bioRxiv Science⌕ Search

Biology subjects

Henis, Y. I.

Publications and source records attributed to Henis, Y. I..

3 recordsLinked to original sources

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↗

TGF-β1 inhibits cholesterol metabolism in hepatocytes to facilitate cell death, EMT and signals for HSC activation.

Background and Aims: Transforming growth factor-{beta}1 (TGF-{beta}1) plays important roles in chronic liver diseases, including metabolic dysfunction-associated steatotic liver disease (MASLD). MASLD involves various biological processes including dysfunctional cholesterol metabolism and contributes to progression to metabolic dysfunction-associated steatohepatitis (MASH) and hepatocellular carcinoma (HCC). However, the reciprocal regulation of TGF-{beta}1 signaling and cholesterol metabolism in MASLD is yet unknown. Methods: Changes in transcription of genes associated with cholesterol metabolism were assessed by RNA-Seq of murine hepatocyte cell line (AML12) and mouse primary hepatocytes (MPH) treated with TGF-{beta}1. Functional assays were performed on AML12 cells (untreated, TGF-{beta}1 treated, or subjected to cholesterol enrichment (CE) or depletion (CD)), and on mice injected with adeno-associated virus 8 (AAV8)-Control/TGF-{beta}1. Results: TGF-{beta}1 inhibited mRNA expression of several cholesterol metabolism regulatory genes, including rate-limiting enzymes of cholesterol biosynthesis in AML12 cells, MPHs, and AAV8-TGF-{beta}1-treated mice. Total cholesterol levels and lipid droplet accumulation in AML12 cells and liver tissue were also reduced upon TGF-{beta}1 treatment. Smad2/3 phosphorylation following 2 h TGF-{beta}1 treatment persisted after CE or CD and was mildly increased following CD, while TGF-{beta}1-mediated AKT phosphorylation (30 min) was inhibited by CE. Furthermore, CE protected AML12 cells from several effects mediated by 72 h incubation with TGF-{beta}1, including EMT, actin polymerization, and apoptosis. CD mimicked the outcome of long term TGF- {beta}1 administration, an effect that was blocked by an inhibitor of the type I TGF-{beta} receptor. Additionally, the supernatant of CE- or CD-treated AML12 cells inhibited or promoted, respectively, the activation of LX-2 hepatic stellate cells. Conclusions: TGF-{beta}1 inhibits cholesterol metabolism while cholesterol attenuates TGF-{beta}1 downstream effects in hepatocytes.

cell biology↗

Phase separation of TAZ compartmentalizes the transcription machinery to promote gene expression

TAZ promotes cell proliferation, development, and tumorigenesis by regulating target gene transcription. However, how TAZ orchestrates the transcriptional responses remains poorly defined. Here we demonstrate that TAZ forms nuclear condensates via liquid-liquid phase separation to compartmentalize its DNA binding co-factor TEAD4, the transcription co-activators BRD4 and MED1 and the transcription elongation factor CDK9 for activation of gene expression. TAZ, but not its paralog YAP, forms phase-separated droplets in vitro and liquid-like nuclear condensates in vivo, and this ability is negatively regulated by Hippo signaling via LATS-mediated phosphorylation and mediated by the coiled-coil domain. Deletion of the TAZ coiled-coil domain or substitution with the YAP coiled-coil domain does not affect the interaction of TAZ with its partners, but prevents its phase separation and more importantly, its ability to induce target gene expression. Thus, our study identifies a novel mechanism for the transcriptional activation by TAZ and demonstrates for the first time that pathway-specific transcription factors also engage the phase separation mechanism for efficient transcription activation.

cell biology↗