The work was published in the listed papers and described in many lectures given at international conferences. Overall, ee showed that the epigenetic switch underlying the cold-induced chromatin silencing in vernalization is a stochastic conformationally-induced oligomerization event. This concept is relevant to epigenetic switches in all organisms. In our work crystal structures of the oligomerization domains revealed a head to tail polymerization module conserved through evolution (Fiedler et al 2022). Transgenic Arabidopsis plants carrying mutated versions designed to disrupt the head to tail interface demonstrated that the oligomerization (VEL) domain was necessary for the epigenetic silencing. Oligomerization promoted multivalent chromatin association at the local nucleation region (Schulten et al 2025). Overall, this work revealed the functional specialization of VEL-proteins, and how they maintain the chromatin association of the Polycomb complex (Franco-Echevarria et al 2023), necessary to switch to an epigenetically silenced state.
Dissection of the local chromatin features that promote the epigenetic switch took us into the study of altered dynamics of the nucleosomes (DNA wrapped around the histone octamers) (Mikulski et al 2022, Montez et al 2025) and biomolecular condensates that alter transcription states (Zhu et al 2021). Overall, work in Objective B highlighted how local nucleosome dynamics and chromatin contacts link to chromatin structure transitions to integrate temperature inputs into epigenetic switching mechanisms in plants (Menon et al 2021, Nielsen et al 2024).
The role of DNA replication in the spreading of the silencing marks was investigated using the DNA fibre protocol, adopted extensively in yeast and mammals to analyse DNA replication (Baxter et al 2021). However, the low throughout of this technique meant we could not analyse replication specifically at FLC. A heterologous system was therefore used to analyse FLC sequences that affected DNA replication. A sequence was identified that strongly pauses the DNA replication machinery in a directional manner and this was associated with formation of RNA/ DNA hybrids (Fang et al 2020, Xu et al 2021a, Xu et al 2021b). A requirement for reduced growth/ DNA replication for stable FLC silencing was also revealed through analysis of natural variation in FLC silencing in Arabidopsis accessions adapted to latitudinal extremes (Zhu et al 2023, Yang et al 2022).