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Published on: April 23, 2018
In Silico and In Vivo Investigation of the Anti-Hyperglycemic Effects of Caffeic Acid
Ratnawati Ratnawati1, Muhammad Aswad2, Jumriani Jumriani1
1Postgraduate Program in Pharmacy, Faculty of Pharmacy, Hasanuddin University, Tamalanrea, Makassar 90245, Indonesia.
Abstract:
Hyperglycemia, characterized by elevated blood glucose levels, is a major risk factor for diabetes mellitus and its complications. While conventional therapies are effective, they are often associated with side effects and high costs, necessitating alternative strategies. This study evaluates the potential of caffeic acid (CA), a phenolic compound with reported antihyperglycemic properties, using both in silico and in vivo approaches. Molecular docking simulations revealed that CA demonstrates a strong binding affinity to protein tyrosine phosphatase 1B (PTP1B), a critical enzyme in glucose metabolism, with superior interaction profiles compared to the reference drug, ertiprotafib. In the in vivo studies, a Drosophila melanogaster model was used to investigate the effects of CA under hyperglycemic conditions induced by a high-sugar diet. Treatment with CA, particularly at a concentration of 500 μM, significantly reduced hemolymph glucose levels and improved several physiological and behavioral parameters, including survival rates, body size, body weight, and larval movement. Furthermore, gene expression analysis demonstrated that CA modulates key metabolic and stress-related pathways, enhancing glucose homeostasis and reducing metabolic stress. These findings highlight the dual utility of in silico and in vivo methodologies in elucidating the antihyperglycemic potential of CA. The results support the development of CA as a cost-effective and ethically viable therapeutic candidate with implications for diabetes management in resource-limited settings.
Insights
Caffeic acid (CA) shows promise for managing hyperglycemia, a key diabetes risk factor. In silico and in vivo studies demonstrate CA
Area of Science:
- Biochemistry
- Pharmacology
- Genetics
Background:
- Hyperglycemia is a primary risk factor for diabetes mellitus and its complications.
- Conventional diabetes therapies can have side effects and high costs, driving the need for alternatives.
- Caffeic acid (CA), a natural phenolic compound, exhibits potential antihyperglycemic properties.
Purpose of the Study:
- To evaluate the antihyperglycemic potential of caffeic acid (CA) using in silico and in vivo models.
- To investigate CA's interaction with protein tyrosine phosphatase 1B (PTP1B).
- To assess CA's efficacy in a Drosophila melanogaster model of hyperglycemia.
Main Methods:
- Molecular docking simulations to assess CA's binding affinity to PTP1B.
- In vivo studies using a Drosophila melanogaster model fed a high-sugar diet.
- Analysis of hemolymph glucose levels, physiological parameters, and gene expression in response to CA treatment.
Main Results:
- CA exhibited strong binding affinity to PTP1B in silico, outperforming the reference drug.
- CA treatment significantly reduced hemolymph glucose levels in hyperglycemic Drosophila.
- CA improved survival rates, body size, weight, and larval movement, and modulated metabolic/stress pathways.
Conclusions:
- Caffeic acid demonstrates significant antihyperglycemic potential through PTP1B interaction and metabolic pathway modulation.
- CA offers a cost-effective and ethically viable therapeutic candidate for diabetes management.
- Combined in silico and in vivo approaches effectively elucidate the therapeutic potential of natural compounds like CA.

