Scientific dossier · Pillar · Tissue biology
Fibrosis
Fibrosis is the excessive, persistent build-up of extracellular matrix — mostly collagen — that stiffens tissue and impairs its function. It is not a disease by itself but a shared mechanism underlying many chronic conditions in the lung, liver, heart, kidney, skin, penis and hand. This dossier reviews its causes, mechanisms, organ-by-organ presentations, diagnosis, treatments and current research — with a critical look at the scientific evidence.
Introduction
Fibrosis is one of the most universal biological mechanisms in human disease. It links conditions as different as idiopathic pulmonary fibrosis, hepatic cirrhosis, chronic kidney disease, post-infarction heart failure, systemic sclerosis, Dupuytren's contracture and Peyronie's disease. Understanding fibrosis means understanding how normal wound healing, when repeated or unresolved, tips over into pathological scarring.
This dossier is written for patients, caregivers and healthcare professionals looking for a clear, neutral, evidence-based overview of what fibrosis is, why it develops, which organs it affects and what current medicine can — and cannot — do about it. It is not restricted to pulmonary fibrosis: the goal is a broad, organ-agnostic view of fibrotic biology.
Key takeaways
- Fibrosis is the excessive, persistent accumulation of extracellular matrix — mostly collagen — that stiffens tissue and impairs its function.
- It is not a disease by itself: fibrosis is a shared mechanism underlying many chronic conditions in the lung, liver, heart, kidney, skin, penis and hand.
- At the cellular level, fibroblasts differentiate into contractile myofibroblasts under TGF-β1, deposit type I/III collagen and resist turnover by MMPs.
- Early fibrosis can partially regress if the underlying cause is treated; mature, cross-linked fibrosis is difficult to reverse and progression can only be slowed.
- Two antifibrotic drugs (pirfenidone, nintedanib) are approved in idiopathic pulmonary fibrosis. Renin-angiotensin blockade is established in kidney and cardiac fibrosis.
Quick facts
| Definition | Excess, disorganised extracellular matrix (mostly collagen) causing tissue stiffening and loss of function. |
| Nature | Biological mechanism shared by many diseases, not a disease per se. |
| Main driver cell | Myofibroblast (α-SMA-positive activated fibroblast). |
| Master cytokine | Transforming growth factor beta 1 (TGF-β1). |
| Key matrix components | Collagen type I and III, fibronectin, elastin, proteoglycans. |
| Reversible? | Partially in early stages; largely irreversible when mature and cross-linked. |
| Global burden | Fibrotic diseases contribute to an estimated 45% of deaths in industrialised countries. |
| Approved antifibrotics | Pirfenidone and nintedanib (idiopathic pulmonary fibrosis). |
What is fibrosis?
Fibrosis is the excessive, persistent accumulation of extracellular matrix — mostly type I collagen — in a tissue, in response to repeated or unresolved injury. It replaces functional parenchyma with scar-like tissue, stiffens the organ and impairs its function.
Unlike a benign scar left after a single wound heals, fibrosis is a dynamic and self-sustaining process. Activated fibroblasts differentiate into contractile myofibroblasts, deposit cross-linked collagen and resist normal turnover by matrix metalloproteinases (MMPs). Over time, the affected tissue becomes stiffer, less vascularised and progressively unable to perform its specialised functions — gas exchange in the lung, filtration in the kidney, contraction in the heart, storage and detoxification in the liver.
Fibrosis is not a disease by itself: it is a shared mechanism that manifests as many distinct clinical conditions depending on where it occurs.
How does fibrosis develop?
Fibrosis develops when a tissue is injured repeatedly or when repair signalling fails to switch off after normal wound healing. Under those conditions, fibroblasts remain activated as myofibroblasts and continue depositing collagen long after the initial injury.
Almost every fibrotic disease follows the same overall sequence:
- Injury to the parenchyma (viral, toxic, metabolic, ischaemic, autoimmune or mechanical).
