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Published on: February 28, 2017
Receptor tyrosine kinase Axl modulates the osteogenic differentiation of pericytes
Georgina Collett1, Alan Wood, M Yvonne Alexander
1Wellcome Trust Centre for Cell-Matrix Research, University of Manchester, 2.205, Stopford Building, Oxford Road, Manchester M13 9PT, UK.
Abstract:
Vascular pericytes undergo osteogenic differentiation in vivo and in vitro and may, therefore, be involved in diseases involving ectopic calcification and osteogenesis. The purpose of this study was to identify factors that inhibit the entry of pericytes into this differentiation pathway. RNA was prepared from pericytes at confluence and after their osteogenic differentiation (mineralized nodules). Subtractive hybridization was conducted on polyA PCR-amplified RNA to isolate genes expressed by confluent pericytes that were downregulated in the mineralized nodules. The subtraction product was used to screen a pericyte cDNA library and one of the positive genes identified was Axl, the receptor tyrosine kinase. Northern and Western blotting confirmed that Axl was expressed by confluent cells and was downregulated in mineralized nodules. Western blot analysis demonstrated that confluent pericytes also secrete the Axl ligand, Gas6. Immunoprecipitation of confluent cell lysates with an anti-phosphotyrosine antibody followed by Western blotting using an anti-Axl antibody, demonstrated that Axl was active in confluent pericytes and that its activity could not be further enhanced by incubating the cells with recombinant Gas6. The addition of recombinant Axl-extracellular domain (ECD) to pericyte cultures inhibited the phosphorylation of Axl by endogenous Gas6 and enhanced the rate of nodule mineralization. These effects were inhibited by coincubation of pericytes with Axl-ECD and recombinant Gas6. Together these results demonstrate that activation of Axl inhibits the osteogenic differentiation of vascular pericytes.
Insights
Activation of Axl receptor tyrosine kinase inhibits vascular pericyte osteogenic differentiation. This finding is crucial for understanding and potentially treating diseases involving ectopic calcification and abnormal bone formation.
Area of Science:
- Cell Biology
- Biochemistry
- Regenerative Medicine
Background:
- Vascular pericytes exhibit osteogenic differentiation in vitro and in vivo.
- This differentiation process may contribute to ectopic calcification and osteogenesis-related diseases.
Purpose of the Study:
- To identify factors that inhibit pericyte entry into the osteogenic differentiation pathway.
- To investigate the role of the Axl receptor tyrosine kinase in pericyte differentiation.
Main Methods:
- Subtractive hybridization of RNA from confluent and differentiated pericytes.
- Screening of a pericyte cDNA library to identify downregulated genes.
- Northern and Western blotting to confirm gene and protein expression.
- Immunoprecipitation and Western blotting to assess Axl activity.
- Functional assays using recombinant Axl-extracellular domain (ECD) and Gas6.
Main Results:
- Axl receptor tyrosine kinase was identified as downregulated during pericyte osteogenic differentiation.
- Axl was found to be active in confluent pericytes and its ligand Gas6 was secreted.
- Addition of Axl-ECD inhibited endogenous Gas6-mediated Axl phosphorylation.
- Axl-ECD addition enhanced the rate of pericyte mineralization, an effect reversed by co-incubation with Gas6.
Conclusions:
- Activation of Axl signaling inhibits the osteogenic differentiation of vascular pericytes.
- The Axl-Gas6 pathway plays a regulatory role in preventing pericyte-driven osteogenesis.
- Understanding this mechanism could offer therapeutic targets for diseases with aberrant calcification.
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