Targeting the inter-monomeric space of TNFR1 pre-ligand dimers: A novel binding pocket for allosteric modulators

Chih Hung Lo1,2

  • 1Department of Biology, Syracuse University, NY 13244, USA.

Insights

Small molecules can allosterically modulate Tumor Necrosis Factor Receptor 1 (TNFR1) signaling by binding to a novel pocket within pre-ligand dimers. This approach offers a new therapeutic strategy for autoimmune and neurodegenerative diseases.

Area of Science:

  • Molecular biology
  • Pharmacology
  • Structural biology

Background:

  • Tumor Necrosis Factor Receptor 1 (TNFR1) signaling is crucial in inflammation and cell death, implicated in autoimmune and neurodegenerative disorders.
  • TNFR1 forms pre-ligand dimers via the pre-ligand assembly domain (PLAD), essential for its signaling cascade.
  • Targeting TNFR1 signaling is a key therapeutic strategy, with previous efforts focusing on competitive PLAD disruption.

Purpose of the Study:

  • To investigate the potential of allosteric modulators targeting the TNFR1 PLAD.
  • To identify novel binding sites for small molecules that modulate TNFR1 signaling.
  • To elucidate the structure-activity relationship of allosteric modulators for TNFR1.

Main Methods:

  • Molecular docking of known allosteric modulators onto the extracellular domain of TNFR1.
  • Pharmacological analyses to assess compound bioactivity and interactions.
  • Structure-activity relationship (SAR) studies.

Main Results:

  • A novel binding pocket was identified in the inter-monomeric space of TNFR1 pre-ligand dimers for allosteric modulators.
  • Allosteric modulators were found to alter TNFR1 dynamics and induce long-range conformational changes without disrupting essential interactions.
  • Pharmacological data provided insights into the bioactivity and interacting residues of these modulators.

Conclusions:

  • Allosteric modulation of TNFR1 offers a promising therapeutic avenue distinct from competitive inhibition.
  • Targeting TNFR1 conformational dynamics through identified binding pockets can lead to new treatment strategies.
  • This research provides a foundation for designing novel chemical scaffolds to target TNFR1 signaling pathways.

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