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Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 15, 2013
Lithocholic acid derivatives as potent modulators of the nuclear receptor RORγt
Somaya A Abdel-Rahman1,2, Simone Brogi3, Moustafa T Gabr1
1Department of Radiology, Molecular Imaging Innovations Institute (MI3), Weill Cornell Medicine New York NY 10065 USA mog4005@med.cornell.edu.
Abstract:
Retinoic acid receptor-related orphan receptor γt (RORγt) is a nuclear receptor found in various tissues that plays a crucial role in the differentiation and proliferation of T helper 17 (Th17) cells, as well as in their generation of the pro-inflammatory cytokine IL-17A. RORγt represents a promising therapeutic target for autoimmune diseases, metabolic disorders, and multiple tumors. Despite extensive research efforts focused on the development of small molecule RORγt modulators, no drug candidates have advanced to phase 3 clinical trials owing to a lack of efficacy or safety margin. This outcome highlights the unmet need to optimize small molecule drug candidates targeting RORγt to develop effective therapies for autoimmune and inflammatory diseases. In this study, we synthesized and evaluated 3-oxo-lithocholic acid amidates as a new class of RORγt modulators. Our evaluation entailed biophysical screening, cellular screening in different platforms, molecular docking, and in vitro pharmacokinetic profiling. The top compound from our study (3-oxo-lithocholic acid amidate, A2) binds to RORγt at an equilibrium dissociation constant (KD) of 16.5 ± 1.34 nM based on microscale thermophoresis (MST). Assessment of the efficacy of A2 in the cellular RORγt reporter luciferase assay revealed a half-maximal inhibitory concentration (IC50) value of 225 ± 10.4 nM. Unlike 3-oxo-lithocholic acid, A2 demonstrated the ability to reduce the IL-17A mRNA expression levels in EL4 cells with RORγt expression using quantitative reverse transcriptase PCR (RT-PCR). Validation of the desirable physicochemical properties and stability of A2 sets the stage for the preclinical evaluation of this new class of RORγt modulators in animal models of autoimmune diseases.
Insights
New 3-oxo-lithocholic acid amidates show promise as retinoic acid receptor-related orphan receptor γt (RORγt) modulators. These compounds effectively inhibit RORγt activity and reduce IL-17A expression, offering potential for autoimmune disease therapies.
Area of Science:
- Immunology
- Molecular Biology
- Medicinal Chemistry
Background:
- Retinoic acid receptor-related orphan receptor γt (RORγt) is critical for T helper 17 (Th17) cell function and IL-17A production.
- RORγt is a therapeutic target for autoimmune diseases, metabolic disorders, and tumors.
- Existing small molecule RORγt modulators face challenges in clinical trials due to efficacy and safety concerns.
Purpose of the Study:
- To synthesize and evaluate a novel class of RORγt modulators: 3-oxo-lithocholic acid amidates.
- To assess the binding affinity, cellular efficacy, and pharmacokinetic properties of these new compounds.
- To identify lead compounds for potential therapeutic development against RORγt-mediated diseases.
Main Methods:
- Synthesis of 3-oxo-lithocholic acid amidates.
- Biophysical screening using microscale thermophoresis (MST) to determine binding affinity (KD).
- Cellular assays, including reporter luciferase assays (IC50) and quantitative reverse transcriptase PCR (RT-PCR) to measure IL-17A mRNA expression.
- Molecular docking and in vitro pharmacokinetic profiling.
Main Results:
- The lead compound, 3-oxo-lithocholic acid amidate (A2), exhibited strong binding to RORγt with a KD of 16.5 ± 1.34 nM.
- Compound A2 demonstrated cellular efficacy with an IC50 of 225 ± 10.4 nM in a RORγt reporter assay.
- A2 effectively reduced IL-17A mRNA expression in EL4 cells, unlike the parent compound.
- A2 possesses favorable physicochemical properties and stability.
Conclusions:
- 3-oxo-lithocholic acid amidates represent a promising new class of RORγt modulators.
- Compound A2 shows significant potential as a therapeutic agent for RORγt-driven inflammatory and autoimmune diseases.
- Further preclinical evaluation of A2 in animal models is warranted.
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