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Biology subjects

Li, X. D.

Publications and source records attributed to Li, X. D..

4 recordsLinked to original sources

Quinone reductase 2 reads H3 serotonylation to support neuronal maturation

Histone H3 Gln5 serotonylation (H3Q5ser) is a recently described posttranslational modification1 that plays important roles in guiding transcriptional permissiveness in brain and peripheral systems2-5. H3Q5ser has been implicated in diverse physiological and pathological processes ranging from neural differentiation1 to sensory processing6, circadian rhythmicity7, stress responsivity8, placental gene regulation9, and tumorigenesis10-19. Since H3Q5ser can occur in combination with H3 Lys4 trimethylation (H3K4me3), most mechanistic studies to date have focused on H3Q5sers roles in modulating H3K4me3 reader interactions, where it has been shown to potentiate TAF3/TFIID binding to H3K4me31,20,21 and inhibit the recruitment of K4me3 demethylases21; however, whether H3 serotonylation functions as an autonomous chromatin signaling mark through dedicated reader proteins has remained unknown. Here, using a combination of proteomic-, structural-, molecular-, epigenomic-, and cellular-based approaches, we demonstrate that the Quinone reductase 2 (QR2) enzyme reads H3Q5ser independently of H3K4me3. CRISPR-Cas9-mediated disruption of H3 serotonylation or QR2s binding to the mark in human induced pluripotent stem cell-derived neurons impairs the establishment of neuronal transcriptional programs, alters synaptic connectivity, and disrupts electrophysiological maturation. These findings thus uncover an H3 serotonylation-dependent chromatin signaling axis that is essential for human neurodevelopment.

molecular biology↗

Analysis of the assembly, stabilization and maturation of the multiphasic TAZ biomolecular condensates

Phase separation is an important mechanism ensuring efficient regulation and function in Hippo signaling. Particularly, phase separation of nuclear TAZ has been demonstrated to be essential for its activity. However, the mechanisms of TAZ condensate assembly and maturation are yet undefined. Here we explored these mechanisms using FRAP with two laser beam sizes complemented by microscopy and cell biology approaches. We show that TAZ condensates are multiphasic, with a more stable core and labile periphery. TAZ initially forms small nascent clusters, likely via self-nucleation through the CC domain. These gradually mature into larger condensates through interaction with additional proteins via the WW domain. The condensates are further stabilized/activated by interaction with transcription factors and complexes including TEAD4 and P-TEFb. Of note, the ability of TAZ to form mature condensates is essential for its activities in cellular morphogenesis and tumorigenesis. Our study presents detailed mechanistic analysis of TAZ phase separation, revealing a highly dynamic nature of TAZ condensate maturation and activation. TeaserTAZ condensates grow from nascent clusters into mature condensates by interactions with transcription factors and complexes.

cell biology↗

Lysine-R2HGylation identified as a post-translational modification in R2HG-elevated cancers

R-2-Hydroxyglutarate (R2HG), an oncometabolite predominantly produced by mutated isocitrate dehydrogenase 1/2 (IDH1/2) in various cancers, is known to drive cancer progression through noncovalent inhibition of -ketoglutarate (KG)-dependent enzymes. In this work, we propose an alternative mechanism wherein R2HG contributes to cancer development via covalent modification of biologically critical lysines, a process termed lysine-R2HGylation (KR2HG). We designed and synthesized R2HG-mimicking probes, demonstrating their effectiveness in facilitating KR2HG target profiling and site mapping. We identified KR2HG as a previously unrecognized post-translational modification, confirmed its C5-linkage on GSTP1(K209), and demonstrated that SIRT5 functions as a deacylase for GSTP1-KR2HG in vitro. Furthermore, we found that R2HG slightly but significantly inhibits the enzymatic activity of GSTP1 through KR2HG and dramatically suppresses monocyte differentiation via this catalytically important lysine modification. Our findings provide an alternative perspective on the role of R2HG in leukemia progression and offer a practical tool for the clinical investigation of R2HG-elevated cancers.

molecular biology↗

A cytoskeletal scaffold promotes motile cilia assembly by regulating transition-zone integrity

Motile cilia are eukaryotic organelles with essential chemo- and mechano-sensing functions across evolution, from single cell organisms to humans. Motile cilia of the mammalian nervous, respiratory and reproductive systems are characterized by unique motility proteins to generate fluid flow essential for transporting metabolites and removing mucus. The molecular mechanism of motile cilia biogenesis remains unknown. Here, we use mouse genetics, single-molecule motility assays, proteomics, high-resolution imaging, and in situ cryo-tomography to identify mammalian KIF27, a motor protein of the Kinesin-4 family and homologue of the Hedgehog pathway regulator COS2/KIF7, as a key regulator of motile cilia assembly. We show that KIF27 promotes the integrity of the transition zone, a diffusion barrier situated at the cilium base. Loss of KIF27 causes specific and profound defects in axonemal structure and disrupts cilia beating, which collectively lead to organismal phenotypes that recapitulate primary ciliary dyskinesia. We show that the motile properties of KIF27 are dispensable for its function in motile cilia biogenesis. Instead, KIF27 acts as a microtubule scaffold to regulate the transition zone architecture and enable correct ciliary incorporation of motility-generating proteins. Given that KIF27 homologues exist in different evolutionarily lineages, we propose that the ancestral activities of KIF27/KIF7 kinesins were to form a microtubule-associated scaffold for protein-protein interactions pertinent to cilia formation and signaling. The transition-zone associated KIF27 activities may represent a general building principle for motile cilia assembly in diverse species and cell types.

developmental biology↗