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Updated: May 10, 2026

Seven Steps to Stellate Cells
Published on: May 10, 2011
CXCL12 induces hepatic stellate cell contraction through a calcium-independent pathway
Yedidya Saiman1, Ritu Agarwal, DaShawn A Hickman
1Icahn School of Medicine at Mount Sinai, 1425 Madison Ave., Rm. 11-70, Box 1123, New York, NY 10029. meena.bansal@mssm.edu.
Insights
CXCL12 binding to CXCR4 activates hepatic stellate cells, promoting contraction and contributing to portal hypertension. This process is calcium-independent and may be targeted by small molecule inhibitors.
Area of Science:
- Hepatology
- Cell Biology
- Vascular Biology
Background:
- Liver fibrosis, cirrhosis, and portal hypertension are leading causes of liver disease mortality.
- Hepatic stellate cells (HSCs) mediate liver fibrosis and regulate intrahepatic blood flow.
- HSCs contribute to portal hypertension in chronic liver disease (CLD).
Purpose of the Study:
- To investigate the role of CXCL12 and its receptor CXCR4 in HSC-mediated portal hypertension.
- To determine if CXCL12 promotes HSC contraction in a CXCR4-dependent manner.
Main Methods:
- HSCs were stimulated with CXCL12 on collagen gel lattices.
- CXCR4 inhibitor (AMD3100), Rho kinase inhibitor (Y-27632), and calcium chelator (BAPTA-AM) were used.
- Myosin light chain (MLC) phosphorylation and gel contraction were measured.
Main Results:
- CXCL12 stimulation induced HSC contraction and MLC phosphorylation.
- AMD3100 blocked CXCL12-induced effects, confirming CXCR4 dependence.
- Rho kinase pathway inhibition also blocked these effects.
- Calcium chelation did not affect CXCL12-induced contraction, indicating a calcium-independent mechanism.
Conclusions:
- CXCL12 promotes HSC contractility via CXCR4 in a predominantly calcium-independent manner.
- The CXCL12/CXCR4 axis represents a novel therapeutic target for portal hypertension.
- Small molecule inhibitors of the CXCL12/CXCR4 axis warrant further investigation.
Abstract:
Liver fibrosis, with subsequent development of cirrhosis and ultimately portal hypertension, results in the death of patients with end-stage liver disease if liver transplantation is not performed. Hepatic stellate cells (HSCs), central mediators of liver fibrosis, resemble tissue pericytes and regulate intrahepatic blood flow by modulating pericapillary resistance. Therefore, HSCs can contribute to portal hypertension in patients with chronic liver disease (CLD). We have previously demonstrated that activated HSCs express functional chemokine receptor, CXCR4, and that receptor engagement by its ligand, CXCL12, which is increased in patients with CLD, leads to further stellate cell activation in a CXCR4-specific manner. We therefore hypothesized that CXCL12 promotes HSC contraction in a CXCR4-dependent manner. Stimulation of HSCs on collagen gel lattices with CXCL12 led to gel contraction and myosin light chain (MLC) phosphorylation, which was blocked by addition of AMD3100, a CXCR4 small molecule inhibitor. These effects were further mediated by the Rho kinase pathway since both Rho kinase knockdown or Y-27632, a Rho kinase inhibitor, blocked CXCL12 induced phosphorylation of MLC and gel contraction. BAPTA-AM, a calcium chelator, had no effect, indicating that this pathway is calcium sensitive but not calcium dependent. In conclusion, CXCL12 promotes stellate cell contractility in a predominantly calcium-independent fashion. Our data demonstrates a novel role of CXCL12 in stellate cell contraction and the availability of small molecule inhibitors of the CXCL12/CXCR4 axis justifies further investigation into its potential as therapeutic target for portal hypertension.
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