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Transmembrane Domain Oligomerization Propensity determined by ToxR Assay
Published on: May 26, 2011
A computational model for understanding the oligomerization mechanisms of TNF receptor superfamily
1Department of Systems and Computational Biology, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, NY 10461, United States.
Abstract:
By recognizing members in the tumor necrosis factor (TNF) receptor superfamily, TNF ligand proteins function as extracellular cytokines to activate various signaling pathways involved in inflammation, proliferation, and apoptosis. Most ligands in TNF superfamily are trimeric and can simultaneously bind to three receptors on cell surfaces. It has been experimentally observed that the formation of these molecular complexes further triggers the oligomerization of TNF receptors, which in turn regulate the intracellular signaling processes by providing transient compartmentalization in the membrane proximal regions of cytoplasm. In order to decode the molecular mechanisms of oligomerization in TNF receptor superfamily, we developed a new computational method that can physically simulate the spatial-temporal process of binding between TNF ligands and their receptors. The simulations show that the TNF receptors can be organized into hexagonal oligomers. The formation of this spatial pattern is highly dependent not only on the molecular properties such as the affinities of trans and cis binding, but also on the cellular factors such as the concentration of TNF ligands in the extracellular area or the density of TNF receptors on cell surfaces. Moreover, our model suggests that if TNF receptors are pre-organized into dimers before ligand binding, these lateral interactions between receptor monomers can play a positive role in stabilizing the ligand-receptor interactions, as well as in regulating the kinetics of receptor oligomerization. Altogether, this method throws lights on the mechanisms of TNF ligand-receptor interactions in cellular environments.
Insights
Tumor necrosis factor (TNF) ligand-receptor interactions were simulated using a novel computational method. The study reveals TNF receptors can form hexagonal oligomers, influenced by binding affinities and cellular factors.
Area of Science:
- Molecular Biology
- Computational Biology
- Immunology
Background:
- Tumor necrosis factor (TNF) ligand proteins are extracellular cytokines that bind TNF receptor superfamily members.
- Ligand-receptor binding triggers TNF receptor oligomerization, regulating intracellular signaling pathways like inflammation, proliferation, and apoptosis.
- Understanding TNF receptor superfamily oligomerization mechanisms is crucial for decoding cellular signaling.
Purpose of the Study:
- To develop a computational method for simulating TNF ligand-receptor binding dynamics.
- To investigate the spatial-temporal mechanisms of TNF receptor oligomerization.
- To identify factors influencing the formation of TNF receptor complexes.
Main Methods:
- Developed a novel computational method for physical simulation of TNF ligand-receptor binding.
- Simulated the spatial-temporal process of molecular complex formation.
- Analyzed the influence of molecular affinities and cellular factors on receptor organization.
Main Results:
- Simulations demonstrated TNF receptors can organize into hexagonal oligomers.
- Receptor oligomerization patterns depend on trans/cis binding affinities, ligand concentration, and receptor density.
- Pre-organization of receptors into dimers can stabilize ligand-receptor interactions and regulate oligomerization kinetics.
Conclusions:
- The developed computational method provides insights into TNF ligand-receptor interactions.
- TNF receptor superfamily oligomerization is a complex process influenced by multiple molecular and cellular factors.
- This study enhances understanding of signaling regulation within the TNF receptor superfamily.
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