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Apelin-13 Alleviates Diabetes-Associated Cognitive Decline by Reducing Oxidative Stress and Mitochondrial Dysfunction
Shanshan Hu1, Chaoyang Lan1, Shengnan Shu1
1Department of Neurology, Longyou County People's Hospital, Quzhou, Zhejiang, China.
Abstract:
The incidence of diabetes-related cognitive dysfunction is on the rise, yet clinical interventions to prevent this condition remain limited. Apelin-13, an endogenous peptide known for its positive inotropic and vasoactive properties, has been shown to exert diverse effects across various tissues and cell types. However, its potential protective role in diabetes-associated cognitive decline (DACD) remains poorly understood. To investigate this, we established a rodent diabetes model using a high-fat diet (HFD) combined with streptozotocin (STZ, intraperitoneal injection, 60 mg/kg). Cognitive function was evaluated using the Morris water maze and Y-maze tests. Additionally, we employed a range of techniques, including intraperitoneal glucose tolerance tests (IPGTT), insulin tolerance tests (ITT), immunofluorescence labeling, real-time PCR, Western blot analysis, and enzyme-linked immunosorbent assays (ELISA). Our results demonstrate that apelin-13 administration alleviated diabetes symptoms in the diabetic mouse model. Specifically, apelin-13 improved cognitive performance in both the Y-maze and Morris water maze tests. In the hippocampus of treated mice, apelin-13 reduced oxidative stress by enhancing the activity of superoxide dismutase (SOD) and catalase (CAT), while decreasing levels of malondialdehyde (MDA) and 4-hydroxynonenal (4-HNE). Furthermore, apelin-13 improved mitochondrial function in the hippocampus by restoring the activities of COX I and COX IV (but not COX II) and increasing ATP production. Apelin-13 also restored SIRT3 expression and elevated the NAD+/NADH ratio in the hippocampus. As a result, apelin-13 facilitated the deacetylation and nuclear translocation of Foxo3a in the hippocampus. When SIRT3 was silenced, the beneficial effects of apelin-13 on oxidative stress, mitochondrial function, and cognitive impairment in diabetic mice were significantly diminished, underscoring the critical role of SIRT3 in these processes. In summary, our findings suggest that apelin-13 mitigates DACD by reducing oxidative stress and mitochondrial dysfunction through the SIRT3/Foxo3 pathway. These results highlight apelin-13 as a promising therapeutic candidate for DACD.
Insights
Apelin-13 peptide treatment improved cognitive function in diabetic mice by reducing oxidative stress and enhancing mitochondrial function. This neuroprotective effect is mediated through the SIRT3/Foxo3 pathway, suggesting apelin-13 as a potential therapy for diabetes-associated cognitive decline.
Area of Science:
- Neuroscience
- Endocrinology
- Metabolic Disorders
Background:
- Diabetes-related cognitive dysfunction (DACD) is a growing concern with limited clinical interventions.
- Apelin-13, a peptide with known vasoactive properties, has potential but poorly understood roles in neurological health.
- Understanding mechanisms to protect against cognitive decline in diabetes is crucial.
Purpose of the Study:
- To investigate the potential protective effects of apelin-13 against diabetes-associated cognitive decline (DACD).
- To elucidate the underlying mechanisms, including oxidative stress, mitochondrial function, and the SIRT3/Foxo3 pathway.
Main Methods:
- A rodent model of diabetes was induced using a high-fat diet and streptozotocin.
- Cognitive function was assessed using Morris water maze and Y-maze tests.
- Biochemical analyses included glucose/insulin tolerance tests, oxidative stress markers (SOD, CAT, MDA, 4-HNE), mitochondrial function assays, NAD+/NADH ratio, Western blot, and ELISA, with and without SIRT3 silencing.
Main Results:
- Apelin-13 administration significantly improved cognitive performance in diabetic mice.
- Apelin-13 reduced hippocampal oxidative stress and enhanced mitochondrial function, evidenced by restored enzyme activities and increased ATP production.
- Apelin-13 upregulated SIRT3 expression, increased the NAD+/NADH ratio, promoted Foxo3a deacetylation and nuclear translocation, with these effects being diminished upon SIRT3 silencing.
Conclusions:
- Apelin-13 effectively mitigates diabetes-associated cognitive decline in a rodent model.
- The neuroprotective effects are mediated by reducing oxidative stress and improving mitochondrial function via the SIRT3/Foxo3 pathway.
- Apelin-13 represents a promising therapeutic candidate for treating cognitive dysfunction in diabetes.
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