- Inflammation with recruitment of neutrophils, monocytes and lymphocytes; release of cytokines and reactive oxygen species.
- Repair phase: fibroblasts are activated, proliferate and secrete a provisional matrix.
- Resolution in normal healing: myofibroblasts undergo apoptosis and the matrix is remodelled into functional tissue.
- Persistent activation in fibrosis: myofibroblasts do not disappear, collagen deposition continues and the tissue stiffens.
Normal wound healing vs fibrosis
Normal wound healing and fibrosis share the same actors — fibroblasts, myofibroblasts, TGF-β, collagen — but differ in duration and in the ability of the tissue to switch repair off.
| Criterion | Normal healing | Fibrosis |
|---|---|---|
| Trigger | Single, self-limited injury. | Repeated, chronic or unresolved injury. |
| Inflammation | Acute, resolves within days. | Low-grade, persistent, self-sustaining. |
| Fibroblast activity | Transient activation, apoptosis at the end of repair. | Persistent activation, resistance to apoptosis, senescence. |
| Myofibroblasts | Appear briefly, then disappear. | Persist and accumulate in the tissue. |
| Matrix | Provisional matrix remodelled into functional tissue. | Excess collagen I, cross-linked, disorganised. |
| Endpoint | Restored architecture and function. | Stiff scar-like tissue, loss of function. |
For a detailed view of the physiological repair process, see our dossier on normal wound healing.
Which organs can develop fibrosis?
Virtually any organ can develop fibrosis. The clinical presentation, natural history and treatment depend on the organ, but the underlying cellular mechanism is largely conserved: fibroblast activation, TGF-β1 signalling, myofibroblast persistence and excess collagen deposition.
| Organ | Main disease | Mechanism | Consequence |
|---|---|---|---|
| Lung | Idiopathic pulmonary fibrosis, ILD progression | Repeated alveolar epithelial injury, aberrant repair, peri-alveolar fibroblast activation. | Progressive dyspnoea, restrictive respiratory failure. |
| Liver | Cirrhosis (NASH, viral hepatitis, alcohol) | Hepatic stellate cell activation, portal-portal fibrous bridges. | Portal hypertension, hepatocellular carcinoma risk. |
| Kidney | Chronic kidney disease with tubulointerstitial fibrosis (IFTA) | Angiotensin II, chronic tubular injury, interstitial ECM deposition. | Loss of GFR, end-stage renal disease. |
| Heart | Post-infarction and hypertensive cardiac fibrosis | Reparative + reactive interstitial fibrosis driven by TGF-β and aldosterone. | Impaired diastolic and systolic function, heart failure, arrhythmias. |
| Skin | Systemic sclerosis, keloids, hypertrophic scars | Autoimmune activation of dermal fibroblasts, excess dermal collagen. | Skin thickening, contractures, disfigurement. |
| Penis | Peyronie's disease | Fibrous plaque in the tunica albuginea driven by TGF-β1 and myofibroblasts. | Curvature, painful erection, erectile dysfunction. |
| Palm | Dupuytren's contracture | Fibroproliferative disease of the palmar aponeurosis. | Nodules, cords, finger flexion contracture. |
| Bone marrow | Primary myelofibrosis | Clonal megakaryocyte proliferation, TGF-β release, medullary fibrosis. | Cytopenias, extramedullary haematopoiesis, splenomegaly. |
Liver fibrosis
Liver fibrosis is the accumulation of extracellular matrix in the hepatic parenchyma in response to chronic injury. Its most advanced form, cirrhosis, distorts liver architecture and leads to portal hypertension and hepatocellular carcinoma risk.
The main effectors are hepatic stellate cells, which transdifferentiate into myofibroblasts under TGF-β1 and PDGF. Common causes include viral hepatitis (HBV, HCV), alcohol, non-alcoholic steatohepatitis (NASH), autoimmune hepatitis and biliary diseases. Non-invasive tools (FibroScan elastography, FIB-4, APRI) increasingly replace biopsy for staging.
