Takano Atsuko, Nagai Katsuya
Institute for Protein Research, Osaka University, 3-2 Yamada-Oka, Suita, Osaka 565-0871, Japan.
Biochem Biophys Res Commun. 2006 Jul 21;346(1):95-101. doi: 10.1016/j.bbrc.2006.05.082. Epub 2006 May 24.
The phosphorylation of mPer proteins may play important roles in the mechanism of the circadian clock via changes in subcellular localization and degradation. However, the mechanism has remained unclear. Previously, we identified three putative casein kinase (CK)1epsilon phosphorylation motif clusters in mPer1. In this work, we examined the role of the phosphorylation of serine residue, Ser(S)714, in mPer1. mPer1 S[714-726]A mutant, in which potential phosphorylation serine residues replaced by alanine residues, is rapidly phosphorylated compared with wild-type mPer1 by CK1epsilon. Coexpression with S[714]G mutant of mPer1 advanced phase of circadian expression of mPer2-luc expression, which was monitored by in vitro bioluminescence system. This result showed that the mPER1 S[714]G mutation affects circadian core oscillator. Considering these, it seems that Ser 714 might be involved in the regulation of the phosphorylation of other sites in mPer1 by CK1epsilon.
mPer蛋白的磷酸化可能通过亚细胞定位和降解的变化在生物钟机制中发挥重要作用。然而,其机制仍不清楚。此前,我们在mPer1中鉴定出三个假定的酪蛋白激酶(CK)1ε磷酸化基序簇。在这项研究中,我们研究了mPer1中丝氨酸残基Ser(S)714磷酸化的作用。与野生型mPer1相比,mPer1 S[714-726]A突变体(其中潜在的磷酸化丝氨酸残基被丙氨酸残基取代)被CK1ε快速磷酸化。通过体外生物发光系统监测,mPer1的S[714]G突变体与mPer2-luc共表达可使昼夜节律表达的相位提前。该结果表明mPER1 S[714]G突变影响生物钟核心振荡器。综合考虑这些,似乎Ser 714可能参与CK1ε对mPer1中其他位点磷酸化的调控。