Montez Miguel, Zhu Danling, Huertas Jan, Maristany M Julia, Rutjens Bas, Nielsen Mathias, Collepardo-Guevara Rosana, Dean Caroline
John Innes Centre, Norwich Research Park, Norwich, United Kingdom.
Key Laboratory of Molecular Design for Plant Cell Factory of Guangdong Higher Education Institutes, Institute of Plant and Food Research Department of Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen, China.
Nat Commun. 2025 Jul 1;16(1):5550. doi: 10.1038/s41467-025-60735-z.
Temperature influences nucleosome dynamics, and thus chromatin, to regulate gene expression. Such mechanisms underlie the epigenetic silencing of Arabidopsis FLOWERING LOCUS C (FLC) by prolonged cold. Here, we show a temperature-dependent transition in local chromatin structure at the H3K27me3 nucleation region, from a modality active for transcription to a state that can be Polycomb silenced. In vivo chromatin measurements and coarse-grained simulations at near-atomistic resolution show that the active transcription state is characterised by a highly dynamic nucleosome arrangement that exposes the FLC transcription start site (TSS). Cold exposure then changes the chromatin by reducing nucleosome dynamics and re-positioning the + 1 nucleosome, leading to transcriptional repression. This local chromatin transition partially depends on VERNALIZATION1 (VRN1), a non-sequence-specific DNA-binding protein. Loss of VRN1 results in hyperaccumulation of H2A.Z, more dynamic nucleosomes and an inability to accumulate H2Aub and H3K27me3. Our work highlights how local nucleosome dynamics link to chromatin structure transitions to integrate temperature inputs into epigenetic switching mechanisms in plants.
温度影响核小体动力学,进而影响染色质,以调控基因表达。此类机制是拟南芥开花位点C(FLC)因长期低温而发生表观遗传沉默的基础。在此,我们展示了在H3K27me3成核区域局部染色质结构的温度依赖性转变,从有利于转录的状态转变为可被多梳蛋白沉默的状态。体内染色质测量和近原子分辨率的粗粒度模拟表明,活跃转录状态的特征是高度动态的核小体排列,从而暴露FLC转录起始位点(TSS)。然后,低温暴露通过降低核小体动力学并重新定位 +1核小体来改变染色质,导致转录抑制。这种局部染色质转变部分依赖于春化作用1(VRN1),一种非序列特异性DNA结合蛋白。VRN1的缺失导致H2A.Z过度积累、核小体更具动态性,以及无法积累H2Aub和H3K27me3。我们的工作突出了局部核小体动力学如何与染色质结构转变相关联,从而将温度输入整合到植物的表观遗传开关机制中。