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体内酶活性所需的人类端粒酶催化亚基的N端结构域。

N-terminal domains of the human telomerase catalytic subunit required for enzyme activity in vivo.

作者信息

Armbruster B N, Banik S S, Guo C, Smith A C, Counter C M

机构信息

Department of Pharmacy and Cancer Biology, Duke University Medical Center, Durham, North Carolina 27710, USA.

出版信息

Mol Cell Biol. 2001 Nov;21(22):7775-86. doi: 10.1128/MCB.21.22.7775-7786.2001.

DOI:10.1128/MCB.21.22.7775-7786.2001
PMID:11604512
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC99947/
Abstract

Most tumor cells depend upon activation of the ribonucleoprotein enzyme telomerase for telomere maintenance and continual proliferation. The catalytic activity of this enzyme can be reconstituted in vitro with the RNA (hTR) and catalytic (hTERT) subunits. However, catalytic activity alone is insufficient for the full in vivo function of the enzyme. In addition, the enzyme must localize to the nucleus, recognize chromosome ends, and orchestrate telomere elongation in a highly regulated fashion. To identify domains of hTERT involved in these biological functions, we introduced a panel of 90 N-terminal hTERT substitution mutants into telomerase-negative cells and assayed the resulting cells for catalytic activity and, as a marker of in vivo function, for cellular proliferation. We found four domains to be essential for in vitro and in vivo enzyme activity, two of which were required for hTR binding. These domains map to regions defined by sequence alignments and mutational analysis in yeast, indicating that the N terminus has also been functionally conserved throughout evolution. Additionally, we discovered a novel domain, DAT, that "dissociates activities of telomerase," where mutations left the enzyme catalytically active, but was unable to function in vivo. Since mutations in this domain had no measurable effect on hTERT homomultimerization, hTR binding, or nuclear targeting, we propose that this domain is involved in other aspects of in vivo telomere elongation. The discovery of these domains provides the first step in dissecting the biological functions of human telomerase, with the ultimate goal of targeting this enzyme for the treatment of human cancers.

摘要

大多数肿瘤细胞依靠核糖核蛋白酶端粒酶的激活来维持端粒并持续增殖。该酶的催化活性可通过RNA(hTR)和催化(hTERT)亚基在体外重建。然而,仅催化活性不足以实现该酶在体内的完整功能。此外,该酶必须定位于细胞核,识别染色体末端,并以高度调控的方式协调端粒延长。为了鉴定hTERT中参与这些生物学功能的结构域,我们将一组90个N端hTERT替代突变体导入端粒酶阴性细胞,并检测所得细胞的催化活性,以及作为体内功能标志物的细胞增殖情况。我们发现有四个结构域对于体外和体内酶活性至关重要,其中两个是hTR结合所必需的。这些结构域定位于通过酵母中的序列比对和突变分析所确定的区域,表明N端在整个进化过程中在功能上也是保守的。此外,我们发现了一个新的结构域DAT,它“解离端粒酶的活性”,其中的突变使该酶具有催化活性,但在体内无法发挥功能。由于该结构域中的突变对hTERT同源多聚化、hTR结合或核靶向没有可测量到的影响,我们提出该结构域参与体内端粒延长的其他方面。这些结构域的发现为剖析人类端粒酶的生物学功能迈出了第一步,最终目标是将该酶作为治疗人类癌症的靶点。

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本文引用的文献

1
Telomeres and telomerase in human cancer (review).人类癌症中的端粒与端粒酶(综述)
Int J Oncol. 1995 Sep;7(3):423-32.
2
Inhibition of telomerase is related to the life span and tumorigenicity of human prostate cancer cells.端粒酶的抑制作用与人类前列腺癌细胞的寿命及致瘤性相关。
J Urol. 2001 Aug;166(2):694-8.
3
A genetically tractable model of human glioma formation.一种用于人类胶质瘤形成的遗传易处理模型。
Cancer Res. 2001 May 1;61(9):3556-60.
4
Cutting edge: telomerase activation in human T lymphocytes does not require increase in telomerase reverse transcriptase (hTERT) protein but is associated with hTERT phosphorylation and nuclear translocation.前沿:人类T淋巴细胞中的端粒酶激活并不需要端粒酶逆转录酶(hTERT)蛋白增加,但与hTERT磷酸化和核转位有关。
J Immunol. 2001 Apr 15;166(8):4826-30. doi: 10.4049/jimmunol.166.8.4826.
5
Functional regions of human telomerase reverse transcriptase and human telomerase RNA required for telomerase activity and RNA-protein interactions.端粒酶活性以及RNA-蛋白质相互作用所需的人端粒酶逆转录酶和人端粒酶RNA的功能区域。
Mol Cell Biol. 2001 Mar;21(5):1888-97. doi: 10.1128/MCB.21.5.1888-1897.2001.
6
RNA binding domain of telomerase reverse transcriptase.端粒酶逆转录酶的RNA结合结构域
Mol Cell Biol. 2001 Feb;21(4):990-1000. doi: 10.1128/MCB.21.4.990-1000.2001.
7
Human breast cancer cells generated by oncogenic transformation of primary mammary epithelial cells.由原代乳腺上皮细胞致癌转化产生的人乳腺癌细胞。
Genes Dev. 2001 Jan 1;15(1):50-65. doi: 10.1101/gad.828901.
8
The function of a stem-loop in telomerase RNA is linked to the DNA repair protein Ku.端粒酶RNA中茎环结构的功能与DNA修复蛋白Ku相关。
Nat Genet. 2001 Jan;27(1):64-7. doi: 10.1038/83778.
9
Cdc13 cooperates with the yeast Ku proteins and Stn1 to regulate telomerase recruitment.Cdc13与酵母Ku蛋白及Stn1协同作用以调控端粒酶募集。
Mol Cell Biol. 2000 Nov;20(22):8397-408. doi: 10.1128/MCB.20.22.8397-8408.2000.
10
Polymerization defects within human telomerase are distinct from telomerase RNA and TEP1 binding.人类端粒酶内的聚合缺陷与端粒酶RNA和TEP1结合不同。
Mol Biol Cell. 2000 Oct;11(10):3329-40. doi: 10.1091/mbc.11.10.3329.