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Updated: Jan 25, 2026

Isolation of Primary Human Proximal Tubule Epithelial Cells and Their Use in Creating a Microphysiological Model of the Renal Proximal Tubule
Published on: May 9, 2025
Proximal Tubule Autophagy Differs in Type 1 and 2 Diabetes
Shinsuke Sakai1, Takeshi Yamamoto1, Yoshitsugu Takabatake2
1Department of Nephrology, Osaka University Graduate School of Medicine, Osaka, Japan.
Background:
Evidence of a protective role of autophagy in kidney diseases has sparked interest in autophagy as a potential therapeutic strategy. However, understanding how the autophagic process is altered in each disorder is critically important in working toward therapeutic applications.
Methods:
Using cultured kidney proximal tubule epithelial cells (PTECs) and diabetic mouse models, we investigated how autophagic activity differs in type 1 versus type 2 diabetic nephropathy. We explored nutrient signals regulating starvation-induced autophagy in PTECs and used autophagy-monitoring mice and PTEC-specific autophagy-deficient knockout mice to examine differences in autophagy status and autophagy's role in PTECs in streptozotocin (STZ)-treated type 1 and db/db type 2 diabetic nephropathy. We also examined the effects of rapamycin (an inhibitor of mammalian target of rapamycin [mTOR]) on vulnerability to ischemia-reperfusion injury.
Results:
Administering insulin or amino acids, but not glucose, suppressed autophagy by activating mTOR signaling. In db/db mice, autophagy induction was suppressed even under starvation; in STZ-treated mice, autophagy was enhanced even under fed conditions but stagnated under starvation due to lysosomal stress. Using knockout mice with diabetes, we found that, in STZ-treated mice, activated autophagy counteracts mitochondrial damage and fibrosis in the kidneys, whereas in db/db mice, autophagic suppression jeopardizes kidney even in the autophagy-competent state. Rapamycin-induced pharmacologic autophagy produced opposite effects on ischemia-reperfusion injury in STZ-treated and db/db mice.
Conclusions:
Autophagic activity in PTECs is mainly regulated by insulin. Consequently, autophagic activity differs in types 1 and 2 diabetic nephropathy, which should be considered when developing strategies to treat diabetic nephropathy by modulating autophagy.
Insights
Autophagic activity in kidney cells differs between type 1 and type 2 diabetic nephropathy, primarily regulated by insulin. Understanding these differences is key for developing effective autophagy-modulating therapies for diabetic kidney disease.
Area of Science:
- Cellular Biology
- Renal Physiology
- Metabolic Disorders
Background:
- Autophagy plays a protective role in kidney diseases, making it a therapeutic target.
- Understanding altered autophagy in specific kidney disorders is crucial for therapeutic development.
Purpose of the Study:
- Investigate differences in autophagic activity between type 1 and type 2 diabetic nephropathy.
- Examine nutrient signaling pathways regulating autophagy in kidney proximal tubule epithelial cells (PTECs).
- Assess the role of autophagy in protecting against kidney injury in diabetic models.
Main Methods:
- Utilized cultured PTECs and diabetic mouse models (streptozotocin-treated for type 1, db/db for type 2).
- Employed autophagy-monitoring and PTEC-specific autophagy-deficient knockout mice.
- Investigated the effects of rapamycin (mTOR inhibitor) on ischemia-reperfusion injury.
Main Results:
- Insulin, but not glucose, suppressed autophagy via mTOR signaling.
- Autophagy was suppressed in type 2 diabetic mice but enhanced in type 1 diabetic mice under fed conditions.
- Activated autophagy protected against kidney damage in type 1, while suppressed autophagy worsened it in type 2 diabetic models.
Conclusions:
- Insulin is the primary regulator of autophagic activity in PTECs.
- Distinct autophagic profiles in type 1 and type 2 diabetic nephropathy necessitate tailored therapeutic strategies.
- Modulating autophagy for diabetic nephropathy treatment requires consideration of disease-specific autophagic alterations.
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