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人类复制细胞中富含C的长端粒5'-尾。

Long telomeric C-rich 5'-tails in human replicating cells.

作者信息

Cimino-Reale Graziella, Pascale Esterina, Alvino Ester, Starace Giuseppe, D'Ambrosio Ettore

机构信息

Istituto di Neurobiologia e Medicina Molecolare, Consiglio Nazionale delle Ricerche, 00137 Roma, Italy.

出版信息

J Biol Chem. 2003 Jan 24;278(4):2136-40. doi: 10.1074/jbc.M208939200. Epub 2002 Nov 14.

Abstract

Telomeres protect the ends of linear chromosomes from abnormal recombination events and buffer them against terminal DNA loss. Models of telomere replication predict that two daughter molecules have one end that is blunt, the product of leading-strand synthesis, and one end with a short G-rich 3'-overhang. However, experimental data from proliferating cells are not completely consistent with this model. For example, telomeres of human chromosomes have long G-rich 3'-overhangs, and the persistence of blunt ends is uncertain. Here we show that the product of leading-strand synthesis is not always blunt but can contain a long C-rich 5'-tail, the incompletely replicated template of the leading strand. We examined the presence of G-rich and C-rich single-strand DNA in fibroblasts and HeLa cells. Although there were no significant changes in the length distribution of the 3'-overhang, the 5'-overhangs were mostly present in S phase. Similar results were obtained using telomerase-negative fibroblasts. The amount and the length distribution of the 5' C-rich tails strongly correlate with the proliferative rate of the cell cultures. Our results suggest that, contrary to what has commonly been supposed, completion of leading-strand synthesis is inefficient and could well drive telomere shortening.

摘要

端粒保护线性染色体末端免受异常重组事件的影响,并缓冲它们防止末端DNA丢失。端粒复制模型预测,两个子代分子有一个末端是平端,这是前导链合成的产物,另一个末端有一个短的富含G的3'端悬突。然而,来自增殖细胞的实验数据与该模型并不完全一致。例如,人类染色体的端粒有长的富含G的3'端悬突,平端的持续性尚不确定。在这里,我们表明前导链合成的产物并不总是平端的,而是可以包含一个长的富含C的5'尾,即前导链未完全复制的模板。我们检测了成纤维细胞和HeLa细胞中富含G和富含C的单链DNA的存在情况。虽然3'端悬突的长度分布没有显著变化,但5'端悬突大多出现在S期。使用端粒酶阴性的成纤维细胞也得到了类似的结果。富含C的5'尾的数量和长度分布与细胞培养物的增殖速率密切相关。我们的结果表明,与通常的假设相反,前导链合成的完成效率低下,很可能导致端粒缩短。

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