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Published on: April 25, 2025
Kidney fibrosis: from mechanisms to therapeutic medicines
Rongshuang Huang1, Ping Fu2, Liang Ma3
1Kidney Research Institute, Division of Nephrology, West China Hospital, Sichuan University, Chengdu, 610041, China.
Abstract:
Chronic kidney disease (CKD) is estimated to affect 10-14% of global population. Kidney fibrosis, characterized by excessive extracellular matrix deposition leading to scarring, is a hallmark manifestation in different progressive CKD; However, at present no antifibrotic therapies against CKD exist. Kidney fibrosis is identified by tubule atrophy, interstitial chronic inflammation and fibrogenesis, glomerulosclerosis, and vascular rarefaction. Fibrotic niche, where organ fibrosis initiates, is a complex interplay between injured parenchyma (like tubular cells) and multiple non-parenchymal cell lineages (immune and mesenchymal cells) located spatially within scarring areas. Although the mechanisms of kidney fibrosis are complicated due to the kinds of cells involved, with the help of single-cell technology, many key questions have been explored, such as what kind of renal tubules are profibrotic, where myofibroblasts originate, which immune cells are involved, and how cells communicate with each other. In addition, genetics and epigenetics are deeper mechanisms that regulate kidney fibrosis. And the reversible nature of epigenetic changes including DNA methylation, RNA interference, and chromatin remodeling, gives an opportunity to stop or reverse kidney fibrosis by therapeutic strategies. More marketed (e.g., RAS blockage, SGLT2 inhibitors) have been developed to delay CKD progression in recent years. Furthermore, a better understanding of renal fibrosis is also favored to discover biomarkers of fibrotic injury. In the review, we update recent advances in the mechanism of renal fibrosis and summarize novel biomarkers and antifibrotic treatment for CKD.
Insights
Chronic kidney disease (CKD) fibrosis lacks targeted therapies. This review explores mechanisms, biomarkers, and antifibrotic strategies for CKD, offering hope for future treatments.
Area of Science:
- Nephrology
- Fibrosis Research
- Molecular Biology
Background:
- Chronic kidney disease (CKD) affects 10-14% globally, with kidney fibrosis as a key driver of progression.
- Current treatments for CKD primarily delay progression, as no specific antifibrotic therapies exist.
- Kidney fibrosis involves tubule atrophy, inflammation, glomerulosclerosis, and vascular rarefaction within a complex cellular niche.
Purpose of the Study:
- To review recent advancements in understanding the mechanisms of kidney fibrosis in CKD.
- To summarize novel biomarkers for fibrotic injury.
- To discuss emerging antifibrotic treatment strategies for CKD.
Main Methods:
- Review of current scientific literature on kidney fibrosis mechanisms.
- Analysis of single-cell technologies for exploring cellular interactions in fibrosis.
- Examination of genetic and epigenetic factors regulating fibrosis.
Main Results:
- Single-cell technology has elucidated the roles of specific renal tubules, myofibroblast origins, immune cell involvement, and intercellular communication in fibrosis.
- Epigenetic modifications (DNA methylation, RNA interference, chromatin remodeling) offer potential therapeutic targets due to their reversible nature.
- Existing therapies like RAS blockers and SGLT2 inhibitors help delay CKD progression.
Conclusions:
- A deeper understanding of kidney fibrosis mechanisms is crucial for developing effective antifibrotic therapies.
- Novel biomarkers are emerging for fibrotic injury detection.
- Targeting epigenetic mechanisms presents a promising avenue for reversing or halting kidney fibrosis in CKD.
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