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Biology subjects

He, X.-J.

Publications and source records attributed to He, X.-J..

4 recordsLinked to original sources

J-domain proteins stimulate PKL-mediated chromatin compaction at H3K4-hypomethylated genomic loci

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 evolutionarily conserved CHD3-type chromatin remodeler, in Arabidopsis thaliana. JDPs are required not only for maintaining PKL protein stability but also for stimulating its nucleosome remodeling and ATPase activities. A previously uncharacterized histone-binding domain (HBD) within JDPs specifically recognizes the N-terminal tail of histone H3 when the H3K4me3 modification is absent. This interaction enhances PKL-mediated nucleosome sliding and ATPase activities in vitro, and promotes PKL-dependent chromatin compaction at H3K4me3-depleted genomic loci in vivo. The PKL-JDP complex drives chromatin compaction to repress developmentally regulated genes, thereby governing key developmental phase transitions, including the embryo-to-seedling transition and flowering. Collectively, these findings uncover a distinct mechanism by which the absence of H3K4me3 is sensed to initiate regional chromatin compaction, repress developmentally regulated genes, and facilitate key developmental transitions.

plant biology↗

The Arabidopsis histone H3K4me3-binding ALFIN-like proteins mediate histone H2A ubiquitination and coordinate diverse chromatin modifications

The histone H3K4 trimethylation (H3K4me3) is widely distributed at numerous actively transcribed protein-coding genes throughout the genome. However, the interplay between H3K4me3 and other chromatin modifications remains poorly understood in plants. In this study, we find that the Arabidopsis thaliana H3K4me3-binding ALFIN-LIKE (AL) proteins are associated with H3K4me3-enriched genes at the whole-genome level. The AL proteins contain a C-terminal PHD finger, which has a conserved role in recognizing H3K4me3, and a PHD-associated AL (PAL) domain, which is responsible for binding to diverse chromatin-related proteins. We demonstrate that the AL proteins not only act as subunits of the Polycomb repressive complex 1 (PRC1) to mediate H2A ubiquitination at H3K4me3-enriched genes but also interact with a variety of other chromatin-related proteins. Furthermore, we elucidate the mechanisms by which AL proteins interact with other chromatin-associated proteins to integrate H3K4me3, H2A ubiquitination, H2A.Z deposition, H3K27 demethylation, and chromatin accessibility across the genome. These findings underscore the critical role of AL proteins in linking H3K4me3 with a variety of other chromatin modifications in plants.

plant biology↗

Co-recognition of histone acetylation and H3K4 trimethylation by GTE4-EML complex in Arabidopsis

Although histone acetylation and H3K4 trimethylation (H3K4me3) are well-known histone marks associated with active transcription, how they cooperate to regulate transcription remains largely unclear in plants. Our study revealed that the Bromodomain and Extra-terminal (BET) protein GTE4 binds to acetylated histone and forms a complex with the redundant H3K4me3-binding EMSY-Likeproteins EML1 or EML2 (EML1/2) in Arabidopsis thaliana. The eml1 eml2 (eml1/2) double mutant exhibited a morphological phenotype similar to the gte4 mutant, and most of the gte4-mediated differentially expressed genes were co-regulated in the eml1/2 mutant. Through chromatin immunoprecipitation followed by deep sequencing (ChIP-seq), we found that GTE4 and EML2 co-occupy protein-coding genes enriched with both histone acetylation and H3K4me3, exhibiting a synergistic effect on the association of the GTE4-EML complex with chromatin. The association of GTE4 with chromatin requires both the Bromodomain and the EML-interacting domain. This study identified a previously uncharacterized complex and uncovered how it cooperatively recognizes histone acetylation and H3K4me3 to facilitate gene transcription at the whole-genome level in Arabidopsis.

molecular biology↗

Effect of the SAS chromatin-remodeling complex on chromatin accessibility during flower development

While the role of transcription factors in flower development is well understood, the impact of chromatin remodeling on this process remains largely unclear. We conducted a comprehensive analysis to investigate the coordination of the SAS, BAS, and MAS-type SWI/SNF chromatin-remodeling complexes with transcription factors to regulate chromatin accessibility and gene transcription during flower development in Arabidopsis thaliana. Our findings indicate that the SAS complex binds to numerous genes related to flower development and is responsible for establishing chromatin accessibility of these genes during flower development. In contrast, the BAS and MAS complexes exhibit minimal involvement in regulating the accessibility of these genes. The SAS-bound genomic regions and the SAS-dependent accessible regions are enriched with sites occupied by multiple MADS family transcription factors involved in flower development. Furthermore, we found that the SAS-dependent accessibility is indispensable for the genomic binding of the MADS transcription factor AP1 at these regions. This study highlights the dynamic role of the SAS complex in modulating the genomic binding of transcription factors during plant development. One-sentence summaryThe SAS-type SWI/SNF complex regulates Inflorescence-specific chromatin accessibility at distal promoter and upstream intergenic regions, thereby facilitating the binding of transcription factors involved in flower development.

plant biology↗