Jul 2026· Physiologia Plantarum : An International Journal for Plant Biology· Vol 178· 0 citations· 104 references
Medicine
TL;DR
This review outlines emerging roles of LHP1 in Polycomb‐mediated repression, chromatin‐state maintenance, transcriptional responsiveness, hormone signaling, stress responses, and TE‐proximal gene regulation and highlights future directions involving genome editing, epigenomic profiling, chromatin conformation analysis, and targeted epigenome engineering to clarify how LHP1 associated modules may be exploited for crop improvement and postharvest quality management.
Abstract
Like heterochromatin protein 1 (LHP1) is a conserved HP1‐like chromatin protein in land plants and a major Polycomb‐associated factor that recognizes H3K27me3 enriched euchromatic domains. Recent biochemical, genomic, and structural studies show that LHP1 acts as a modular chromatin scaffold whose regulatory output depends on local histone modifications, RNA interactions, transcriptional factors, and PRC1/PRC2‐associated partners. In this review, we outline emerging roles of LHP1 in Polycomb‐mediated repression, chromatin‐state maintenance, transcriptional responsiveness, hormone signaling, stress responses, and TE‐proximal gene regulation. We also examine the structural features and evolutionary diversification of LHP1 homologs across land plants and assess how duplicated LHP1 copies may contribute to species‐specific developmental and stress‐adaptive traits. Rather than presenting LHP1 as a universal master regulator, we emphasize its context‐dependent functions and distinguish experimentally supported mechanisms from correlative or still unresolved models. Finally, we highlight future directions involving genome editing, epigenomic profiling, chromatin conformation analysis, and targeted epigenome engineering to clarify how LHP1 associated modules may be exploited for crop improvement and postharvest quality management.
The Arabidopsis PWWP-DOMAIN INTERACTOR OF POLYCOMBS1 (PWO1) and Telomere Repeat-Binding Proteins 1-3 (TRB1-3, TRBs) associate with distinct and shared protein complexes involved in epigenetic regulation, yet their cooperative roles in chromatin control and plant development remain largely unexplored. Here, we show that...
Ahamed Khan, Alžbeta Kusová, Jan Skalák et al.· bioRxiv· 0 citations
Chromatin accessibility varies widely across distinct genomic regions in eukaryotes, yet the mechanisms governing these differential patterns remain poorly understood. Here, we identify a subfamily of functionally redundant J-domain proteins (JDPs) that assemble into a protein complex with PICKLE (PKL), an evolutionari...
Bin-Bin Guan, Zi-Juan Yan, Ping Du et al.· bioRxiv· 0 citations
Polycomb group (PcG) proteins are evolutionarily conserved epigenetic regulators that maintain transcriptional states during development and are frequently misregulated in disease. Here, we generated a comprehensive collection of endogenously HA-tagged alleles for the core components of Polycomb Repressive Complex 1 (P...
L. Fritsch, V. Loubiere, Axelle Donjon et al.· bioRxiv· 0 citations
Chromatin remodeling plays a central role in regulating plant development and physiology by shaping the gene expression patterns that drive biological processes. Among epigenetic modifications, histone acetylation is particularly relevant as it alters chromatin structure and influences transcriptional activity. MYST-ty...
María Guillem-Bernal, J. Barrero-Gil, J. A. Jarillo et al.· Journal of Experimental Bota...· 0 citations
The findings uncover a non-canonical mechanism whereby a chromatin remodeler regulates transcription primarily through three-dimensional genome organization rather than local accessibility control, and establish histone modification-guided chromatin remodeling as a key principle in gene regulation.
Ming Yu, Jingdong Xue, Qi Zhang et al.· bioRxiv· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.