Oda Hisanobu, Okamoto Ikuhiro, Murphy Niall, Chu Jianhua, Price Sandy M, Shen Michael M, Torres-Padilla Maria Elena, Heard Edith, Reinberg Danny
Department of Biochemistry, New York University School of Medicine, New York, New York 10016, USA.
Mol Cell Biol. 2009 Apr;29(8):2278-95. doi: 10.1128/MCB.01768-08. Epub 2009 Feb 17.
PR-Set7/Set8/KMT5A is the sole enzyme known to catalyze monomethylation of histone H4 lysine 20 (H4K20) and is present only in multicellular organisms that compact a large fraction of their DNA. We found that mouse embryos that are homozygous null mutants for the gene PR-Set7 display early embryonic lethality prior to the eight-cell stage. Death was due to the absence of PR-Set7 catalytic activity, since microinjection of the wild type, but not a catalytically inactive version, into two-cell embryos rescued the phenotype. A lack of PR-Set7 activity resulted not only in depletion of H4K20me1 but also in reduced levels of the H4K20me2/3 marks catalyzed by the Suv4-20h1/h2 enzymes, implying that H4K20me1 may be essential for the function of these enzymes to ensure the dimethylated and trimethylated states. Embryonic stem cells that were inducibly deleted for PR-Set7 passed through an initial G(2)/M phase, but the progeny were defective at the subsequent S and G(2)/M phases, exhibiting a delay in their cell cycle, accumulation at G(2)/M, massive DNA damage, and improper mitotic chromosome condensation. Cell cycle analysis after synchronization indicated that the defects were a consequence of decreased H4K20me1 due to the absence of PR-Set7. Most importantly, the lack of H4K20me1 also resulted in defects in chromosome condensation in interphase nuclei. These results demonstrate the critical role of H4K20 monomethylation in mammals in a developmental context.
PR-Set7/Set8/KMT5A是已知唯一能催化组蛋白H4赖氨酸20(H4K20)单甲基化的酶,仅存在于将大部分DNA压缩的多细胞生物中。我们发现,PR-Set7基因纯合缺失突变的小鼠胚胎在八细胞阶段之前就表现出早期胚胎致死性。死亡是由于缺乏PR-Set7催化活性,因为将野生型而非催化无活性版本显微注射到二细胞胚胎中可挽救该表型。缺乏PR-Set7活性不仅导致H4K20me1减少,还导致Suv4-20h1/h2酶催化的H4K20me2/3标记水平降低,这意味着H4K20me1可能对这些酶确保二甲基化和三甲基化状态的功能至关重要。可诱导缺失PR-Set7的胚胎干细胞通过了初始的G(2)/M期,但后代在随后的S期和G(2)/M期存在缺陷表现出细胞周期延迟、在G(2)/M期积累、大量DNA损伤和有丝分裂染色体凝聚异常。同步化后的细胞周期分析表明,这些缺陷是由于缺乏PR-Set7导致H4K20me1减少的结果。最重要的是,缺乏H4K20me1还导致间期核中染色体凝聚缺陷。这些结果证明了H4K20单甲基化在哺乳动物发育过程中的关键作用。