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Link, F.

Publications and source records attributed to Link, F..

6 recordsLinked to original sources

EGF/STAT1 signals to maintain ECM1 expression in hepatic homeostasis are disrupted by IFNγ/NRF2 in chronic liver disease

In healthy livers, extracellular matrix protein 1 (ECM1) is essential for liver homeostasis by keeping latent transforming growth factor-{beta} (LTGF-{beta}) quiescent. Upon hepatocyte damage, ECM1 is downregulated, facilitating LTGF-{beta} activation and fibrogenesis. However, little is known about how hepatic ECM1 is regulated. Here we found in healthy hepatocytes, EGF/EGFR signaling sustains ECM1 expression through phosphorylating STAT1 at S727, enhancing its binding to the ECM1 promoter and boosting gene transcription. During liver inflammation, accumulating IFN{gamma} disrupts this process by downregulating EGFR and inhibiting EGF/EGFR/STAT1-mediated ECM1 promoter binding. Mechanistically, IFN{gamma}-induced STAT1 phosphorylation at Y701 impairs the binding of p-STAT1 S727 to the ECM1 promoter. Additionally, IFN{gamma} induces NRF2 nuclear translocation, which repressively binds to the ECM1 promoter, further reducing its expression. These findings were confirmed in several chronic liver disease (CLD) mouse models. Moreover, AAV8-ECM1 significantly attenuates liver fibrosis and injuries in Western diet (WD)-fed mice. Notably, in patients with CLD, ECM1 levels align with EGFR expression, while NRF2 and LTGF-{beta} activation show a negative correlation with both.

cell biology↗

The actomyosin system is essential for the integrity of the endosomal system in bloodstream form Trypanosoma brucei

The actin cytoskeleton is a ubiquitous feature of eukaryotic cells, yet its complexity varies across different taxa. In the parasitic protist Trypanosoma brucei, a rudimentary actomyosin system consisting of one actin gene and two myosin genes has been retained despite significant investment in the microtubule cytoskeleton. The functions of this highly simplified actomyosin system remain unclear, but appear to centre on the endomembrane system. Here, advanced light and electron microscopy imaging techniques together with biochemical and biophysical assays were used to explore the relationship between the actomyosin and endomembrane systems. The class I myosin (TbMyo1) had a large cytosolic pool and its ability to translocate actin filaments in vitro was shown here for the first time. TbMyo1 exhibited strong association with the endosomal system and was additionally found on glycosomes. At the endosomal membranes, TbMyo1 colocalised with markers for early and late endosomes (TbRab5A and TbRab7, respectively), but not with the marker associated with recycling endosomes (TbRab11). Actin and myosin were simultaneously visualised for the first time in trypanosomes using an anti-actin chromobody. Disruption of the actomyosin system using the actin-depolymerising drug latrunculin A resulted in a delocalisation of both the actin chromobody signal and an endosomal marker, and was accompanied by a specific loss of endosomal structure. This suggests that the actomyosin system is required for maintaining endosomal integrity in T. brucei.

cell biology↗

Retinoic acid generates a beneficial microenvironment for liver progenitor cell activation in acute liver failure

ObjectiveWhen massive necrosis occurs in acute liver failure (ALF), rapid expansion of hepatic stem cells called liver progenitor cells (LPC) in a process called ductular reaction (DR) is required for survival. The exact underlying mechanisms of this process are not known to date. In ALF, high levels of retinoic acid (RA), a molecule known for its pleiotropic roles in embryonic development, are secreted by activated hepatic stellate cells (HSCs). We hypothesized that RA plays a key role during DR in ALF. MethodsRNA-Seq was performed to identify molecular signaling pathways affected by all-trans retinoid acid (atRA) treatment in HepaRG LPC cells. Functional assays for RA were performed in HepaRG cells with atRA treatment as well as co-culture with LX-2 cells in vitro, and liver tissue of patients suffering from ALF in vivo. ResultsUnder ALF conditions, activated HSCs secreted RA, inducing RAR nuclear translocation in LPCs. RNA-seq data and investigations in HepaRG cells revealed that atRA treatment activated the WNT-{beta}-Catenin pathway, enhanced stemness genes (SOX9, AFP, et.al), promoted energy storage, and elevated the expression of ATP-binding cassette (ABC) transporters depending on RAR nuclear translocation. Further, atRA treatment-induced pathways were confirmed in a co-culture system of HepaRG with LX-2 cells. Patients with ALF who displayed RAR nuclear translocation in LPC had significantly better MELD scores than those without. ConclusionIn ALF, RA secreted by activated hepatic stellate cells promotes LPC activation, a prerequisite for subsequent LPC-mediated liver regeneration.

cell biology↗

Extracellular Matrix Protein 1 Attenuates Hepatic Fibrosis by Inhibiting TSP-, ADAMTS-, and MMP-Mediated Latent TGF-β1 Activation

