Molecular Mechanisms of Cardiac Fibrosis: A Pathologist’s Perspective
Молекулярные механизмы фиброза сердца: взгляд патоморфолога
2026-03-05
SCID: 54.1/yk4nehsa
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TGF-β/SMAD signalingcardiac fibroblast activationcardiac fibrosisdigital morphometryextracellular matrix remodeling
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Abstract (AI)
Cardiac fibrosis represents a final common pathway in a wide range of cardiac disorders, leading to structural remodeling, diastolic dysfunction, and heart failure. From a pathologist's viewpoint, fibrotic remodeling displays distinctive morphologic patterns such as interstitial, perivascular, and replacement fibrosis, which mirror specific cellular and molecular mechanisms. Central to this process is the activation of cardiac fibroblasts into myofibroblasts, driven by profibrotic signaling cascades such as transforming growth factor beta (TGF-β)/mothers against decapentaplegic homolog proteins (SMAD), Wingless/Integrated signaling pathway (Wnt)/βeta-catenin, and Hippo-Yes-associated protein (YAP)/transcriptional coactivator with PDZ-binding motif (TAZ) pathways. Neurohumoral mediators, including angiotensin II and aldosterone, further amplify extracellular matrix synthesis and tissue stiffness. Epigenetic modulators and non-coding RNAs (n-c RNAs) orchestrate transcriptional programs that perpetuate fibroblast activation. Histopathological correlates of these molecular events, collagen deposition, alpha-smooth muscle actin (α-SMA) expression, and extracellular matrix (ECM) cross-linking, can be demonstrated through immunohistochemistry and digital morphometry. This review integrates molecular signaling and morphologic evidence to delineate the mechanisms of cardiac fibrosis, emphasizing the pathologist's role as a link between molecular insight and diagnostic interpretation. Understanding these intertwined processes provides the foundation for novel antifibrotic therapies targeting key molecular nodes of fibroblast activation and matrix remodeling.
Key Findings
1
Angiotensin II, aldosterone, epigenetic regulators, and non-coding RNAs amplify extracellular matrix production, tissue stiffness, and persistent fibroblast activation.
2
Cardiac fibroblast activation into myofibroblasts is driven by TGF-β/SMAD, Wnt/β-catenin, and Hippo-YAP/TAZ signaling pathways.
3
Cardiac fibrosis is a common endpoint of diverse cardiac disorders, causing structural remodeling, diastolic dysfunction, and heart failure.
4
Collagen deposition, α-SMA expression, and ECM cross-linking provide histopathological correlates measurable by immunohistochemistry and digital morphometry, linking molecular mechanisms with diagnostic interpretation.
5
Distinct interstitial, perivascular, and replacement fibrosis patterns correspond to specific cellular and molecular mechanisms.
Research Object
Cardiac fibrotic remodeling
Research Subject
The molecular and morphologic mechanisms of cardiac fibrosis, including fibroblast-to-myofibroblast activation, profibrotic signaling, extracellular matrix deposition and cross-linking, and associated histopathological patterns
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2026-03-05
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