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Insulinotropic and Beta-Cell Proliferative Effects of Unripe Artocarpus heterophyllus Extract Ameliorate Glucose Dysregulation in High-Fat-Fed Diet-Induced Obese Mice

  • Prawej Ansari
  • , Sara S. Islam
  • , Asif Ali
  • , Md. Samim R. Masud
  • , Alexa D. Reberio
  • , Joyeeta T. Khan
  • , J. M. A. Hannan
  • , Peter R. Flatt
  • , Yasser H. A. Abdel-Wahab

Research output: Contribution to journalArticlepeer-review

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Abstract

Background: Artocarpus heterophyllus, familiar as jackfruit, is a tropical fruit highly valued not only for its nutritional content but also for its medicinal properties, including potential antidiabetic effects. Objectives: This study aimed to evaluate the insulinotropic, β-cell proliferative and anti-hyperlipidaemic properties of the ethanol extract of unripe Artocarpus heterophyllus (EEAH) in high-fat-fed (HFF) diet-induced obese mice. Method: We evaluated acute insulin secretion and β-cell proliferation in BRIN-BD11 cells, and assessed in vitro glucose diffusion and starch digestion. In vivo, acute and chronic studies in HFF induced obese mice measured glucose tolerance, body weight, food and fluid intake, and lipid profiles. A preliminary phytochemical screening was also performed. Results: In this study, EEAH exhibited significant antidiabetic activity through multiple mechanisms. EEAH enhanced glucose-stimulated insulin secretion in BRIN-BD11 β-cells via KATP channel modulation and cAMP-mediated pathways, with partial dependence on extracellular calcium, and it also promoted β-cell proliferation. In vitro assays revealed its ability to inhibit starch digestion and glucose diffusion, indicating delayed carbohydrate digestion and absorption. In high-fat-fed (HFF) obese mice, the acute and chronic oral administration of EEAH improved oral glucose tolerance, reduced fasting blood glucose, decreased body weight, and normalized food and fluid intake. Lipid profile analysis showed increased HDL and reduced total cholesterol, LDL, and triglycerides, while higher doses of EEAH also enhanced gut motility. Phytochemical screening revealed the presence of bioactive compounds such as alkaloids, tannins, flavonoids, saponins, steroids, and terpenoids, which are likely responsible for these therapeutic effects. Conclusion: These findings highlight EEAH as a promising natural candidate for adjunctive therapy in managing type 2 diabetes and associated metabolic disorders and emphasize the importance of future multi-omics studies to elucidate its molecular targets and pathways.
Original languageEnglish
Article number83
Pages (from-to)1-18
Number of pages18
JournalDiabetology
Volume6
Issue number8
Early online date13 Aug 2025
DOIs
Publication statusPublished (in print/issue) - 31 Aug 2025

Bibliographical note

Publisher Copyright:
© 2025 by the authors.

Data Availability Statement

The raw data generated and analyzed during this study are not publicly accessible due to ethical or legal constraints. Requests for access to the data can be directed to the corresponding author and will be considered on a reasonable basis.

Funding

The authors thank Ulster University for Strategic Research Funding and Independent University, Bangladesh (IUB), Dhaka, for providing laboratory resources that facilitated this research.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • insulin resistance
  • hyperglycaemia
  • type 2 diabetes mellitus
  • beta-cell proliferation
  • lipids
  • Artocarpus heterophyllus

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