Expression, Purification and Functional Identification of Extracellular Part of Discoidin Domain Receptor 2

J C Wang1, X P Liu, X Y Nie

  • 1Department of Biochemistry and Molecular Biology, The fourth Military Medical University, Xi'an 710032, China. bioyao@fmmu.edu.cn

Sheng Wu Hua Xue Yu Sheng Wu Wu Li Xue Bao Acta Biochimica Et Biophysica Sinica
|May 30, 2002
PubMed

Insights

Researchers developed a GST-DB fusion protein inhibitor targeting discoidin domain receptor 2 (DDR2). This inhibitor successfully blocked collagen-induced MMP-1 over-expression in cells, highlighting DDR2

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • Discoidin domain receptor 2 (DDR2), a receptor tyrosine kinase, is implicated in tumor metastasis.
  • Fibrillar collagen activates DDR2, leading to matrix metalloproteinase 1 (MMP-1) over-expression.
  • A specific inhibitor for DDR2 is crucial for understanding its cellular functions.

Purpose of the Study:

  • To clone and express a soluble extracellular fragment of DDR2 (DB) as a potential inhibitor.
  • To investigate the inhibitory potential of the GST-DB fusion protein on DDR2 activity.
  • To determine if DDR2 mediates collagen-induced MMP-1 over-expression.

Main Methods:

  • RT-PCR amplification of the DDR2 extracellular fragment (amino acids 23-293) from human lung cancer tissue.
  • Cloning and expression of the GST-DB fusion protein in E. coli.
  • Purification of the GST-DB fusion protein using glutathione affinity chromatography.
  • In vitro assays including competitive binding, zymography, and cell-based functional studies.

Main Results:

  • A soluble GST-DB fusion protein was successfully expressed and purified to 86.1% purity.
  • The purified GST-DB protein inhibited the interaction between collagen II and DDR2 on RA synovial fibroblasts.
  • GST-DB significantly reduced collagen II-induced MMP-1 levels in NIH 3T3 and RA synovial fibroblasts.

Conclusions:

  • The GST-DB fusion protein effectively inhibits DDR2 function in cellular contexts.
  • DDR2 plays a role in mediating collagen II-induced MMP-1 over-expression.
  • This study provides a valuable tool for further research into DDR2 signaling pathways and its role in disease.