Pulmonary fibrosis
Pulmonary fibrosis is the fibrotic remodelling of the lung interstitium, most typically illustrated by idiopathic pulmonary fibrosis (IPF). It is a progressive disease with a median survival of 3–5 years without treatment.
Repeated micro-injuries to the alveolar epithelium, an aberrant repair response and peri-alveolar fibroblast activation drive collagen deposition in the lung interstitium. Pirfenidone and nintedanib, the first approved antifibrotics, slow the decline of forced vital capacity without curing the disease. Pulmonary fibrosis is one example of a fibrotic disease — this dossier remains focused on the general biology of fibrosis rather than on IPF specifically.
Cardiac fibrosis
Cardiac fibrosis is the excess deposition of collagen in the myocardial interstitium. It reduces ventricular compliance, impairs diastolic and systolic function and predisposes to arrhythmias and heart failure.
Two forms coexist: reparative fibrosis replacing cardiomyocytes lost after infarction, and reactive interstitial fibrosis driven by chronic pressure or volume overload, angiotensin II and aldosterone. Renin-angiotensin blockade (ACE inhibitors, ARBs) and mineralocorticoid antagonists reduce fibrosis and improve outcomes in heart failure.
Kidney fibrosis
Renal fibrosis — interstitial fibrosis and tubular atrophy (IFTA) — is the final common pathway of chronic kidney disease (CKD), regardless of the initial cause.
Persistent tubular injury, hypoxia and angiotensin II signalling drive interstitial ECM deposition, capillary rarefaction and progressive loss of glomerular filtration rate. ACE inhibitors and ARBs remain the cornerstone of nephroprotection; SGLT2 inhibitors have shown additional benefit in diabetic and non-diabetic CKD.
Skin fibrosis
Skin fibrosis groups several distinct entities — systemic sclerosis (scleroderma), hypertrophic scars, keloids and localised morphea — sharing dermal fibroblast activation and excess collagen deposition.
Systemic sclerosis is an autoimmune disease with vasculopathy and fibrosis of the skin and internal organs (lung, kidney, heart, gastrointestinal tract). Biological therapies such as rituximab and tocilizumab have shown benefit in skin and lung outcomes in randomised trials.
Penile fibrosis
Penile fibrosis is best represented by Peyronie's disease, a localised fibroproliferative disorder of the tunica albuginea. A fibrous plaque develops, causing curvature, painful erection and, in advanced forms, erectile dysfunction.
Peyronie's disease shares its cellular biology with other fibroses: TGF-β1, myofibroblasts and excess type I collagen. It illustrates how localised fibrosis can profoundly affect quality of life without threatening survival. For a full clinical dossier, see Peyronie's disease.
Palmar fibrosis
Dupuytren's contracture is a fibroproliferative disease of the palmar aponeurosis. Firm nodules and fibrous cords develop in the palm and can slowly bend one or more fingers into a fixed flexion.
Like Peyronie's disease, it involves myofibroblasts producing excess collagen; the two conditions coexist in 10–20% of patients. Read the full dossier on Dupuytren's contracture.
Why fibrosis becomes irreversible
Early fibrosis retains some capacity for remodelling: if the injury stops (for example after antiviral cure of HCV, alcohol cessation or weight loss in NASH), part of the extracellular matrix can be degraded and the tissue partially reorganised. Once fibrosis matures, however, cross-linked collagen becomes resistant to normal turnover.
| Criterion | Reversible fibrosis | Irreversible fibrosis |
|---|---|---|
| Stage | Early / active fibrosis (recent onset). | Mature / advanced fibrosis (long-standing). |
| Cellularity | Rich in fibroblasts and myofibroblasts, still turnover-competent. | Paucicellular, dense fibrous tissue. |
| Collagen cross-linking | Limited cross-linking (LOX activity low). | Extensive LOX/LOXL2-mediated cross-linking, MMP-resistant. |
| Vascularisation | Microcirculation partially preserved. | Capillary rarefaction, chronic hypoxia. |
| Response to treatment | Partial regression possible if trigger is removed (e.g. HCV, alcohol, fatty liver). | Progression can be slowed but scar tissue persists. |
Extracellular matrix
The extracellular matrix (ECM) is the three-dimensional network of proteins and polysaccharides that surrounds cells. It provides mechanical support, guides cell behaviour and stores growth factors. In fibrosis, its composition and organisation become pathological.
