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Klotho protects against diabetic kidney disease via AMPK- and ERK-mediated autophagy
Meng Xue1, Feng Yang2, Ying Le1
1Department of Endocrinology and Metabolism, The Second Clinical Medical College, Shenzhen People's HospitalJinan UniversityThe First Affiliated Hospital, Southern University of Science and Technology), Shenzhen, 518020, China.
Background:
Diabetic kidney disease (DKD) is a serious complication of diabetes mellitus and results in serious public health problems. Although a great number of studies have been performed to elucidate the mechanisms of this disease, these mechanisms remain largely unknown.
Methods:
Cell and animal models were first constructed using human renal proximal tubule cells stimulated by high glucose (HG) and mice induced by streptozotocin (STZ). After Klotho overexpression, Klotho expression was assessed by RT-PCR and western blot, immunofluorescence; autophagy and AMPK/ERK proteins were confirmed using western blot or immunohistochemical assay; the autophagosomes were observed by transmission electron microscope; the pathological structure, fibrosis, polysaccharides and glycogen of kidney were evaluated by H&E staining, Masson staining and PAS staining.
Results:
We first confirmed that Klotho expression and autophagic activity were reduced in DM mice and HG-induced human renal proximal tubule cells. Besides, overexpression of Klotho could significantly enhance autophagy and AMPK and ERK1/2 activities in vivo and in vitro, which also could be abolished by selective AMPK inhibitor and ERK activator. Moreover, we proved that Klotho could inhibit hyperglycemia-induced renal tubular damage.
Conclusion:
In summary, our results proved that Klotho improved renal tubular cell autophagy via the AMPK and ERK pathways and played a role in renal protection. These findings provide new insight into the mechanism of Klotho and autophagy in DKD.
Insights
Klotho protein enhances autophagy and protects kidneys in diabetic kidney disease (DKD) by activating AMPK and ERK pathways. This study reveals Klotho
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- Diabetic kidney disease (DKD) is a major complication of diabetes mellitus with poorly understood mechanisms.
- Existing research has not fully elucidated the pathways involved in DKD pathogenesis.
Purpose of the Study:
- To investigate the role of Klotho in diabetic kidney disease.
- To explore the underlying molecular mechanisms, including autophagy and the AMPK/ERK pathways.
Main Methods:
- Utilized high glucose-induced human renal proximal tubule cells and streptozotocin-induced diabetic mice models.
- Assessed Klotho expression, autophagy markers, and AMPK/ERK signaling.
- Examined kidney pathology, fibrosis, and glycogen deposition.
Main Results:
- Klotho expression and autophagy were reduced in diabetic models.
- Overexpression of Klotho enhanced autophagy and AMPK/ERK activity.
- Klotho mitigated hyperglycemia-induced renal tubular damage.
Conclusions:
- Klotho improves renal tubular cell autophagy through the AMPK and ERK pathways.
- Klotho demonstrates a protective role in diabetic kidney disease.
- Findings offer new insights into Klotho and autophagy mechanisms in DKD.
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