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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Exploring novel Apalutamide analogues as potential therapeutics for prostate cancer: design, molecular docking
Ajay Kumar Gupta1, Yogesh Vaishnav1, Sanmati Kumar Jain1
1Drug Discovery and Research Laboratory, Department of Pharmacy, Guru Ghasidas Vishwavidyalaya (A Central University), Bilaspur, Chhattisgarh, India.
Abstract:
Introduction: Prostate cancer (PC) ranks as the second most frequent type of cancer in men and is the fourth largest cause of mortality worldwide. Androgenic hormones such as testosterone and dihydrotestosterone are crucial for the development and progression of the prostate gland. Androgenic hormones bind to androgen receptors (AR) and trigger the synthesis of many genes that stimulate the growth of prostate cells, initiating PC growth. Apalutamide (APL) is a non-steroidal antiandrogen drug used to treat PC; however, it also causes a variety of toxicities and resistance during the treatment. Methods: The purpose of this study was to computationally identify new and safer analogues of APL, focusing on improved pharmacokinetic properties and reduced toxicity. Drug likeness (DL) and drug score (DS) were also calculated. Docking studies on the designed analogues were conducted to predict their binding affinities and compare their orientations with the ligands in the original crystal structure. Molecular dynamics (MD) simulation of docked ligands was done using Schrödinger suite. Results: We generated a total of 1,415 analogues for different groups of APL using the bioisosteric approach. We selected 80 bioisosteres based on pharmacokinetic profiles, DL and DS score predictions, and found that the designed APL bioisosteres were optimal to good compared to APL. Analogues APL19, APL35, APL43, APL76, and APL80, formed hydrogen bonds with protein (PDB ID: 5T8E) which is similar hydrogen bonding to the standard (APL). The MD simulation result confirmed that APL43 and APL80 complexes were stable during the 100 nS run. Discussion: The results suggest that the APL analogues, particularly APL43 and APL80, are predicted to be potential antiandrogen drugs for the treatment of prostate cancer.
Insights
This study computationally identified new prostate cancer drugs, finding analogues APL43 and APL80 are promising safer alternatives to Apalutamide with improved properties.
Area of Science:
- Oncology
- Medicinal Chemistry
- Computational Drug Discovery
Background:
- Prostate cancer (PC) is a leading cause of cancer mortality globally.
- Androgenic hormones drive PC progression by binding to androgen receptors (AR).
- Apalutamide (APL) treats PC but causes toxicities and resistance.
Purpose of the Study:
- To computationally identify novel, safer Apalutamide (APL) analogues for prostate cancer (PC).
- Focus on improving pharmacokinetic properties and reducing drug toxicity.
- Evaluate drug likeness (DL) and drug score (DS) of designed analogues.
Main Methods:
- Generated 1,415 APL analogues using a bioisosteric approach.
- Selected 80 analogues based on pharmacokinetic profiles, DL, and DS predictions.
- Performed molecular docking and 100 ns molecular dynamics (MD) simulations.
Main Results:
- Designed APL bioisosteres showed optimal to good profiles compared to APL.
- Analogues APL43 and APL80 demonstrated stable binding and similar hydrogen bonding to the AR (PDB ID: 5T8E).
- MD simulations confirmed the stability of APL43 and APL80 complexes.
Conclusions:
- APL analogues, especially APL43 and APL80, show potential as effective antiandrogen therapies.
- These analogues may offer improved safety and efficacy for prostate cancer treatment.
- Computational methods are valuable for designing next-generation cancer therapeutics.
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