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Teng, Z.-Q.

Publications and source records attributed to Teng, Z.-Q..

2 recordsLinked to original sources

Dynamic profiling and functional interpretation of histone lysine crotonylation and lactylation during neural development

BackgroundMetabolites such as crotonyl-CoA and lactyl-CoA influence gene expression through covalently modifying histones, known as histone lysine crotonylation (Kcr) and histone lysine lactylation (Kla). However, their existence patterns, dynamic changes, biological functions, as well as associations with histone lysine acetylation (Kac) and gene expression during mammalian development remain largely unknown, which imped us from understanding the epigenetic regulations of histone lysine acylations. ResultsHistone Kcr and Kla are widely distributed and undergo global changes during neural development. By profiling genome-wide dynamics of H3K9ac, H3K9cr and H3K18la in combination with ATAC sequencing and RNA sequencing, we reveal that these histone marks cooperatively regulate chromatin state and gene expression, as well as promote transcriptome remodelling to favour cell fate transition in the developing telencephalon. Importantly, we demonstrate that global histone Kcr and Kla are not consequence of transcription and furtherly identify histone deacetylase 1-3 (HDAC1-3) as novel "erasers" of H3K18la. Taking advantage of induced differentiation system of P19 embryonal carcinoma (EC) cells, we find that a selective inhibitor of HDAC1-3, MS-275 pre-activates neural fate-related transcriptional programs via stimulating multiple histone lysine acylations simultaneously. ConclusionsOur study uncover the interplays between histone lysine acylations to regulate gene expression and the differentiation-promoting functions of histone Kcr and Kla during development, and provide evidence that multiple histone lysine actlations synchronously alternate to orchestrate transcriptome responding under HDACs inhibition.

developmental biology

Histone lysine crotonylation regulates cell-fate determination of neural stem/progenitor cells by activating bivalent promoters

Histone lysine crotonylation (Kcr), an evolutionarily conserved and widely expressed non-acetyl short-chain lysine acylation, plays important roles in transcriptional regulation and disease development. However, its genome-wide distribution, correlation with gene expression, and dynamic changes during developmental processes are largely unknown. In this study, we find that histone Kcr is mainly distributed in active promoters, has a ge-nome-wide positive correlation with transcriptional activity, and regulates transcription of genes participating in metabolism and proliferation. Moreover, elevated histone Kcr activates bivalent promoters to stimulate gene expression in neural stem/progenitor cells (NSPCs), through increasing chromatin openness and recruitment of RNA polymerase II (Pol II). Functionally, these activated genes remodel transcriptome and promote neuronal differentiation. Author summaryOverall, histone Kcr marks active promoters with high gene expression and modifies the local chromatin environment to allow gene activation, which influences neuronal cell fate. It may represent a unique active histone mark involved in neural developmental regulation.

cell biology