Douglas Cameron J, Samowitz Preston, Tong Feifei, Long Alice, Bradley Caitlin M, Radnai Laszlo, MacMillan David W C, Miller Courtney A, Rumbaugh Gavin, Seath Ciaran P
Wertheim UF Scripps, Jupiter, Florida, 33458, United States.
The Skaggs Graduate School, The Scripps Research Institute, Jupiter, Florida, 33458, United States.
bioRxiv. 2025 Mar 15:2025.03.13.643041. doi: 10.1101/2025.03.13.643041.
Proximity labeling traditionally identifies interactomes of a single protein or RNA, though this approach limits mechanistic understanding of biomolecules functioning within complex systems. Here, we demonstrate a strategy for deciphering ligand-induced changes to global biomolecular interactions by enabling proximity labelling at the mesoscale, across an entire cellular system. By inserting nanoscale proximity labelling catalysts throughout chromatin, this system, MesoMap, provided new insights into how HDAC inhibitors regulate gene expression. Furthermore, it revealed that the orphaned drug candidate, SR-1815, regulates disease-linked gene expression through direct inhibition of kinases implicated in both neurological disorders and cancer. Through precise mapping of global chromatin mobility, MesoMap promotes insights into how drug-like chemical probes induce transcriptional dynamics within healthy and disease-associated cellular states.
传统上,邻近标记用于识别单个蛋白质或RNA的相互作用组,不过这种方法限制了对复杂系统中生物分子功能机制的理解。在此,我们展示了一种策略,通过在中尺度上实现整个细胞系统的邻近标记,来破译配体诱导的全球生物分子相互作用变化。通过在整个染色质中插入纳米级邻近标记催化剂,这个名为MesoMap的系统为组蛋白去乙酰化酶(HDAC)抑制剂如何调节基因表达提供了新见解。此外,它还揭示了孤儿药物候选物SR-1815通过直接抑制与神经疾病和癌症相关的激酶来调节疾病相关基因表达。通过对全球染色质流动性的精确映射,MesoMap促进了对类药物化学探针如何在健康和疾病相关细胞状态下诱导转录动态的理解。