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Published on: September 13, 2014
The P2X4 purinergic receptor regulates hepatic myofibroblast activation during liver fibrogenesis
Camille Le Guilcher1, Isabelle Garcin2, Olivier Dellis2
1Sorbonne Université, UPMC, Univ Paris 06, 4 Place Jussieu, 75005 Paris, France; INSERM U1174, France; Univ. Paris Sud, Université Paris Saclay, 91405 Orsay, France.
Background & Aims:
Liver fibrosis is characterized by the accumulation of extracellular matrix produced by hepatic myofibroblasts (hMF), the activation of which is critical to the fibrogenic process. Extracellular ATP, released by dying or stressed cells, and its purinergic receptors, constitute a powerful signaling network after injury. Although the purinergic receptor P2X4 (P2RX4) is highly expressed in the liver, its functions in hMF had never been investigated during liver fibrogenesis.
Methods:
In vivo, bile duct ligation was performed and methionine- and choline-deficient diet administered in wild-type and P2x4 knock-out (P2x4-KO) mice. In vitro, hMF were isolated from mouse (wild-type and P2x4-KO) and human liver. P2X4 pharmacological inhibition (in vitro and in vivo) and P2X4 siRNAs (in vitro) were used. Histological, biochemical and cell culture analysis allowed us to study P2X4 expression and its involvement in the regulation of fibrogenic and fibrolytic factors, as well as of hMF activation markers and properties.
Results:
P2X4 genetic invalidation or pharmacological inhibition protected mice from liver fibrosis and hMF accumulation after bile duct ligation or methionine- and choline-deficient diet. Human and mouse hMFs expressed P2X4, mainly in lysosomes. Invalidation of P2X4 in human and mouse hMFs blunted their activation marker expression and their fibrogenic properties. Finally, we showed that P2X4 regulates calcium entry and lysosomal exocytosis in hMF, impacting on ATP release, profibrogenic secretory profile, and transcription factor activation.
Conclusion:
P2X4 expression and activation is critical for hMF to sustain their activated and fibrogenic phenotype. Therefore, the inactivation of P2X4 may be of therapeutic interest during liver fibrotic diseases.
Lay Summary:
During chronic injury, the liver often repairs with fibrotic tissue, which impairs liver function, and for which there is currently no treatment. We found that a previously unexplored pathway involving the purinergic receptor P2X4, can modulate fibrotic liver repair. Therefore, this receptor could be of interest in the development of novel therapies for fibrotic liver diseases.
Insights
Targeting the P2X4 receptor can reduce liver fibrosis by inhibiting hepatic myofibroblast activation. This finding offers a potential new therapeutic strategy for treating fibrotic liver diseases.
Area of Science:
- Hepatology
- Cell Biology
- Pharmacology
Background:
- Liver fibrosis involves extracellular matrix accumulation driven by hepatic myofibroblasts (hMF).
- Extracellular ATP signaling via purinergic receptors plays a role in liver injury.
- The function of P2X4 receptor (P2RX4) in hMF during liver fibrogenesis was previously unknown.
Purpose of the Study:
- To investigate the role of P2X4 receptor in hepatic myofibroblast activation and liver fibrogenesis.
- To explore P2X4 as a potential therapeutic target for liver fibrosis.
Main Methods:
- Utilized mouse models (bile duct ligation, methionine- and choline-deficient diet) and isolated human/mouse hMF.
- Employed genetic invalidation (P2x4 knock-out mice, siRNAs) and pharmacological inhibition of P2X4.
- Assessed P2X4 expression, hMF activation markers, fibrogenic/fibrolytic factors, and cellular functions.
Main Results:
- P2X4 genetic invalidation or inhibition protected mice against liver fibrosis and hMF accumulation.
- P2X4 was expressed in human and mouse hMF, primarily in lysosomes.
- P2X4 invalidation reduced hMF activation markers and fibrogenic properties, regulating calcium entry and lysosomal exocytosis.
Conclusions:
- P2X4 activation is crucial for maintaining the activated and fibrogenic phenotype of hMF.
- Inactivating P2X4 presents a promising therapeutic avenue for liver fibrotic diseases.
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