Smith Deborah A, Toone W Mark, Chen Dongrong, Bahler Jurg, Jones Nic, Morgan Brian A, Quinn Janet
School of Biochemistry and Genetics, Medical School, University of Newcastle upon Tyne, Newcastle upon Tyne NE2 4HH, United Kingdom.
J Biol Chem. 2002 Sep 6;277(36):33411-21. doi: 10.1074/jbc.M204593200. Epub 2002 Jun 21.
The fission yeast stress-activated Sty1/Spc1 MAPK pathway responds to a similar range of stresses as do the mammalian p38 and SAPK/JNK MAPK pathways. In addition, sty1(-) cells are sterile and exhibit a G(2) cell cycle delay, indicating additional roles of Sty1 in meiosis and cell cycle progression. To identify novel proteins involved in stress responses, a microarray analysis of the Schizosaccharomyces pombe genome was performed to find genes that are up-regulated following exposure to stress in a Sty1-dependent manner. One such gene identified, srk1(+) (Sty1-regulated kinase 1), encodes a putative serine/threonine kinase homologous to mammalian calmodulin kinases. At the C terminus of Srk1 is a putative MAPK binding motif similar to that in the p38 substrates, MAPK-activated protein kinases 2 and 3. Indeed, we find that Srk1 is present in a complex with the Sty1 MAPK and is directly phosphorylated by Sty1. Furthermore, upon stress, Srk1 translocates from the cytoplasm to the nucleus in a process that is dependent on the Sty1 MAPK. Finally, we show that Srk1 has a role in regulating meiosis in fission yeast; following nitrogen limitation, srk1(-) cells enter meiosis significantly faster than wild-type cells and overexpression of srk1(+) inhibits the nitrogen starvation-induced arrest in G(1).
裂殖酵母应激激活的Sty1/Spc1丝裂原活化蛋白激酶(MAPK)信号通路对一系列应激的反应与哺乳动物的p38和应激激活蛋白激酶/应激活化蛋白激酶(SAPK/JNK)MAPK信号通路类似。此外,sty1(-)细胞是不育的,并且表现出G2期细胞周期延迟,这表明Sty1在减数分裂和细胞周期进程中还有其他作用。为了鉴定参与应激反应的新蛋白,对粟酒裂殖酵母基因组进行了微阵列分析,以寻找在应激后以Sty1依赖方式上调的基因。鉴定出的一个这样的基因,srk1(+)(Sty1调节激酶1),编码一种与哺乳动物钙调蛋白激酶同源的假定丝氨酸/苏氨酸激酶。在Srk1的C末端是一个类似于p38底物丝裂原活化蛋白激酶激活的蛋白激酶2和3中的假定MAPK结合基序。事实上,我们发现Srk1与Sty1 MAPK存在于一个复合物中,并被Sty1直接磷酸化。此外,在应激时,Srk1在一个依赖于Sty1 MAPK的过程中从细胞质转移到细胞核。最后,我们表明Srk1在调节裂殖酵母的减数分裂中起作用;在氮限制后,srk1(-)细胞比野生型细胞显著更快地进入减数分裂,并且srk1(+)的过表达抑制了氮饥饿诱导的G1期停滞。