Agetsuma Masakazu, Furumoto Tsuyoshi, Yanagisawa Shuichi, Izui Katsura
Graduate School of Biostudies, Kyoto University, Kyoto, 606-8502 Japan.
Plant Cell Physiol. 2005 Mar;46(3):389-98. doi: 10.1093/pcp/pci043. Epub 2005 Feb 2.
In C4 photosynthesis, phosphoenolpyruvate carboxylase (PEPC) is the enzyme responsible for catalyzing the primary fixation of atmospheric CO2. The activity of PEPC is regulated diurnally by reversible phosphorylation. PEPC kinase (PEPCk), a protein kinase involved in this phosphorylation, is highly specific for PEPC and consists of only the core domain of protein kinase. Owing to its extremely low abundance in cells, analysis of its regulatory mechanism at the protein level has been difficult. Here we employed a transient expression system using maize mesophyll protoplasts. The PEPCk protein with a FLAG tag could be expressed correctly and detected with high sensitivity. Rapid degradation of PEPCk protein was confirmed and shown to be blocked by MG132, a 26S proteasome inhibitor. Furthermore, MG132 enhanced accumulation of PEPCk with increased molecular sizes at about 8 kDa intervals. Using anti-ubiquitin antibody, this increase was shown to be due to ubiquitination. This is the first report to show the involvement of the ubiquitin-proteasome pathway in PEPCk turnover. The occurrence of PEPCks with higher molecular sizes, which was noted previously with cell extracts from various plants, was also suggested to be due to ubiquitination of native PEPCk.
在C4光合作用中,磷酸烯醇式丙酮酸羧化酶(PEPC)是负责催化大气中二氧化碳初级固定的酶。PEPC的活性通过可逆磷酸化进行昼夜调节。PEPC激酶(PEPCk)是参与这种磷酸化的一种蛋白激酶,对PEPC具有高度特异性,并且仅由蛋白激酶的核心结构域组成。由于其在细胞中的丰度极低,因此在蛋白质水平上分析其调控机制一直很困难。在这里,我们采用了使用玉米叶肉原生质体的瞬时表达系统。带有FLAG标签的PEPCk蛋白能够正确表达并以高灵敏度检测到。证实了PEPCk蛋白的快速降解,并表明其被26S蛋白酶体抑制剂MG132阻断。此外,MG132增强了PEPCk的积累,其分子大小以约8 kDa的间隔增加。使用抗泛素抗体,表明这种增加是由于泛素化。这是首次报道泛素-蛋白酶体途径参与PEPCk的周转。先前在各种植物的细胞提取物中观察到的更高分子大小的PEPCk的出现,也被认为是由于天然PEPCk的泛素化。