PO.MCB11.01 · 分子与细胞生物学

p53 R181残基处的变异导致p53 DNA结合协同性丧失,但保留线粒体相关的凋亡功能

Variation at the R181 residue of p53 confers loss of p53 DNA binding cooperativity with the retention of mitochondrial-associated apoptosis

海报缩略图:p53 R181残基处的变异导致p53 DNA结合协同性丧失,但保留线粒体相关的凋亡功能
编号 603 展板 8 时间 4/19 02:00–05:00 区域 Section 25 主讲 Renyta Moses, BS
分会场 Tumor Suppressors
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作者与单位 Authors & Affiliations

Renyta Moses1, Alexandra Indeglia2, Alison Schwartz-Levine3, Ryan Hausler1, Gregory Kelly1, Sven Miller4, Isabel Anez3, Melissa Heller1, Rosella Delgado1, Caitlin Orr1, Wendy Kohlmann5, Anne Naumer5, Jennie Vagher5, Sophie H. Cahill3, Luke D. Maese5, John Karanicolas4, Judy E. Garber6, Maureen E. Murphy7, Kara N. Maxwell8

1University of Pennsylvania, Philadelphia, PA,2Brigham and Women's Hospital, Boston, MA,3Dana-Farber Cancer Institute, Boston, MA,4Fox Chase Cancer Center, Philadelphia, PA,5University of Utah Huntsman Cancer Institute, Salt Lake City, UT,6Director, Center for Cancer Genetics and Prevention, Dana-Farber Cancer Institute, Boston, MA,7Professor, The Wistar Institute, Philadelphia, PA,8Perelman School of Med. Univ. of Pennsylvania, Philadelphia, PA

摘要 Abstract

中文摘要
TP53是癌症中最常见的突变基因,其编码的p53蛋白具有多种抑癌功能。p53主要作为转录因子发挥作用,并以四聚体形式协同结合于DNA上的靶位点。这种协同结合由来自两个不同p53单体的p53残基E180和R181之间的盐桥相互作用介导。R181残基处的变异是种系基因检测中最常鉴定出的TP53致病变异之一,然而这些变异破坏p53抑癌功能的机制尚不明确。我们发现,携带TP53 p.R181H和p.R181C变异的家系相比携带热点功能缺失型TP53变异的患者,其癌症风险表型有所减弱。尽管存在这种临床表型,我们发现p53 R181H和R181C变异在CRISPR敲入的结直肠癌和乳腺癌细胞系中反式激活约300个已知p53靶基因的能力显著降低。这种反式激活能力的丧失并非通过p53结构或寡聚化的缺陷发生,而是通过与p53靶位点DNA协同结合的减少所致,这一点通过对纯化p53蛋白进行荧光偏振实验以及在R181突变癌细胞中进行染色质免疫沉淀测序得以确定。 尽管p53的转录功能完全丧失,R181突变体仍保留部分抑癌功能。集落形成实验显示R181H和R181C能有效抑制集落形成,将R181敲入癌细胞注射到小鼠皮下组织中,R181H、R181C与野生型p53之间的肿瘤进展水平相当。有趣的是,我们观察到R181H和R181C突变细胞在用DNA损伤剂5-氟尿嘧啶处理时仍保留残余的凋亡活性,尽管其对p53促凋亡靶基因的反式激活较差。这表明R181突变体保留了p53不依赖转录的凋亡机制,即p53转位至线粒体诱导凋亡。事实上,p53与线粒体BAK之间的邻近连接实验显示,R181突变体在基因毒性应激时转位至线粒体。我们的研究阐明了R181变异所丧失与保留的p53抑癌活性,据估计该变异占所有p53错义突变的0.5%。
查看英文原文 English abstract
TP53 is the most frequently mutated gene in cancer, and its encoded protein p53 has many tumor-suppressive functions. p53 primarily acts as a transcription factor and binds to target sites on DNA cooperatively as a tetramer. This cooperative binding is mediated by salt-bridge interactions between p53 residues E180 and R181 from two different p53 monomers. Variants at the R181 residue are one of the most identified TP53 pathogenic variants by germline genetic testing, however the mechanism by which these variants disrupt p53 tumor suppression is not understood. We show that families with TP53 p.R181H and p.R181C variants have an attenuated cancer risk phenotype compared to patients with hotspot loss of function TP53 variants. Despite this clinical phenotype, we find that p53 R181H and R181C variants have significantly diminished ability to transactivate a set of ~300 known p53 target genes in CRISPR knock-in colorectal and breast cancer cell lines. This loss of transactivation ability does not occur through defects in p53 structure or oligomerization, but through reduced cooperative binding to p53 target sites on DNA as determined using fluorescence polarization assays on purified p53 proteins and using chromatin immunoprecipitation sequencing in R181-mutant cancer cells. Despite the complete loss of p53's transcriptional function, R181 mutants retain some tumor suppressive function. Colony formation assays show efficient colony suppression by R181H and R181C, and injecting R181 knock-in cancer cells into the subcutaneous tissue of mice results in comparable tumor progression levels between R181H, R181C, and wild-type p53. Interestingly, we observe residual apoptotic activity in R181H and R181C mutant cells when treated with DNA-damaging agent 5-fluorouracil, despite the poor transactivation of p53's proapoptotic targets. This suggests that the R181 mutants retain the p53 transcription-independent mechanism of apoptosis, where p53 goes to the mitochondria to induce apoptosis. Indeed, proximity ligation assays between p53 and mitochondrial BAK show that R181 mutants traffic to the mitochondria upon genotoxic stress. Our study elucidates p53 tumor suppressive activities that are lost versus retained by R181 variants, which is estimated to account for 0.5% of all p53 missense mutations.
利益披露 Disclosure
R. Moses, None.. I. Anez, None.. R. Delgado, None. J. Karanicolas, AbbVie Employment.

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