泛素
计算生物学
泛素连接酶
蛋白质亚单位
接合作用
计算机科学
生物
DNA连接酶
机制(生物学)
磷酸化
激酶
蛋白激酶A
检查点激酶2
帧(网络)
细胞生物学
DNA修复
DNA
蛋白质水解
编码(集合论)
接口(物质)
模式生物
生物信息学
翻译后修饰
蛋白质降解
神经科学
化学
作者
Jiaqi Zhao,Zhendong Qin,Jiabao Hou,Mingjun Lu,Jingwei Guo,Jinghong Wu,Chenyang Wang,Xiaoyue Zhu,Teng Ma
出处
期刊:Biomolecules
[Multidisciplinary Digital Publishing Institute]
日期:2026-03-26
卷期号:16 (4): 498-498
摘要
Cells rely heavily on DNA repair networks to survive genomic damage. For repairing double-strand breaks, Non-Homologous End Joining (NHEJ) remains the primary pathway, which is largely controlled by the DNA-dependent protein kinase catalytic subunit (DNA-PKcs). Researchers have long studied how phosphorylation drives this kinase. However, recent data point to an important additional layer of control. Drawing on evidence accumulated over the past two decades, we propose a “Spatiotemporal Logic Circuit” model for DNA-PKcs regulation. In this model, SUMO-associated interactions may help stabilize synaptic assembly, HUWE1-mediated neddylation may facilitate kinase activation at Lys4007, and K48-linked ubiquitination—potentially involving RNF144A—may contribute to the turnover of persistent repair complexes. Importantly, we frame these UBL-mediated events within the broader autophosphorylation-driven conformational cycle of DNA-PKcs, which remains central to NHEJ progression. Additionally, we highlight the structural interface where activation and degradation signals may converge and the extraction barrier posed by the massive DNA-PKcs scaffold. From a translational perspective, we argue that the exceptional size of DNA-PKcs (~470 kDa) and its topological entrapment on DNA render it an unusually challenging PROTAC target—one that may require p97/VCP-assisted extraction before proteolysis can proceed. We also highlight the underappreciated risk that E3 ligase loss-of-function, already documented in BET-PROTAC resistance, may similarly undermine DNA-PKcs degrader strategies.
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