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Xuesaitong Protects Podocytes from Apoptosis in Diabetic Rats through Modulating PTEN-PDK1-Akt-mTOR Pathway
Rui Xue1, Ruonan Zhai1, Ling Xie2
1Department of Nephrology, Shanghai Jiao Tong University Affiliated to Sixth People's Hospital, Shanghai 200233, China.
Abstract:
Diabetic kidney disease (DKD) is a major cause of end-stage renal disease (ESRD), and therapeutic strategies for delaying its progression are limited. Loss of podocytes by apoptosis characterizes the early stages of DKD. To identify novel therapeutic options, we investigated the effects of Xuesaitong (XST), consisting of total saponins from Panax notoginseng, on podocyte apoptosis in streptozotocin- (STZ-) induced diabetic rats. XST (5 mg/kg·d) or Losartan (10 mg/kg·d) was given to diabetic rats for 12 weeks. Albuminuria, renal function markers, and renal histopathology morphological changes were examined. Podocyte apoptosis was determined by triple immunofluorescence labelling including a TUNEL assay, WT1, and DAPI. Renal expression of Nox4, miRNA-214, PTEN, PDK1, phosphorylated Akt, mTOR, and mTORC1 was detected. In diabetic rats, severe hyperglycaemia and albuminuria developed, and apoptotic podocytes were markedly increased in diabetic kidneys. However, XST attenuated albuminuria, mesangial expansion, podocyte apoptosis, and morphological changes of podocytes in diabetic rats. Decreased expression of PTEN, as well as increased expression of Nox4, miRNA-214, PDK1, phosphorylated Akt, mTOR, and mTORC1, was detected. These abnormalities were partially restored by XST treatment. Thus, XST ameliorated podocyte apoptosis partly through modulating the PTEN-PDK1-Akt-mTOR pathway. These novel findings might point the way to a natural therapeutic strategy for treating DKD.
Insights
Xuesaitong (XST), a natural compound, reduced podocyte apoptosis in diabetic kidney disease (DKD) rats. XST may offer a novel therapeutic strategy for DKD by modulating the PTEN-PDK1-Akt-mTOR pathway.
Area of Science:
- Nephrology
- Pharmacology
- Diabetology
Background:
- Diabetic kidney disease (DKD) is a leading cause of end-stage renal disease (ESRD).
- Limited therapeutic options exist to slow DKD progression.
- Podocyte apoptosis is a key feature in early DKD stages.
Purpose of the Study:
- To investigate the therapeutic potential of Xuesaitong (XST), derived from Panax notoginseng, on podocyte apoptosis in a rat model of DKD.
- To elucidate the molecular mechanisms underlying XST's effects on podocyte injury.
Main Methods:
- Streptozotocin (STZ)-induced diabetic rats were treated with XST or Losartan for 12 weeks.
- Evaluated albuminuria, renal function, and renal histopathology.
- Assessed podocyte apoptosis using TUNEL assay, WT1, and DAPI immunofluorescence.
- Measured renal expression of Nox4, miRNA-214, PTEN, PDK1, p-Akt, mTOR, and mTORC1.
Main Results:
- Diabetic rats exhibited hyperglycemia, albuminuria, and increased podocyte apoptosis.
- XST treatment attenuated albuminuria, mesangial expansion, and podocyte apoptosis.
- XST partially restored renal expression of PTEN, Nox4, miRNA-214, PDK1, p-Akt, mTOR, and mTORC1.
Conclusions:
- Xuesaitong (XST) ameliorates podocyte apoptosis and kidney damage in diabetic rats.
- XST's protective effects are partly mediated by modulating the PTEN-PDK1-Akt-mTOR signaling pathway.
- XST represents a potential natural therapeutic strategy for managing diabetic kidney disease (DKD).
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