- Collagens I and III — major fibrillar collagens; the ratio and cross-linking pattern change in fibrosis.
- Collagen IV — basement membranes; disorganisation contributes to loss of tissue architecture.
- Fibronectin (EDA+ isoform) — pro-fibrotic matrix guiding collagen deposition.
- Elastin — provides elasticity; degraded by elastases in chronic remodelling.
- Proteoglycans (decorin, biglycan) — regulate fibrillogenesis and sequester TGF-β.
- Lysyl oxidases (LOX/LOXL2) — enzymes that cross-link collagen and stiffen the matrix.
For a dedicated dossier, see extracellular matrix.
Collagen remodeling
Collagen is the most abundant protein in the human body and the main structural component of fibrotic tissue. In fibrosis, its synthesis, cross-linking and degradation are all disrupted.
Collagen turnover is normally balanced by matrix metalloproteinases (MMPs), which degrade collagen, and their inhibitors TIMPs. In fibrosis, TIMPs are upregulated and MMP activity is suppressed, tilting the balance toward net collagen accumulation. LOX-mediated cross-linking then locks the collagen fibres, making them resistant to further degradation.
Myofibroblasts
Myofibroblasts are the main effector cells of fibrosis. They are activated fibroblasts that express α-smooth muscle actin (α-SMA), contain contractile stress fibres and massively produce collagen.
In normal wound healing, myofibroblasts appear briefly during the proliferative phase and undergo apoptosis at the end of repair. In fibrosis, they persist — because of continued TGF-β signalling, mechanotransduction from a stiffening matrix and senescence-driven resistance to apoptosis. They can arise from resident fibroblasts, pericytes, hepatic stellate cells or, more rarely, from epithelial or endothelial cells through EMT/EndMT.
Activation
Driven by TGF-β1, PDGF, mechanical tension and ROS.
Contraction
α-SMA stress fibres pull on the matrix, stiffening tissue.
Persistence
Resistance to apoptosis and senescence sustain fibrosis.
TGF-β signalling
Transforming growth factor beta 1 (TGF-β1) is the master pro-fibrotic cytokine. It drives fibroblast-to-myofibroblast differentiation, stimulates collagen synthesis and inhibits its degradation by MMPs.
TGF-β1 signals through SMAD2/3 → SMAD4 transcription factors and interacts with mechanotransduction (YAP/TAZ) and integrin-mediated pathways. Fibrotic matrix itself sequesters and re-releases TGF-β, creating a self-amplifying loop. Selective targeting of TGF-β signalling is a central goal of antifibrotic drug development, but complete blockade causes immunological side effects because TGF-β also has essential physiological roles.
Inflammation
Chronic, low-grade inflammation is the soil in which fibrosis grows. Neutrophils, macrophages and lymphocytes release cytokines and reactive oxygen species that sustain fibroblast activation.
Alternatively activated (M2) macrophages secrete TGF-β1, PDGF and IL-10, favouring a pro-fibrotic environment. Th2 cytokines (IL-4, IL-13) and Th17 (IL-17) contribute to fibrosis in several experimental and clinical settings. Resolution of inflammation is itself an active process; failure of resolution is a hallmark of the progression from acute injury to chronic fibrosis.
