生物
异染色质
表观遗传学
适应(眼睛)
跨代表观遗传学
后生
遗传学
动力学(音乐)
进化生物学
计算生物学
染色质
DNA甲基化
神经科学
基因
基因表达
物理
声学
作者
Ajay Larkin,Colin Kunze,Melissa Seman,Alexander Levashkevich,Justin Curran,Dionysus Morris-Evans,Sophia Lemieux,Ahmad S. Khalil,Kaushik Ragunathan
标识
DOI:10.1016/j.devcel.2024.07.006
摘要
Epigenetic mechanisms enable cells to develop novel adaptive phenotypes without altering their genetic blueprint. Recent studies show histone modifications, such as heterochromatin-defining H3K9 methylation (H3K9me), can be redistributed to establish adaptive phenotypes. We developed a precision-engineered genetic approach to trigger heterochromatin misregulation on-demand in fission yeast. This enabled us to trace genome-scale RNA and H3K9me changes over time in long-term, continuous cultures. Adaptive H3K9me establishes over remarkably slow timescales relative to the initiating stress. We captured dynamic H3K9me redistribution events which depend on an RNA binding complex MTREC, ultimately leading to cells converging on an optimal adaptive solution. Upon stress removal, cells relax to new transcriptional and chromatin states, establishing memory that is tunable and primed for future adaptive epigenetic responses. Collectively, we identify the slow kinetics of epigenetic adaptation that allow cells to discover and heritably encode novel adaptive solutions, with implications for drug resistance and response to infection.
科研通智能强力驱动
Strongly Powered by AbleSci AI