Biased signaling: potential agonist and antagonist of PAR2

Kavita Kumari Kakarala1, Kaiser Jamil1

  • 1a Centre for Biotechnology and Bioinformatics (CBB) , School of Life Sciences, Jawaharlal Nehru Institute of Advanced Studies (JNIAS) , 6th Floor, Buddha Bhawan, M. G. Road, Secunderabad 500003 , Telangana , India.

Insights

Protease activated receptor 2 (PAR2) is a target for breast cancer. This study used in silico methods to identify potential biased signaling drugs, offering insights for rational drug design against PAR2.

Area of Science:

  • Biochemistry
  • Pharmacology
  • Computational Biology

Background:

  • Protease activated receptor 2 (PAR2) is a therapeutic target for metastatic breast cancer.
  • PAR2's complex activation and signaling mechanisms hinder drug development.
  • GPCR receptor plasticity offers a framework for understanding PAR2 signaling.

Purpose of the Study:

  • To identify potential agonists and antagonists from the GPCR ligand library (GLL) that may induce biased signaling in PAR2.
  • To explore ligand-mediated signaling possibilities for PAR2.
  • To understand PAR2's molecular mechanism of signaling using in silico methods.

Main Methods:

  • In silico analysis based on GPCR receptor plasticity.
  • Screening of the GPCR ligand library (GLL) for potential PAR2 modulators.
  • Investigating multiple ligand-stabilized receptor conformations.

Main Results:

  • PAR2 may exhibit biased signaling with agonists of serotonin type 1 and β-adrenergic type 1,3 receptors.
  • PAR2 may show biased signaling with antagonists of substance K (NK1), serotonin type 2, dopamine type 4, and thromboxane receptors.
  • Putative ligand-specific conformations of PAR2 were identified.

Conclusions:

  • This study provides structural insights into PAR2 conformations.
  • Identified potential agonists and antagonists offer starting points for rational drug design targeting PAR2.
  • Findings contribute to understanding PAR2 signaling for therapeutic intervention in breast cancer.

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