Cobos Samantha N, Janani Chaim, Cruz Gabriel, Rana Navin, Son Elizaveta, Frederic Rania, Paredes Casado Jailene, Khan Maliha, Bennett Seth A, Torrente Mariana P
Ph.D. Program in Chemistry, The Graduate Center of the City University of New York, New York, NY 10016, USA.
Chemistry Department, Brooklyn College, Brooklyn, NY 11210, USA.
Pathogens. 2022 Nov 29;11(12):1436. doi: 10.3390/pathogens11121436.
Prions are proteins able to take on alternative conformations and propagate them in a self-templating process. In , prions enable heritable responses to environmental conditions through bet-hedging mechanisms. Hence, [PRION] states may serve as an atypical form of epigenetic control, producing heritable phenotypic change via protein folding. However, the connections between prion states and the epigenome remain unknown. Do [PRION] states link to canonical epigenetic channels, such as histone post-translational modifications? Here, we map out the histone H3 modification landscape in the context of the [SWI] and [PIN] prion states. [SWI] is propagated by Swi1, a subunit of the SWI/SNF chromatin remodeling complex, while [PIN] is propagated by Rnq1, a protein of unknown function. We find [SWI] yeast display decreases in the levels of H3K36me2 and H3K56ac compared to [swi] yeast. In contrast, decreases in H3K4me3, H3K36me2, H3K36me3 and H3K79me3 are connected to the [PIN] state. Curing of the prion state by treatment with guanidine hydrochloride restored histone PTM to [prion] state levels. We find histone PTMs in the [PRION] state do not match those in loss-of-function models. Our findings shed light into the link between prion states and histone modifications, revealing novel insight into prion function in yeast.
朊病毒是能够呈现不同构象并在自我模板化过程中传播这些构象的蛋白质。在[具体情境未提及]中,朊病毒通过风险对冲机制实现对环境条件的可遗传反应。因此,[朊病毒]状态可能作为一种非典型的表观遗传控制形式,通过蛋白质折叠产生可遗传的表型变化。然而,朊病毒状态与表观基因组之间的联系仍然未知。[朊病毒]状态是否与典型的表观遗传途径相关,比如组蛋白翻译后修饰?在此,我们描绘了在[SWI]和[PIN]朊病毒状态背景下的组蛋白H3修饰图谱。[SWI]由SWI/SNF染色质重塑复合物的一个亚基Swi1传播,而[PIN]由一种功能未知的蛋白质Rnq1传播。我们发现与[swi]酵母相比,[SWI]酵母中H3K36me2和H3K56ac的水平降低。相反,H3K4me3、H3K36me2、H3K36me3和H3K79me3的降低与[PIN]状态相关。用盐酸胍处理治愈朊病毒状态可使组蛋白PTM恢复到[朊病毒]状态水平。我们发现处于[朊病毒]状态的组蛋白PTM与功能丧失模型中的情况不匹配。我们的研究结果揭示了朊病毒状态与组蛋白修饰之间的联系,为酵母中朊病毒的功能提供了新的见解。