Oxidative stress
Oxidative stress — the excess of reactive oxygen species over antioxidant defences — is a well-established amplifier of fibrosis. ROS can activate latent TGF-β1, promote fibroblast-to-myofibroblast transition and inhibit MMP-mediated collagen degradation.
For a dedicated dossier on the biology of ROS, antioxidant defences and redox signalling in tissue remodelling, see oxidative stress. Chronic ischaemia, mitochondrial dysfunction and inflammation are the main sources of ROS in fibrotic tissues.
Risk factors
Risk factors for fibrosis are largely organ-specific but share several common denominators — chronic tissue injury, unresolved inflammation, genetic predisposition and ageing.
- Chronic infections (HBV, HCV, schistosomiasis).
- Metabolic factors (obesity, insulin resistance, NASH, diabetes).
- Toxins (alcohol, tobacco, silica, asbestos, certain drugs).
- Autoimmune diseases (systemic sclerosis, IgG4-related disease).
- Mechanical / haemodynamic stress (hypertension, pressure overload).
- Radiotherapy and repeated surgical trauma.
- Genetic variants (e.g. MUC5B in IPF, Wnt pathway in Dupuytren's).
- Ageing, through cellular senescence and impaired repair.
Diagnosis
There is no single universal test for fibrosis. Diagnosis combines clinical assessment, blood biomarkers, imaging and, when necessary, biopsy. Strategies are organ-specific.
Clinical assessment
History of chronic injury, physical examination, functional evaluation of the affected organ.
Blood biomarkers
FIB-4, APRI (liver); NT-proBNP (heart); creatinine and eGFR (kidney); autoantibodies in systemic sclerosis.
Imaging
Transient elastography (liver), high-resolution CT (lung), MRI (heart), ultrasound (skin, penis, hand).
Biopsy
Reference standard for many indications; increasingly reserved for cases where non-invasive tools are inconclusive.
Current treatments
The most effective treatment of fibrosis is to remove the underlying cause: antiviral therapy in viral hepatitis, alcohol cessation, weight loss in NASH, blood-pressure control, immunosuppression in autoimmune diseases. On top of aetiological treatment, a small but growing number of drugs directly target fibrotic pathways.
| Drug / class | Target | Indication | Status | Evidence |
|---|---|---|---|---|
| Pirfenidone | TGF-β, TNF-α | Idiopathic pulmonary fibrosis | Approved in Europe and the US since 2011–2014. | Strong evidence |
| Nintedanib | PDGFR, FGFR, VEGFR tyrosine kinases | IPF, progressive fibrosing ILDs, scleroderma-ILD | Approved in Europe and the US. | Strong evidence |
| ACE inhibitors / ARBs | Angiotensin II signalling | Kidney and cardiac fibrosis | Standard of care for nephroprotection and heart failure. | Strong evidence |
| Aldosterone antagonists (spironolactone) | Mineralocorticoid receptor | Heart failure with reduced ejection fraction | Standard of care. | Strong evidence |
| Collagenase C. histolyticum | Type I collagen (fibrous plaque/cord) | Peyronie's disease, Dupuytren's contracture | Approved (regulated use). | Moderate evidence |
| Bosentan | Endothelin-1 (ETA/ETB) | Pulmonary arterial hypertension, digital ulcers in SSc | Approved. | Moderate evidence |
| Rituximab, tocilizumab | B cells, IL-6R | Systemic sclerosis | Positive randomised trials (focuSSced, RECITAL). | Moderate evidence |
| Pamrevlumab (anti-CTGF/CCN2) | TGF-β/CCN2 axis | IPF, Duchenne muscular dystrophy | Phase III with mixed results. | Limited evidence |
| Simtuzumab (anti-LOXL2) | Collagen cross-linking | IPF, NASH | Negative phase II — development discontinued. | Preclinical only |
| Senolytics (dasatinib + quercetin) | Senescent pro-fibrotic cells | IPF (pilot), diabetic kidney disease | Early-phase clinical trials. | Preclinical only |
Dietary supplements are not a validated antifibrotic treatment. Some antioxidant molecules are studied for their potential role in oxidative stress and fibroblast biology, but clinical evidence in fibrotic diseases is limited or absent.
