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Ficus deltoidea preserves hippocampal neuronal integrity and redox balance in oxidative stress-driven Alzheimer’s disease-like rat model


Citation

Bukar, Alhaji Modu and Che Mohd Nassir, Che Mohd Nasril and Ayuba, Michael and Manoharan, Sushmita Devi and Usman, Abdulhamid Sani and Umar, Babagana Isa and Hein, Zaw Myo and Mohd Moklas, Mohamad Aris and Mehat, Muhammad Zulfadli and Abdul Hamid, Hafizah (2026) Ficus deltoidea preserves hippocampal neuronal integrity and redox balance in oxidative stress-driven Alzheimer’s disease-like rat model. Molecular Neurobiology, 63. art. no. 763. pp. 1-25. ISSN 0893-7648; eISSN: 1559-1182

Abstract

Alzheimer’s disease (AD) is a progressive neurodegenerative disorder and the leading cause of dementia worldwide, with oxidative stress playing a central role in its pathogenesis. Ficus deltoidea (FD), a medicinal plant rich in flavonoids vitexin and isovitexin, possesses potent antioxidant and anti-inflammatory properties, yet its neuroprotective efficacy in AD remains incompletely characterized. This study investigated the protective effects of FD in a D-galactose- and aluminum chloride (AlCl3)-induced oxidative stress-driven AD-like rat model using behavioral, histological, ultrastructural, and biochemical approaches. Fifty-four male Wistar rats were assigned to six groups: control, AD-like model, donepezil (1 mg/kg), and FD-treated groups (50, 100, and 200 mg/kg) for 10 weeks. Anxiety-like behavior and spatial working memory were assessed using the elevated plus maze (EPM) and T-maze tests, respectively. Hippocampal neuronal integrity was evaluated by hematoxylin and eosin (H&E) staining and transmission electron microscopy (TEM), while oxidative stress biomarkers (MDA, CAT, T-SOD, CuZn-SOD, and HO-1) were quantified using ELISA. FD treatment, particularly at 200 mg/kg, significantly improved spatial working memory and normalized anxiety-related behavior, with treatment responses approaching those observed in the donepezil-treated group. Histological analyses revealed preservation of pyramidal neurons across CA1, CA2, CA3, and dentate gyrus subregions, while ultrastructural studies demonstrated marked protection of mitochondrial integrity, myelin sheath organization, and smooth endoplasmic reticulum morphology. Biochemically, FD significantly reduced lipid peroxidation and enhanced endogenous antioxidant defenses. In conclusion, FD exerted significant neuroprotective effects characterized by preservation of hippocampal structure, maintenance of neuronal ultrastructure, and restoration of redox homeostasis in an oxidative stress-driven AD-like model. These findings demonstrate that FD mitigates oxidative stress-associated neuronal injury and cognitive impairment in a D-galactose and AlCl3-induced AD-like rat model, supporting its potential as a phytotherapeutic candidate for oxidative stress-related neurodegeneration. However, further studies are required to determine its effects on canonical Alzheimer’s disease pathologies, including amyloid and tau abnormalities.


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Additional Metadata

Item Type: Article
Subject: Neuroscience (miscellaneous)
Subject: Neurology
Subject: Cellular and Molecular Neuroscience
Divisions: Faculty of Medicine and Health Science
DOI Number: https://doi.org/10.1007/s12035-026-06053-x
Publisher: Springer
Keywords: Alzheimer’s disease; Cognitive dysfunction; Ficus deltoidea; Hippocampus; Neuroprotection; Oxidative stress; Therapy
Sustainable Development Goals (SDGs): SDG 3: Good Health and Well-being, SDG 12: Responsible Consumption and Production, SDG 15: Life on Land
Depositing User: Ms. Siti Radziah Mohamed@mahmod
Date Deposited: 21 Jul 2026 01:36
Last Modified: 21 Jul 2026 01:36
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1007/s12035-026-06053-x
URI: http://psasir.upm.edu.my/id/eprint/127155
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