泛素
生物
泛素连接酶
下调和上调
细胞生物学
锚蛋白重复序列
卡林
基因沉默
接合作用
生物化学
基因
作者
Ming‐Chieh Chou,Yi‐Hsuan Wang,Fei-Yun Chen,C. F. Kung,Kuen‐Phon Wu,Jean‐Cheng Kuo,Shu-Jou Chan,Mei‐Ling Cheng,Chih‐Yu Lin,Yu‐Chi Chou,Meng‐Chiao Ho,Steven M. Firestine,Jie‐rong Huang,Ruey‐Hwa Chen
出处
期刊:Molecular Cell
[Elsevier BV]
日期:2023-10-16
卷期号:83 (22): 4123-4140.e12
被引量:11
标识
DOI:10.1016/j.molcel.2023.09.028
摘要
Purinosomes serve as metabolons to enhance de novo purine synthesis (DNPS) efficiency through compartmentalizing DNPS enzymes during stressed conditions. However, the mechanism underpinning purinosome assembly and its pathophysiological functions remains elusive. Here, we show that K6-polyubiquitination of the DNPS enzyme phosphoribosylaminoimidazole carboxylase and phosphoribosylaminoimidazolesuccinocarboxamide synthetase (PAICS) by cullin-5/ankyrin repeat and SOCS box containing 11 (Cul5/ASB11)-based ubiquitin ligase plays a driving role in purinosome assembly. Upon several purinosome-inducing cues, ASB11 is upregulated by relieving the H3K9me3/HP1α-mediated transcriptional silencing, thus stimulating PAICS polyubiquitination. The polyubiquitinated PAICS recruits ubiquitin-associated protein 2 (UBAP2), a ubiquitin-binding protein with multiple stretches of intrinsically disordered regions, thereby inducing phase separation to trigger purinosome assembly for enhancing DNPS pathway flux. In human melanoma, ASB11 is highly expressed to facilitate a constitutive purinosome formation to which melanoma cells are addicted for supporting their proliferation, viability, and tumorigenesis in a xenograft model. Our study identifies a driving mechanism for purinosome assembly in response to cellular stresses and uncovers the impact of purinosome formation on human malignancies.
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