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Updated: Jan 17, 2026

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Temporal Proteomic and Phosphoproteomic Profiling Deciphers Molecular Dynamics of Acute-to-Chronic Kidney Disease
Shaowu Zhang1, Huasheng Luo2, Miaotao Wei2
1Guangdong Provincial Key Laboratory of Autophagy and Major Chronic Non-Communicable Diseases, Key Laboratory of Prevention and Management of Chronic Kidney Diseases of Zhanjiang City, Institute of Nephrology, Affiliated Hospital of Guangdong Medical University, Zhanjiang, Guangdong, China; Dr. Neher's Biophysics Laboratory for Innovative Drug Discovery, State Key Laboratory of Quality Research in Chinese Medicine, Faculty of Chinese Medicine, Macau University of Science and Technology, Taipa, Macau, China.
Abstract:
Acute kidney injury (AKI), characterized by a rapid decline in renal function, has high mortality rates and frequently progresses to chronic kidney disease (CKD). A major contributor to AKI is ischemia-reperfusion injury (IRI). However, the global molecular changes underlying the AKI-to-CKD transition post-IRI remain to be fully elucidated. Using 4D label-free proteomic and phosphoproteomic analyses in a murine unilateral IRI model at 1 h, 1 day, 3 days, 7 days, and 28 days post injury, we systematically identified dysregulated proteins, phosphoproteins, and signaling pathways involved in the progression from AKI to CKD. Critically, these analyses consistently revealed the enrichment and sustained activation of NF-κB signaling, a key pathway driving inflammatory and fibrotic responses, across multiple time points. In addition, we identified significant impairment of fatty acid β-oxidation. Notably, our omics analysis specifically identified the dedicator of cytokinesis (Dock) protein family, with Dock2 emerging as a prime candidate due to its known immune regulatory functions. Dock2 expression showed significant upregulation post-IRI and was found predominantly localized to injured tubular epithelial cells. Functional validation demonstrated that Dock2 knockdown attenuated proinflammatory responses in tubular epithelial cells by inhibiting IKKβ-mediated NF-κB activation in vitro. Consistently, pharmacological inhibition of Dock2 by CPYPP ameliorated renal tubular injury, inflammation, and fibrosis in vivo. To our knowledge, this is the first study to reveal the role and mechanism of Dock2 in the AKI-to-CKD progression post-IRI. In conclusion, our findings delineate molecular mechanisms underpinning the transition from AKI to CKD and nominate Dock2 as a promising therapeutic target for mitigating this process.
Insights
This study reveals how acute kidney injury progresses to chronic kidney disease after ischemia-reperfusion injury. It identifies Dock2 as a key protein driving inflammation and fibrosis, offering a potential therapeutic target for kidney disease.
Area of Science:
- Nephrology
- Molecular Biology
- Pathophysiology
Background:
- Acute kidney injury (AKI) has high mortality and often leads to chronic kidney disease (CKD).
- Ischemia-reperfusion injury (IRI) is a major cause of AKI.
- The molecular mechanisms driving the AKI-to-CKD transition post-IRI are not fully understood.
Purpose of the Study:
- To elucidate the global molecular changes during the AKI-to-CKD transition following IRI.
- To identify novel molecular players and pathways involved in kidney fibrosis and inflammation post-AKI.
- To investigate the role of the dedicator of cytokinesis (Dock) protein family, specifically Dock2, in AKI-to-CKD progression.
Main Methods:
- Utilized 4D label-free proteomic and phosphoproteomic analyses in a murine unilateral IRI model.
- Analyzed samples at multiple time points (1 hour to 28 days post-injury).
- Performed in vitro knockdown and in vivo pharmacological inhibition studies.
Main Results:
- Identified sustained activation of NF-κB signaling and impaired fatty acid β-oxidation.
- Discovered significant upregulation and localization of Dock2 in injured tubular epithelial cells (TECs).
- Demonstrated that Dock2 knockdown or inhibition attenuated inflammatory responses and ameliorated kidney injury, inflammation, and fibrosis.
Conclusions:
- The study delineates key molecular mechanisms in the AKI-to-CKD transition post-IRI.
- Dock2 plays a critical role in promoting inflammation and fibrosis through NF-κB activation.
- Dock2 is identified as a promising therapeutic target for preventing AKI progression to CKD.
Related Concept Videos
Acute Kidney Injury II: Pathophysiology
Acute Kidney Injury IV: Diagnostic Studies and Prevention
Acute Kidney Injury I: Introduction
Acute Kidney Injury III: Clinical Manifestations