Current research
Antifibrotic research has expanded rapidly in the last decade, moving beyond broad TGF-β blockade toward more selective, better-tolerated targets. Most programmes remain at experimental or early clinical stages.
- Research
Selective TGF-β targeting
Isoform-specific or downstream (SMAD3) inhibition to avoid the immunological side effects of pan-TGF-β blockade.
- Research
Mechanotransduction inhibitors
YAP/TAZ, ROCK and integrin pathways, which translate matrix stiffness into pro-fibrotic gene expression.
- Research
Senolytic strategies
Elimination of senescent fibroblasts whose SASP sustains fibrosis in idiopathic pulmonary fibrosis and age-related skin fibrosis.
- Research
Metabolic reprogramming
Targeting glycolysis and fatty-acid oxidation in activated myofibroblasts.
- Research
MicroRNA modulation
miR-21, miR-29 and let-7 as pro- or anti-fibrotic biomarkers and therapeutic targets.
- Research
Cell therapies
Mesenchymal stromal cells and derived exosomes — largely preclinical for most indications.
- Research
Digital pathology and AI
Automated quantification of collagen area, fibre orientation and biopsy scoring.
Preclinical results should not be extrapolated. Effects observed in cell culture or animal models do not necessarily translate into clinical benefit. Only randomised controlled trials in patients can establish efficacy and safety in humans.
Nutrition and dietary supplements
No nutrient or dietary supplement has a marketing authorisation as an antifibrotic. Several nutritional approaches are nonetheless studied for their potential effect on mechanisms upstream of fibrosis — inflammation, oxidative stress, glycation — without being able to claim a direct antifibrotic effect in the regulatory sense.
- Mediterranean diet — reduction of systemic inflammation; documented benefit in cardiovascular prevention and non-alcoholic steatohepatitis (NASH).
- Omega-3 fatty acids (EPA/DHA) — modulatory effects on inflammation; preclinical data in cardiac and hepatic fibrosis.
- Vitamin D — immunomodulatory role; epidemiological associations with hepatic and pulmonary fibrosis, causality not demonstrated.
- Polyphenols — curcumin, resveratrol, quercetin, catechins: documented anti-inflammatory and antioxidant mechanisms; clinical antifibrotic effects remain limited.
- Coenzyme Q10 — mitochondrial cofactor investigated in the context of cellular ageing and oxidative stress.
- Zinc, selenium — cofactors of antioxidant enzymes (EFSA-authorised claim: "contributes to the protection of cells from oxidative stress").
- Ginkgo biloba, Boswellia serrata — extracts studied for microcirculation and inflammatory pathways; preclinical to moderate levels of evidence.
These leads are exploratory and in no case replace medical treatment of fibrosis. Dedicated dossiers for each of these ingredients will be progressively published in the Science Hub.
Nutritional approaches applied specifically to fibroproliferative diseases (Peyronie's, Dupuytren's) are analysed in detail, with their levels of evidence, in our dossier natural approaches and fibroproliferative diseases.
Frequently asked questions
Scientific references
A selection of reference publications and international resources used to write this dossier. The list is not exhaustive and will be enriched as the dossier is updated.
