Allis C D, Gorovsky M A
Biochemistry. 1981 Jun 23;20(13):3828-33. doi: 10.1021/bi00516a025.
The patterns of histone phosphorylation in amitotically dividing, transcriptionally active macronuclei and in mitotically dividing, transcriptionally inert micronuclei of the ciliated protozoan Tetrahymena thermophila have been analyzed. Taken together, the major phosphorylation events in these two nuclei and their dependence on cell growth and/or division are remarkably similar to those in mammalian cells. Phosphorylation of H1-type proteins occurs in both nuclei and is positively correlated with growth and/or division. Phosphorylation of histone H3 is also positively correlated with growth and/or division but occurs only in micronuclei. Phosphorylation of histone H2A is relatively independent of growth state and occurs largely, if not exclusively, in macronuclei. Given the unique partition of nuclear functions between macro- and micronuclei, these results, coupled with previously reported temporal correlations between specific histone phosphorylations and cell cycle events in mammalian cells [Gurley, L. R., Tobey, R. A., Walters, R. A., Hildebrand, C. E., Hohmann, P. G., D'Anna, J. A., Barham, S. S., & Deaven, L. L. (1978a) in Cell Cycle Regulation (Jeter, J. R., Cameron, J. L., Padilla, G. M. & Zimmerman, A. M. Eds.) pp 37-60, Academic Press, New York], allow insights into the functions of histone phosphorylations. Specifically, a nonmitotic function for extensive H1 phosphorylation and a unique mitotic function for H3 phosphorylation are clearly indicated. A new role for H2A phosphorylation in the regulation of transcriptional activity is also proposed.
对嗜热四膜虫有丝分裂活跃、转录活跃的大核以及有丝分裂活跃、转录惰性的小核中的组蛋白磷酸化模式进行了分析。总体而言,这两个核中的主要磷酸化事件及其对细胞生长和/或分裂的依赖性与哺乳动物细胞中的情况非常相似。H1型蛋白的磷酸化在两个核中均有发生,且与生长和/或分裂呈正相关。组蛋白H3的磷酸化也与生长和/或分裂呈正相关,但仅发生在小核中。组蛋白H2A的磷酸化相对独立于生长状态,且主要(如果不是唯一)发生在大核中。鉴于大核和小核之间核功能的独特划分,这些结果,再加上先前报道的哺乳动物细胞中特定组蛋白磷酸化与细胞周期事件之间的时间相关性[Gurley, L. R., Tobey, R. A., Walters, R. A., Hildebrand, C. E., Hohmann, P. G., D'Anna, J. A., Barham, S. S., & Deaven, L. L. (1978a) in Cell Cycle Regulation (Jeter, J. R., Cameron, J. L., Padilla, G. M. & Zimmerman, A. M. Eds.) pp 37 - 60, Academic Press, New York],有助于深入了解组蛋白磷酸化的功能。具体而言,明确表明了广泛的H1磷酸化具有非有丝分裂功能,H3磷酸化具有独特的有丝分裂功能。还提出了H2A磷酸化在转录活性调节中的新作用。