ObjectiveExtracellular Matrix Protein 1 (ECM1) serves as a gatekeeper of hepatic fibrosis by maintaining transforming growth factor-{beta}1 (TGF-{beta}1) in its latent form. ECM1 knockout (KO) causes latent (L) TGF-{beta}1 activation, resulting in hepatic fibrosis with rapid mortality. In chronic liver disease (CLD), ECM1 decreases with increasing CLD severity. We investigate the regulatory role of ECM1 in TGF-{beta}1 bioavailability and its impact on CLD progression. DesignRNAseq was performed to analyze hepatic gene expression. Functional assays were performed using hepatic stellate cells (HSCs), Ecm1-KO and Fxr-KO mice, patient liver tissue, and computer simulations. ResultsExpression of LTGF-{beta}1 activators, including thrombospondins (TSPs), ADAMTS proteases, and matrix metalloproteinases (MMPs) increased along with pro-fibrotic gene expression in liver tissue of Ecm1-KO mice. In HSCs, overexpression of ECM1 prevented TSP-1-, ADAMTS1-, and MMP-2/9-mediated LTGF-{beta}1 activation. In vitro interaction assays demonstrated that ECM1 inhibited LTGF-{beta}1 activation by interacting with TSP-1 and ADAMTS1 via their respective, intrinsic KRFK or KTFR amino acid sequences, and by suppressing MMP-2/9 proteolytic activity. In mice, ECM1 overexpression attenuated KRFK-induced LTGF-{beta}1 activation, while KTFR treatment reversed Ecm1-KO- and Fxr-KO-mediated liver injury. In patients with CLD, ECM1 expression was inversely correlated with TSP-1, ADAMTS1, MMP-2/9 expression and LTGF-{beta}1 activation. And these results were complemented by a computational compartment model representing the key network of cellular phenotypes and predicted interactions in liver fibrogenesis. ConclusionOur findings underscore the hepatoprotective effect of ECM1, which interferes with mediators of LTGF-{beta}1 activation, suggesting ECM1 or its representative peptide as potential anti-fibrotic therapies in CLD. What is already known on this topic?[tpltrtarr] ECM1 expression is negatively correlated with CLD progression. [tpltrtarr]ECM1 maintains liver homeostasis by keeping TGF-{beta}1 latency. What this study adds?[tpltrtarr] ECM1 inhibits LTGF-{beta}1 activation through interfering with key activators, including TSP-1, ADAMTS1, MMP-2, and MMP-9. [tpltrtarr]ECM1 interacts with TSP-1 and ADAMTS1 via their respective, intrinsic KRFK or KTFR amino acid motifs, and suppresses MMP-2/9 proteolytic activity. [tpltrtarr]In vivo, ECM1 overexpression mitigates KRFK peptide-induced LTGF-{beta}1 activation, while KTFR peptide rescues Ecm1-KO- and Fxr-KO-induced liver injury. [tpltrtarr]ECM1 expression inversely correlates with TSP-1, ADAMTS1, MMP-2/9 expression and LTGF-{beta}1 activation in CLD patients. How might this study affect research, practice or policy?[tpltrtarr] Considering severe adverse effects associated with anti-fibrotic treatments utilizing TGF-{beta}1 receptor inhibitors, our findings indicate that restoration of ECM1 expression or phenocopying peptides might represent a novel and safe route to urgently needed anti-fibrotic therapies in CLD.

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↗

Continuous endosomes form functional subdomains and orchestrate rapid membrane trafficking in trypanosomes

Endocytosis is a common process observed in most eukaryotic cells, although its complexity varies among different organisms. In Trypanosoma brucei, the endocytic machinery is under special selective pressure because rapid membrane recycling is essential for immune evasion. This unicellular parasite effectively removes host antibodies from its cell surface through hydrodynamic drag and fast endocytic internalization. The entire process of membrane recycling occurs exclusively through the flagellar pocket, an extracellular organelle situated at the posterior pole of the spindle-shaped cell. The high-speed dynamics of membrane flux in trypanosomes do not seem compatible with the conventional concept of distinct compartments for early, late and recycling endosomes. To investigate the underlying structural basis for the remarkably fast membrane traffic in trypanosomes, we employed advanced techniques in light and electron microscopy to examine the three-dimensional architecture of the endosomal system. Our findings reveal that the endosomal system in trypanosomes exhibits a remarkably intricate structure. Instead of being compartmentalized, it constitutes a continuous membrane system, with specific functions of the endosome segregated into membrane subdomains enriched with classical markers for early, late, and recycling endosomes. These membrane subdomains can partly overlap or are interspersed with areas that are negative for endosomal markers. This continuous endosome allows fast membrane flux by facilitated diffusion that is not slowed by multiple fission and fusion events.

cell biology↗