- [1]Rockey et al., N Engl J Med, 2015 (). Mechanisms of fibrosis: therapeutic translation for fibrotic disease · Voir la source
- [2]Meng, Nikolic-Paterson & Lan, Nat Rev Nephrol, 2016 (). TGF-β signaling in fibrosis · Voir la source
- [3]Hinz et al., Nat Rev Mol Cell Biol, 2019 (). Myofibroblasts and mechano-regulation of connective tissue remodelling · Voir la source
- [4]Frantz, Stewart & Weaver, J Cell Sci, 2010 (). The extracellular matrix at a glance · Voir la source
- [6]Wynn & Ramalingam, Nat Med, 2012 (). Common and unique mechanisms of chronic fibrosis · Voir la source
- [7]Lederer & Martinez, N Engl J Med, 2018 (). Idiopathic pulmonary fibrosis: a global perspective · Voir la source
- [8]King et al., N Engl J Med, 2014 (). Pirfenidone in patients with idiopathic pulmonary fibrosis (ASCEND) · Voir la source
- [9]Flaherty et al., N Engl J Med, 2019 (). Nintedanib in progressive fibrosing interstitial lung diseases (INBUILD) · Voir la source
- [13]Frangogiannis, Mol Aspects Med, 2019 (). Cardiac fibrosis: cell biological mechanisms and therapeutic implications · Voir la source
- [15]Gonzalez-Cadavid & Rajfer, Nat Rev Urol, 2005 (). Peyronie's disease: molecular basis and therapy · Voir la source
- [16]Hindocha et al., J Hand Surg Eur, 2011 (). Dupuytren's disease and related hyperproliferative disorders · Voir la source
- [17]Richter & Kietzmann, Free Radic Biol Med, 2016 (). Reactive oxygen species and tissue fibrosis · Voir la source
- [18]Giannandrea & Parks, Dis Model Mech, 2014 (). Matrix metalloproteinases and their inhibitors in fibrosis · Voir la source
- [19]Thiery et al., Cell, 2009 (). Epithelial-mesenchymal transitions in development and disease · Voir la source
- [23]Duffield et al., J Clin Invest, 2013 (). Macrophage plasticity in tissue fibrosis · Voir la source
- [24]Nanchahal et al., Lancet, 2022 (). Anti-TNF therapy for Dupuytren's disease (RIDD 2b) · Voir la source
- [26]National Heart, Lung, and Blood Institute (). NHLBI — Idiopathic pulmonary fibrosis · Voir la source
Conclusion
Fibrosis is a universal biological mechanism that turns normal wound healing into pathological scarring when injury becomes chronic. Its cellular language — TGF-β1, myofibroblasts, cross-linked collagen — is largely conserved across organs, from the lung to the kidney and from the heart to the penis and the hand.
AARO LAB focuses on the biological mechanisms involved in fibrosis, oxidative stress and tissue integrity. Dietary supplements are not a treatment for any fibrotic disease and cannot replace an evaluation by the appropriate specialist.
Related reading
Peyronie's disease
Localised fibroproliferative disease of the tunica albuginea.
Dupuytren's contracture
Fibrosis of the palmar aponeurosis causing finger contracture.
Oxidative stress
ROS, redox balance and their contribution to fibrosis.
Extracellular matrix
Structure, remodelling and pathology of the ECM.
Normal wound healing
The physiological repair sequence that fibrosis subverts.
Microcirculation
Capillary rarefaction and hypoxia in fibrotic tissue.
Institutional sources
Further reading
These institutional resources let you explore the topic further via authoritative scientific or medical organisations.
- PubMedPubMed / National Library of MedicineFibrosis — TGF-β and myofibroblastsInternational reference corpus on the cellular and molecular mechanisms of fibrosis.
- CochraneCochrane LibrarySystematic reviews on fibrosisSystematic reviews evaluating interventions across fibrotic diseases.
- NIHNational Institutes of HealthNIH — Fibrosis research portfolioNIH research programmes and resources dedicated to tissue fibrosis.
- NHLBINational Heart, Lung, and Blood InstituteNHLBI — Idiopathic pulmonary fibrosisUS national reference on pulmonary fibrosis: definition, diagnosis, treatment.
- ERS/ATSEuropean Respiratory Society / American Thoracic SocietyIPF clinical practice guidelineJoint ERS/ATS clinical guideline on the diagnosis and treatment of idiopathic pulmonary fibrosis.
External links to scientific or medical organisations. AARO LAB has no commercial ties with the sites cited.