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Biophysical characterization of the membrane-proximal ectodomain of the receptor-type protein-tyrosine phosphatase phogrin. | LitMetric

Biophysical characterization of the membrane-proximal ectodomain of the receptor-type protein-tyrosine phosphatase phogrin.

Protein Pept Lett

Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, Roque Sáenz Pñna 352, B1876XD Bernal, Buenos Aires, Argentina.

Published: September 2013

AI Article Synopsis

  • The receptor-type protein-tyrosine phosphatase phogrin, found in pancreatic islet β-cells, is important for regulating insulin secretion and maintaining β-cell growth and stability.
  • The mature ectodomain of phogrin was successfully produced and characterized, confirming it is a properly folded monomeric protein with a specific energy stability range.
  • A structural model of phogrin based on a similar protein (ICA512) was developed, serving as a foundation for further studies on its function and interactions within the cell.

Article Abstract

The receptor-type protein-tyrosine phosphatase (RPTP) phogrin is localized at the membrane of secretory granules of pancreatic islet β-cells and, similarly to the closely related ICA512, plays a role in the regulation of insulin secretion, in ensuring proper granulogenesis and stability, and in the regulation of β-cell growth. The mature membraneproximal ectodomain of phogrin (MPE phogrin) was produced as a recombinant protein and characterized. CD, fluorescence, controlled proteolysis, size-exclusion chromatography, and multi-angle light scattering showed that it is a properlyfolded monomeric domain. Equilibrium experiments, in the presence of guanidinium chloride and thermal unfolding, suggest a two-state mechanism with a ΔG of 2.3-3.3 kcal/mol, respectively. The study establishes common features and differences of MPE phogrin and the homologous ectodomain of ICA512. A homology model of phogrin was built based in the x-ray structure of MPE ICA512. The model is a starting point for modeling the entire receptor and for testing the quaternary structure and interactions of this protein in vivo. A description of the membrane insertion mode and putative interacting surfaces of this large protein is fundamental for the understanding of its biological function.

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Source
http://dx.doi.org/10.2174/0929866511320090007DOI Listing

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