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Updated: Oct 23, 2025

Fabricating a Kidney Cortex Extracellular Matrix-Derived Hydrogel
Published on: October 13, 2018
Interplay between extracellular matrix components and cellular and molecular mechanisms in kidney fibrosis
Sandra Rayego-Mateos1,2, Sofia Campillo3, Raúl R Rodrigues-Diez1,2,4
1Cellular and Molecular Biology in Renal and Vascular Pathology Laboratory, Fundación Instituto de Investigación Sanitaria-Fundación Jiménez Díaz-Universidad Autónoma Madrid, Madrid 28040, Spain.
Abstract:
Chronic kidney disease (CKD) is characterized by pathological accumulation of extracellular matrix (ECM) proteins in renal structures. Tubulointerstitial fibrosis is observed in glomerular diseases as well as in the regeneration failure of acute kidney injury (AKI). Therefore, finding antifibrotic therapies comprises an intensive research field in Nephrology. Nowadays, ECM is not only considered as a cellular scaffold, but also exerts important cellular functions. In this review, we describe the cellular and molecular mechanisms involved in kidney fibrosis, paying particular attention to ECM components, profibrotic factors and cell-matrix interactions. In response to kidney damage, activation of glomerular and/or tubular cells may induce aberrant phenotypes characterized by overproduction of proinflammatory and profibrotic factors, and thus contribute to CKD progression. Among ECM components, matricellular proteins can regulate cell-ECM interactions, as well as cellular phenotype changes. Regarding kidney fibrosis, one of the most studied matricellular proteins is cellular communication network-2 (CCN2), also called connective tissue growth factor (CTGF), currently considered as a fibrotic marker and a potential therapeutic target. Integrins connect the ECM proteins to the actin cytoskeleton and several downstream signaling pathways that enable cells to respond to external stimuli in a coordinated manner and maintain optimal tissue stiffness. In kidney fibrosis, there is an increase in ECM deposition, lower ECM degradation and ECM proteins cross-linking, leading to an alteration in the tissue mechanical properties and their responses to injurious stimuli. A better understanding of these complex cellular and molecular events could help us to improve the antifibrotic therapies for CKD.
Insights
Chronic kidney disease involves excess extracellular matrix (ECM) buildup. Targeting cellular communication network-2 (CCN2) and understanding cell-matrix interactions may lead to new antifibrotic therapies for kidney fibrosis.
Area of Science:
- Nephrology
- Cell Biology
- Biochemistry
Background:
- Chronic kidney disease (CKD) is marked by pathological extracellular matrix (ECM) accumulation in the kidneys.
- Tubulointerstitial fibrosis is a common feature in glomerular diseases and acute kidney injury (AKI) non-regeneration.
- ECM's role extends beyond scaffolding, influencing cellular functions and disease progression.
Purpose of the Study:
- To review the cellular and molecular mechanisms driving kidney fibrosis.
- To highlight the roles of ECM components, profibrotic factors, and cell-matrix interactions.
- To discuss matricellular proteins, particularly CCN2 (CTGF), as therapeutic targets.
Main Methods:
- Review of existing literature on kidney fibrosis mechanisms.
- Analysis of cellular and molecular pathways involved in ECM production and degradation.
- Examination of cell-matrix interactions mediated by proteins like integrins and CCN2.
Main Results:
- Kidney damage can activate cells to overproduce pro-inflammatory and profibrotic factors, worsening CKD.
- Matricellular proteins, such as CCN2 (CTGF), regulate cell-ECM interactions and cellular phenotypes.
- Increased ECM deposition, reduced degradation, and cross-linking alter tissue mechanics in kidney fibrosis.
Conclusions:
- Understanding the complex cellular and molecular events in kidney fibrosis is crucial.
- CCN2 (CTGF) is a key matricellular protein and a potential antifibrotic target.
- Improved knowledge can advance the development of effective antifibrotic therapies for CKD.
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