Synthesis, in vitro, and in silico studies of 4-chlorophenyl-sulfonyl Indole based thiosemicarbazones as competitive α-glucosidase inhibitors

  • Sci Rep. 2025 Nov 6;15(1):38832. doi: 10.1038/s41598-025-24251-w.
Iqra Naseer  1 Saeed Ullah  2 Zahra Batool  1 Mariya Al-Rashida  3 Talha Islam  3 Ajmal Khan  4  5 Javid Hussain  6 Ahmed Al-Harrasi  7 Zahid Shafiq  8 Ahmed Mohamed Tawfeek  9 Mohammad Shahidul Islam  10
Affiliations
  • 1. Institute of Chemical Sciences, Bahauddin Zakariya University, Multan, 60800, Pakistan.
  • 2. Department of Biology and Biochemistry, University of Houston, Houston, TX, 77004, USA.
  • 3. Department of Chemistry, Forman Christian College (A Chartered University), Lahore, Pakistan.
  • 4. Department of Chemical and Biological Engineering, College of Engineering, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul, 02841, Republic of Korea.
  • 5. Natural and Medical Sciences Research Centre, University of Nizwa, Birkat Al Mauz, PC 616, P.O. Box 33, Nizwa, Sultanate of Oman.
  • 6. Department of Biological Sciences and Chemistry, University of Nizwa, Nizwa, Oman.
  • 7. Natural and Medical Sciences Research Centre, University of Nizwa, Birkat Al Mauz, PC 616, P.O. Box 33, Nizwa, Sultanate of Oman. [email protected].
  • 8. Institute of Chemical Sciences, Bahauddin Zakariya University, Multan, 60800, Pakistan. [email protected].
  • 9. Department of Chemistry, College of Science, King Saud University, P. O. Box 2455, Riyadh, 11451, Saudi Arabia.
  • 10. Department of Chemistry, College of Science, King Saud University, P. O. Box 2455, Riyadh, 11451, Saudi Arabia. [email protected].
Abstract

The urgent need for effective and novel solutions to address the rising global epidemic of diabetes mellitus (DM) has become a priority for researchers. This chronic ailment, with its alarming prevalence and life-threatening complications (neuropathy, Retinopathy and nephropathy), necessitates novel therapeutic strategies. Herein we have synthesized a novel series of N-substituted indole-based thiosemicarbazone derivatives 5(a-y) and explored their potential as α-glucosidase inhibitors. All the compounds displayed excellent inhibitory potential with IC50 values in the range 5.38-59.20 µM, vastly outperforming the reference inhibitor acarbose (IC50 = 871.40 ± 1.24 µM). Molecular docking and molecular dynamics simulation were also conducted, which revealed strong binding interactions with the active site of the enzyme. Compound 5u emerged as the most effective α-glucosidase inhibitor, making it a strong lead for the development of novel antidiabetic therapeutics. To strengthen the SAR rationale and to gain mechanistic insights into the enhanced α-glucosidase inhibition, quantum chemical descriptors of the eight most active thiosemicarbazones (5a, 5 h, 5 m, 5n, 5s, 5t, 5u, 5w) were computed using DFT, highlighting their reactivity and stability from a theoretical perspective.

Keywords
4-chlorophenyl-sulfonyl indole; Glucosidase; In silico; Kinetics; Molecular docking.
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