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Biology subjects

Jimenez, W.

Publications and source records attributed to Jimenez, W..

3 recordsLinked to original sources

Semaphorin 3C exacerbates liver fibrosis

Background & AimsChronic liver disease is a growing epidemic leading to fibrosis and cirrhosis. TGF-{beta} is the pivotal pro-fibrogenic cytokine which activates hepatic stellate cells (HSC), yet, other molecules can substantially modulate TGF-{beta} signaling in the course of liver fibrosis. Expression of the axon guidance molecules Semaphorins (SEMAs), which signal through Plexins and Neuropilins (NRPs), have been associated with liver fibrosis in HBV-induced chronic hepatitis. This study aims at determining their function in the regulation of HSCs. Approach & ResultsWe analyzed publicly available patient databases and liver biopsies. We employed transgenic mice where genes are deleted only in activated HSCs to perform ex vivo analysis and animal models. SEMA3C is the most enriched member of the Semaphorin family in liver samples from cirrhotic patients. Higher expression of SEMA3C in patients with NASH, alcoholic hepatitis or HBV-induced hepatitis discriminates those with a more pro-fibrotic transcriptomic profile. SEMA3C expression is also elevated in different mouse models of liver fibrosis and in isolated HSCs upon activation. In keeping with this, deletion of SEMA3C in activated HSCs reduces myofibroblast marker expression. Conversely, SEMA3C overexpression exacerbates TGF-{beta}-mediated myofibroblast activation, as shown by increased SMAD2 phosphorylation and target gene expression. Among SEMA3C receptors, only NRP2 expression is maintained upon activation of isolated HSCs. Interestingly, lack of NRP2 in those cells reduces myofibroblast marker expression. Finally, deletion of either SEMA3C or NRP2, specifically in activated HSCs, reduces liver fibrosis in mice. ConclusionSEMA3C is a novel marker for activated HSCs that plays a fundamental role in the acquisition of the myofibroblastic phenotype and liver fibrosis.

pathology

Liver FoxO1 overexpression is positively associated with the degree of liver injury in cirrhotic patients

IntroductionChronic liver disease is associated with high mortality. Liver transplantation is the definitive treatment for patients with end-stage liver disease, improving their survival and quality of life. However, chronic rejection of the graft and the imbalance between the demand and the availability of organs limit its applicability. Therefore, finding therapeutic and/or diagnostic alternatives for these patients is a priority. In this context, preclinical studies in rodents have demonstrated that Akt plays a key role in liver dysfunction. Even with all this evidence, the activation status of Akt and its downstream targets in the liver of patients with chronic hepatopathy is still unknown. Hence, the present study aims to determine the activation status of the molecules involved in the Akt signaling pathway in livers of cirrhotic patients. Materials and MethodsIn this study, 36 liver tissue samples from a cohort of 27 cirrhotic patients and 9 patients without cirrhosis were included. A total of 10 proteins involved in Akt/mTOR pathway (GSK3{beta}, IGF1R, IRS1, mTOR, p70S6K, IR, PTEN, GSK3, TSC2, and RPS6) were analyzed using a multiplex immunoassay based on Luminex(R) technology. ResultsSignificant differences were found in several Akt/mTOR target proteins between the groups of cirrhotic patients vs. non-cirrhotic: FoxO1 (9.5 vs. 4.4; p<0.01), p-Akt (2.1 vs. 1.0; p<0.01), PTEN (3.061 vs. 1.877; p<0.05) and p70S6K (196.3 vs. 270.5; p<0.001). FoxO1 showed the best correlation with biochemical markers of liver injury aspartate aminotransferase and serum alanine aminotransferase (ASAT: r=0.51, p<0.05; ALAT: r=0.49, p<0.05). Moreover, the individual influence of FoxO1 on these parameters was confirmed by multiple regression analysis. It was the only enzyme in the Akt signaling pathway identified as a positive independent predictor of increased ASAT and ALAT levels. ConclusionFoxO1 is overexpressed in the liver of cirrhotic patients after partial hepatectomy. FoxO1 levels are also associated with the degree of liver injury, showing a positive correlation with current biomarkers used in clinical practice to detect liver injury.

cell biology

Loss of the RNA helicase Dhx15 impairs endothelial energy metabolism, lymphatic drainage and tumor metastasis in mice

DHX15 is an ATP-dependent RNA helicase involved in pre-mRNA splicing and a downstream substrate for Akt1, which plays a significant role in vascular biology. The aim of this study was to explore the regulatory function of DHX15 over the vasculature and endothelial cell biology. Results: DHX15-/- was lethal in mouse and zebrafish embryos. DHX15-/- zebrafish also showed an undeveloped parachordal line, which leads to the formation of lymphatic structures. DHX15+/- mice triggered lower vascular network density and impaired lymphatic function postnatally. Transcriptome and proteome analysis of DHX15 silenced LEC revealed alterations in the glycolysis and gluconeogenesis pathways. The validation of these results demonstrated an uncoupling of the glycolysis with the oxidation of pyruvate in the mitochondria and a lower activity of the Complex I, resulting in lower cellular ATP production. Noteworthy, DHX15+/- mice partially inhibited primary tumor growth and reduced lung metastasis after injection of LLC1 tumor cells.

cell biology