Department of Biomedical Sciences, Florida State University, Tallahassee, FL, USA.
Cell Cycle. 2011 Oct 1;10(19):3327-36. doi: 10.4161/cc.10.19.17619.
Cessation of transcriptional activity is a hallmark of cell division. Many biochemical pathways have been shown and proposed over the past few decades to explain the silence of this phase. In particular, many individual transcription factors have been shown to be inactivated by phosphorylation. In this report, we show the simultaneous phosphorylation and mitotic redistribution of a whole class of modified transcription factors. C(2)H(2) zinc finger proteins (ZFPs) represent the largest group of gene expression regulators in the human genome. Despite their diversity, C(2)H(2) ZFPs display striking conservation of small linker peptides joining their adjacent zinc finger modules. These linkers are critical for DNA binding activity. It has been proposed that conserved phosphorylation of these linker peptides could be a common mechanism for the inactivation of the DNA binding activity of C(2)H(2) ZFPs, during mitosis. Using a novel antibody, raised against the phosphorylated form of the most conserved linker peptide sequence, we are able to visualize the massive and simultaneous mitotic phosphorylation of hundreds of these proteins. We show that this wave of phosphorylation is tightly synchronized, starting in mid-prophase right after DNA condensation and before the breakdown of the nuclear envelope. This global phosphorylation is completely reversed in telophase. In addition, the exclusion of the phospho-linker signal from condensed DNA clearly demonstrates a common mechanism for the mitotic inactivation of C(2)H(2) ZFPs.
转录活性的终止是细胞分裂的一个标志。在过去的几十年中,已经有许多生化途径被证明和提出,以解释这个阶段的沉默。特别是,许多单个转录因子已被证明通过磷酸化而失活。在本报告中,我们展示了一整类经过修饰的转录因子的同时磷酸化和有丝分裂再分布。C(2)H(2)锌指蛋白 (ZFPs) 代表人类基因组中最大的一类基因表达调节剂。尽管它们具有多样性,但 C(2)H(2) ZFPs 的相邻锌指模块之间的小连接肽显示出惊人的保守性。这些连接肽对于 DNA 结合活性至关重要。有人提出,这些连接肽的保守磷酸化可能是 C(2)H(2) ZFPs 的 DNA 结合活性失活的共同机制,发生在有丝分裂期间。使用针对最保守的连接肽序列磷酸化形式的新型抗体,我们能够可视化数百种这些蛋白质的大规模和同时的有丝分裂磷酸化。我们表明,这种磷酸化波非常同步,从中期开始,就在 DNA 浓缩之后和核膜破裂之前。在末期,这种全局磷酸化完全逆转。此外,磷酸化连接子信号从浓缩 DNA 中的排除清楚地表明了 C(2)H(2) ZFPs 的有丝分裂失活的共同机制。