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TGF-β1/p53 signaling in renal fibrogenesis
Stephen P Higgins1, Yi Tang1, Craig E Higgins1
1Department of Regenerative and Cancer Cell Biology, Albany Medical College, Albany, NY 12208, United States.
Abstract:
Fibrotic disorders of the renal, pulmonary, cardiac, and hepatic systems are associated with significant morbidity and mortality. Effective therapies to prevent or curtail the advancement to organ failure, however, remain a major clinical challenge. Chronic kidney disease, in particular, constitutes an increasing medical burden affecting >15% of the US population. Regardless of etiology (diabetes, hypertension, ischemia, acute injury, urologic obstruction), persistently elevated TGF-β1 levels are causatively linked to the activation of profibrotic signaling networks and disease progression. TGF-β1 is the principal driver of renal fibrogenesis, a dynamic pathophysiologic process that involves tubular cell injury/apoptosis, infiltration of inflammatory cells, interstitial fibroblast activation and excess extracellular matrix synthesis/deposition leading to impaired kidney function and, eventually, to chronic and end-stage disease. TGF-β1 activates the ALK5 type I receptor (which phosphorylates SMAD2/3) as well as non-canonical (e.g., src kinase, EGFR, JAK/STAT, p53) pathways that collectively drive the fibrotic genomic program. Such multiplexed signal integration has pathophysiological consequences. Indeed, TGF-β1 stimulates the activation and assembly of p53-SMAD3 complexes required for transcription of the renal fibrotic genes plasminogen activator inhibitor-1, connective tissue growth factor and TGF-β1. Tubular-specific ablation of p53 in mice or pifithrin-α-mediated inactivation of p53 prevents epithelial G2/M arrest, reduces the secretion of fibrotic effectors and attenuates the transition from acute to chronic renal injury, further supporting the involvement of p53 in disease progression. This review focuses on the pathophysiology of TGF-β1-initiated renal fibrogenesis and the role of p53 as a regulator of profibrotic gene expression.
Insights
Transforming growth factor-beta 1 (TGF-β1) drives kidney fibrosis by activating p53. Targeting p53 may offer new therapies for chronic kidney disease and other fibrotic disorders.
Area of Science:
- Nephrology
- Molecular Biology
- Pathophysiology
Background:
- Fibrotic disorders significantly increase morbidity and mortality, with chronic kidney disease posing a growing public health challenge.
- Elevated transforming growth factor-beta 1 (TGF-β1) is a key driver of fibrotic progression across multiple organs, including the kidneys.
- Current therapies for fibrotic diseases, particularly kidney failure, remain limited.
Purpose of the Study:
- To review the pathophysiology of TGF-β1-initiated renal fibrogenesis.
- To elucidate the role of p53 as a critical regulator in TGF-β1-induced profibrotic gene expression.
- To highlight potential therapeutic targets for fibrotic disorders.
Main Methods:
- Review of existing literature on TGF-β1 signaling pathways in fibrotic diseases.
- Analysis of the molecular mechanisms involving p53, SMADs, and ALK5 in renal fibrogenesis.
- Examination of data from preclinical models, including p53-deficient mice.
Main Results:
- TGF-β1 activates both canonical (ALK5/SMAD2/3) and non-canonical pathways (including p53) to promote renal fibrogenesis.
- p53 forms complexes with SMAD3, driving the transcription of key fibrotic genes like PAI-1 and CTGF.
- Tubular-specific p53 ablation in mice mitigates renal injury progression and reduces fibrotic markers.
Conclusions:
- p53 is a crucial mediator of TGF-β1-induced profibrotic gene expression in the kidney.
- Targeting the TGF-β1/p53 axis presents a promising therapeutic strategy for preventing or treating renal fibrosis.
- Understanding these pathways could lead to novel treatments for various fibrotic conditions.
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