Goell Jacob, Li Jing, Mahata Barun, Ma Alex J, Kim Sunghwan, Shah Spencer, Shah Shriya, Contreras Maria, Misra Suchir, Reed Daniel, Bedford Guy C, Escobar Mario, Hilton Isaac B
Department of Bioengineering, Rice University, Houston, TX 77030, USA.
Department of Biosciences, Rice University, Houston, TX 77030, USA.
bioRxiv. 2024 Sep 22:2024.09.22.611000. doi: 10.1101/2024.09.22.611000.
Engineering histone acylation states can inform mechanistic epigenetics and catalyze therapeutic epigenome editing opportunities. Here, we developed engineered lysine acyltransferases that enable the programmable deposition of acetylation and longer-chain acylations. We show that targeting an engineered lysine crotonyltransferase results in weak levels of endogenous enhancer activation yet retains potency when targeted to promoters. We further identify a single mutation within the catalytic core of human p300 that preserves enzymatic activity while substantially reducing cytotoxicity, enabling improved viral delivery. We leveraged these capabilities to perform single-cell CRISPR activation screening and map enhancers to the genes they regulate . We also discover acylation-specific interactions and find that recruitment of p300, regardless of catalytic activity, to prime editing sites can improve editing efficiency. These new programmable epigenome editing tools and insights expand our ability to understand the mechanistic role of lysine acylation in epigenetic and cellular processes and perform functional genomic screens.
工程化组蛋白酰化状态可为表观遗传学机制提供信息,并催化治疗性表观基因组编辑机会。在此,我们开发了工程化赖氨酸酰基转移酶,可实现乙酰化和长链酰化的可编程沉积。我们表明,靶向工程化赖氨酸巴豆酰转移酶会导致内源性增强子激活水平较弱,但靶向启动子时仍保持效力。我们进一步在人p300的催化核心内鉴定出一个单突变,该突变保留酶活性,同时大幅降低细胞毒性,从而改善病毒递送。我们利用这些能力进行单细胞CRISPR激活筛选,并将增强子映射到它们调控的基因。我们还发现了酰化特异性相互作用,并发现无论催化活性如何,将p300招募到引导编辑位点可提高编辑效率。这些新的可编程表观基因组编辑工具和见解扩展了我们理解赖氨酸酰化在表观遗传和细胞过程中的机制作用以及进行功能基因组筛选的能力。