel). 2022 Jul 15;11(14):1851. doi: 10.3390/plants11141851.
Glucose metabolism regulates cell growth and affects astaxanthin accumulation in the green algae . Hub gene functioning in this bioactive compound has been illustrated at the genome, transcriptome and metabolome level, but is rather limited from a proteome aspect. Microalgal cell produce an enhanced biomass (8-fold higher) but decreased lipid and astaxanthin content (~20% less) in the glucose condition compared to the control. Here, we investigate the proteomic response of grown with and without glucose using an LC-MS/MS-based Tandem Mass Tag (TMT) approach. The proteomic analysis demonstrated that glucose supplementation triggers the upregulation of 105 proteins and downregulation of 151 proteins. Thus, the carbon and energy flux might flow to cell growth, which increased the associated protein abundance, including DNA polymerase, translation initiation factor, 26S proteasome regulatory subunits, and the marker enzyme of the TCA cycle ribosomal protein. Moreover, the glucose supplement triggered the downregulation of proteins mainly involved in photosynthesis, chloroplasts, valine, leucine and isoleucine biosynthesis, 2-oxocarboxylic acid metabolism, and pantothenate and CoA biosynthesis pathways. This proteomic analysis is likely to provide new insights into algal growth and lipid or astaxanthin accumulation upon glucose supplementation, providing a foundation for further development of as oleaginous microalga for bioengineering applications.
葡萄糖代谢调节细胞生长,并影响绿藻中虾青素的积累。在基因组、转录组和代谢组水平上已经阐明了参与这种生物活性化合物合成的关键基因的功能,但从蛋白质组学角度来看,相关研究还比较有限。与对照相比,微藻细胞在葡萄糖条件下产生的生物量增加(高出8倍),但脂质和虾青素含量降低(约低20%)。在这里,我们使用基于液相色谱-串联质谱(LC-MS/MS)的串联质量标签(TMT)方法,研究了在有葡萄糖和无葡萄糖条件下生长的微藻的蛋白质组学响应。蛋白质组学分析表明,添加葡萄糖会触发105种蛋白质的上调和151种蛋白质的下调。因此,碳和能量流可能流向细胞生长,这增加了相关蛋白质的丰度,包括DNA聚合酶、翻译起始因子、26S蛋白酶体调节亚基以及三羧酸循环核糖体蛋白的标记酶。此外,添加葡萄糖会触发主要参与光合作用、叶绿体、缬氨酸、亮氨酸和异亮氨酸生物合成、2-氧代羧酸代谢以及泛酸和辅酶A生物合成途径的蛋白质的下调。这种蛋白质组学分析可能为添加葡萄糖后藻类生长以及脂质或虾青素积累提供新的见解,为将该微藻进一步开发为用于生物工程应用的产油微藻奠定基础。