Efficient one-pot synthesis of arylated pyrazole-fused pyran analogs: as leads to treating diabetes and Alzheimer's disease

Author:

Hameed Shehryar1,Babatunde Oluwatoyin1,Salar Uzma2ORCID,Jabbar Abdul3ORCID,Chigurupati Sridevi4ORCID,Solangi Mehwish1ORCID,Atta Lubna2,Ul-Haq Zaheer2ORCID,Saleem Faiza1,Bhatia Saurabh5,Al-Harrasi Ahmed5,Taha Muhammad6ORCID,Khan Khalid Mohammed16ORCID

Affiliation:

1. H. E. J. Research Institute of Chemistry, International Center for Chemical & Biological Sciences, University of Karachi, Karachi, 75270, Pakistan

2. Dr. Panjwani Center for Molecular Medicine & Drug Research, International Center for Chemical & Biological Sciences, University of Karachi, Karachi, 75270, Pakistan

3. Department of Veterinary Biosciences, Melbourne Veterinary School, Faculty of Veterinary & Agricultural Sciences, The University of Melbourne, 250 Princes Highway, Werribee, Victoria, 3030, Australia

4. Department of Medicinal Chemistry & Pharmacognosy, College of Pharmacy, Qassim University, Buraydah, 52571, Saudi Arabia

5. Natural & Medical Sciences Research Center, University of Nizwa, 616 Birkat Al Mauz, Nizwa, P.O. Box 33, Oman

6. Department of Clinical Pharmacy, Institute for Research & Medical Consultations (IRMC), Imam Abdulrahman Bin Faisal University, Dammam, P.O. Box 1982, 31441, Saudi Arabia

Abstract

Background: To discover novel lead molecules against diabetes, Alzheimer's disease and oxidative stress, a library of arylated pyrazole-fused pyran derivatives, 1–20, were synthesized in a one-pot reaction. Materials & methods:1H-NMR spectroscopic and electron ionization mass spectrometry techniques were used to characterize the synthetic hybrid molecules 1–20. Analogs were screened against four indispensable therapeutic targets, including α-amylase, α-glucosidase, acetylcholinesterase and butyrylcholinesterase enzymes. Results: Except for derivatives 17 and 18, all other compounds exhibited varying degrees of inhibitory activities against target enzymes. The kinetic studies revealed that the synthetic molecules followed a competitive-type mode of inhibition for α-amylase and acetylcholinesterase enzymes, as well as a non-competitive mode of inhibition for α-glucosidase and butyrylcholinesterase enzymes. In addition, molecular docking studies identified crucial binding interactions of ligands with the enzyme's active site. Conclusion: These molecules may serve as a potential drug candidate to cure diabetes, Alzheimer's disease and oxidative stress in the future.

Funder

The World Academy of Sciences, Trieste, Italy

Sindh Higher Education Commission (SHEC), Pakistan

Publisher

Future Science Ltd

Subject

Drug Discovery,Pharmacology,Molecular Medicine

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