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Targeting programmed cell death in diabetic kidney disease: from molecular mechanisms to pharmacotherapy
Fengzhao Liu1, Zhenyu Yang2, Jixin Li3
1First College of Clinical Medicine, Shandong University of Traditional Chinese Medicine, Jinan, 250014, China.
Abstract:
Diabetic kidney disease (DKD), one of the most prevalent microvascular complications of diabetes, arises from dysregulated glucose and lipid metabolism induced by hyperglycemia, resulting in the deterioration of renal cells such as podocytes and tubular epithelial cells. Programmed cell death (PCD), comprising apoptosis, autophagy, ferroptosis, pyroptosis, and necroptosis, represents a spectrum of cell demise processes intricately governed by genetic mechanisms in vivo. Under physiological conditions, PCD facilitates the turnover of cellular populations and serves as a protective mechanism to eliminate impaired podocytes or tubular epithelial cells, thereby preserving renal tissue homeostasis amidst hyperglycemic stress. However, existing research predominantly elucidates individual modes of cell death, neglecting the intricate interplay and mutual modulation observed among various forms of PCD. In this comprehensive review, we delineate the diverse regulatory mechanisms governing PCD and elucidate the intricate crosstalk dynamics among distinct PCD pathways. Furthermore, we review recent advancements in understanding the pathogenesis of PCD and explore their implications in DKD. Additionally, we explore the potential of natural products derived primarily from botanical sources as therapeutic agents, highlighting their multifaceted effects on modulating PCD crosstalk, thereby proposing novel strategies for DKD treatment.
Insights
Diabetic kidney disease involves programmed cell death (PCD) pathways. This review explores PCD crosstalk and natural products for novel therapeutic strategies against DKD.
Area of Science:
- Nephrology
- Cell Biology
- Pharmacology
Background:
- Diabetic kidney disease (DKD) is a major complication of diabetes, driven by hyperglycemia-induced metabolic dysregulation.
- Hyperglycemia damages renal cells like podocytes and tubular epithelial cells, leading to DKD.
- Programmed cell death (PCD) encompasses apoptosis, autophagy, ferroptosis, pyroptosis, and necroptosis, crucial for cellular homeostasis.
Purpose of the Study:
- To review the regulatory mechanisms and crosstalk dynamics of various PCD pathways.
- To elucidate the role of PCD in DKD pathogenesis.
- To explore natural products as potential therapeutic agents for DKD by modulating PCD.
Main Methods:
- Comprehensive literature review of PCD mechanisms and their role in DKD.
- Analysis of existing research on individual and interacting PCD pathways.
- Evaluation of natural products' effects on PCD crosstalk in the context of DKD.
Main Results:
- PCD pathways are intricately interconnected and mutually influence each other.
- Dysregulated PCD contributes significantly to DKD pathogenesis.
- Natural products show potential in modulating PCD crosstalk for DKD treatment.
Conclusions:
- Understanding PCD crosstalk is crucial for developing effective DKD therapies.
- Natural products offer a promising avenue for novel DKD treatment strategies targeting PCD.
- Further research into PCD modulation could revolutionize DKD management.
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