Dingar Dharmendra, Kalkat Manpreet, Chan Pak-Kei, Srikumar Tharan, Bailey Swneke D, Tu William B, Coyaud Etienne, Ponzielli Romina, Kolyar Max, Jurisica Igor, Huang Annie, Lupien Mathieu, Penn Linda Z, Raught Brian
Princess Margaret Cancer Centre, University Health Network, and Department of Medical Biophysics, University of Toronto, Toronto, ON Canada.
The Hospital for Sick Children and Department of Paediatrics, University of Toronto, Toronto, ON Canada.
J Proteomics. 2015 Apr 6;118:95-111. doi: 10.1016/j.jprot.2014.09.029. Epub 2014 Oct 18.
The BioID proximity-based biotin labeling technique was recently developed for the characterization of protein-protein interaction networks [1]. To date, this method has been applied to a number of different polypeptides expressed in cultured cells. Here we report the adaptation of BioID to the identification of protein-protein interactions surrounding the c-MYC oncoprotein in human cells grown both under standard culture conditions and in mice as tumor xenografts. Notably, in vivo BioID yielded >100 high confidence MYC interacting proteins, including >30 known binding partners. Putative novel MYC interactors include components of the STAGA/KAT5 and SWI/SNF chromatin remodeling complexes, DNA repair and replication factors, general transcription and elongation factors, and transcriptional co-regulators such as the DNA helicase protein chromodomain 8 (CHD8). Providing additional confidence in these findings, ENCODE ChIP-seq datasets highlight significant coincident binding throughout the genome for the MYC interactors identified here, and we validate the previously unreported MYC-CHD8 interaction using both a yeast two hybrid analysis and the proximity-based ligation assay. In sum, we demonstrate that BioID can be utilized to identify bona fide interacting partners for a chromatin-associated protein in vivo. This technique will allow for a much improved understanding of protein-protein interactions in a previously inaccessible biological setting.
The c-MYC (MYC) oncogene is a transcription factor that plays important roles in cancer initiation and progression. MYC expression is deregulated in more than 50% of human cancers, but the role of this protein in normal cell biology and tumor progression is still not well understood, in part because identifying MYC-interacting proteins has been technically challenging: MYC-containing chromatin-associated complexes are difficult to isolate using traditional affinity purification methods, and the MYC protein is exceptionally labile, with a half-life of only ~30 min. Developing a new strategy to gain insight into MYC-containing protein complexes would thus mark a key advance in cancer research. The recently described BioID proximity-based labeling technique represents a promising new complementary approach for the characterization of protein-protein interactions (PPIs) in cultured cells. Here we report that BioID can also be used to characterize protein-protein interactions for a chromatin-associated protein in tumor xenografts, and present a comprehensive, high confidence in vivo MYC interactome. This article is part of a Special Issue entitled: Protein dynamics in health and disease. Guest Editors: Pierre Thibault and Anne-Claude Gingras.
基于BioID邻近生物素标记技术最近被开发用于蛋白质-蛋白质相互作用网络的表征[1]。迄今为止,该方法已应用于培养细胞中表达的多种不同多肽。在此,我们报告了BioID在鉴定人细胞中c-MYC癌蛋白周围蛋白质-蛋白质相互作用方面的应用,这些细胞在标准培养条件下以及作为肿瘤异种移植在小鼠体内生长。值得注意的是,体内BioID产生了超过100种高可信度的MYC相互作用蛋白,包括30多种已知的结合伴侣。推测的新型MYC相互作用蛋白包括STAGA/KAT5和SWI/SNF染色质重塑复合物的成分、DNA修复和复制因子、一般转录和延伸因子,以及转录共调节因子,如DNA解旋酶蛋白染色质结构域8(CHD8)。ENCODE ChIP-seq数据集突出显示了此处鉴定的MYC相互作用蛋白在整个基因组中的显著共定位结合,为这些发现提供了额外的可信度,并且我们使用酵母双杂交分析和基于邻近连接的检测方法验证了先前未报道的MYC-CHD相互作用。总之,我们证明BioID可用于在体内鉴定与染色质相关蛋白的真正相互作用伴侣。该技术将使我们对以前难以进入的生物学环境中的蛋白质-蛋白质相互作用有更好的理解。
c-MYC(MYC)癌基因是一种转录因子,在癌症的发生和发展中起重要作用。超过50%的人类癌症中MYC表达失调,但该蛋白在正常细胞生物学和肿瘤进展中的作用仍未完全了解,部分原因是鉴定MYC相互作用蛋白在技术上具有挑战性:使用传统亲和纯化方法难以分离含MYC的染色质相关复合物,并且MYC蛋白异常不稳定,半衰期仅约30分钟。因此,开发一种新策略以深入了解含MYC的蛋白质复合物将标志着癌症研究的一项关键进展。最近描述的基于BioID邻近标记技术是一种有前途的新的互补方法,用于表征培养细胞中的蛋白质-蛋白质相互作用(PPI)。在此,我们报告BioID也可用于表征肿瘤异种移植中与染色质相关蛋白的蛋白质-蛋白质相互作用,并呈现一个全面的、高可信度的体内MYC相互作用组。本文是题为:健康与疾病中的蛋白质动力学的特刊的一部分。客座编辑:皮埃尔·蒂博和安妮-克劳德·金格拉斯。