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TGF-β induces liver fibrosis via miRNA-181a-mediated down regulation of  augmenter of liver regeneration in hepatic stellate cells | PLOS ONE
TGF-β induces liver fibrosis via miRNA-181a-mediated down regulation of augmenter of liver regeneration in hepatic stellate cells | PLOS ONE

Transcriptional cofactors Ski and SnoN are major regulators of the TGF-β/Smad  signaling pathway in health and disease | Signal Transduction and Targeted  Therapy
Transcriptional cofactors Ski and SnoN are major regulators of the TGF-β/Smad signaling pathway in health and disease | Signal Transduction and Targeted Therapy

Biomolecules | Free Full-Text | Transforming Growth Factor-β Signaling in  Fibrotic Diseases and Cancer-Associated Fibroblasts
Biomolecules | Free Full-Text | Transforming Growth Factor-β Signaling in Fibrotic Diseases and Cancer-Associated Fibroblasts

Possible Role of Matrix Metalloproteinases and TGF-β in COVID-19 Severity  and Sequelae | Journal of Interferon & Cytokine Research
Possible Role of Matrix Metalloproteinases and TGF-β in COVID-19 Severity and Sequelae | Journal of Interferon & Cytokine Research

Transforming growth factor-β in stem cells and tissue homeostasis | Bone  Research
Transforming growth factor-β in stem cells and tissue homeostasis | Bone Research

Frontiers | The Roles of TGF-β Signaling in Cerebrovascular Diseases
Frontiers | The Roles of TGF-β Signaling in Cerebrovascular Diseases

TGF-β1 in plasma and cerebrospinal fluid can be used as a biological  indicator of chronic pain in patients with osteoarthritis | PLOS ONE
TGF-β1 in plasma and cerebrospinal fluid can be used as a biological indicator of chronic pain in patients with osteoarthritis | PLOS ONE

TGF-β1-Licensed Murine MSCs Show Superior Therapeutic Efficacy in  Modulating Corneal Allograft Immune Rejection In Vivo: Molecular Therapy
TGF-β1-Licensed Murine MSCs Show Superior Therapeutic Efficacy in Modulating Corneal Allograft Immune Rejection In Vivo: Molecular Therapy

M-CSF, IL-6, and TGF-β promote generation of a new subset of tissue repair  macrophage for traumatic brain injury recovery | Science Advances
M-CSF, IL-6, and TGF-β promote generation of a new subset of tissue repair macrophage for traumatic brain injury recovery | Science Advances

Frontiers | Association of TGF-β Canonical Signaling-Related Core Genes  With Aortic Aneurysms and Aortic Dissections
Frontiers | Association of TGF-β Canonical Signaling-Related Core Genes With Aortic Aneurysms and Aortic Dissections

Frontiers | Therapeutic Targets for the Treatment of Cardiac Fibrosis and  Cancer: Focusing on TGF-β Signaling
Frontiers | Therapeutic Targets for the Treatment of Cardiac Fibrosis and Cancer: Focusing on TGF-β Signaling

miR-24 and miR-122 Negatively Regulate the Transforming Growth Factor-β/Smad  Signaling Pathway in Skeletal Muscle Fibrosis: Molecular Therapy - Nucleic  Acids
miR-24 and miR-122 Negatively Regulate the Transforming Growth Factor-β/Smad Signaling Pathway in Skeletal Muscle Fibrosis: Molecular Therapy - Nucleic Acids

Frontiers | TGF-β/Smad Signaling Pathway in Tubulointerstitial Fibrosis
Frontiers | TGF-β/Smad Signaling Pathway in Tubulointerstitial Fibrosis

IJMS | Free Full-Text | TGF-β Signaling: From Tissue Fibrosis to Tumor  Microenvironment
IJMS | Free Full-Text | TGF-β Signaling: From Tissue Fibrosis to Tumor Microenvironment

TGF-β: the master regulator of fibrosis | Nature Reviews Nephrology
TGF-β: the master regulator of fibrosis | Nature Reviews Nephrology

GANE can Improve Lung Fibrosis by Reducing Inflammation via Promoting  p38MAPK/TGF-β1/NF-κB Signaling Pathway Downregulation | ACS Omega
GANE can Improve Lung Fibrosis by Reducing Inflammation via Promoting p38MAPK/TGF-β1/NF-κB Signaling Pathway Downregulation | ACS Omega

Biomolecules | Free Full-Text | Role of TGF-Beta and Smad7 in Gut  Inflammation, Fibrosis and Cancer
Biomolecules | Free Full-Text | Role of TGF-Beta and Smad7 in Gut Inflammation, Fibrosis and Cancer

Frontiers | The Role of Macrophages in Kidney Fibrosis
Frontiers | The Role of Macrophages in Kidney Fibrosis

Current potential therapeutic strategies targeting the TGF-β/Smad signaling  pathway to attenuate keloid and hypertrophic scar formation - ScienceDirect
Current potential therapeutic strategies targeting the TGF-β/Smad signaling pathway to attenuate keloid and hypertrophic scar formation - ScienceDirect

IJMS | Free Full-Text | Role of Transforming Growth Factor-β in Skeletal  Muscle Fibrosis: A Review
IJMS | Free Full-Text | Role of Transforming Growth Factor-β in Skeletal Muscle Fibrosis: A Review

TGF-β signaling in vascular biology and dysfunction | Cell Research
TGF-β signaling in vascular biology and dysfunction | Cell Research

Frontiers | TGF-β-Induced Endothelial to Mesenchymal Transition in Disease  and Tissue Engineering
Frontiers | TGF-β-Induced Endothelial to Mesenchymal Transition in Disease and Tissue Engineering

Transforming growth factor (TGF)-β1-induced miR-133a inhibits myofibroblast  differentiation and pulmonary fibrosis | Cell Death & Disease
Transforming growth factor (TGF)-β1-induced miR-133a inhibits myofibroblast differentiation and pulmonary fibrosis | Cell Death & Disease

Biomedicines | Free Full-Text | TGF-β as a Key Modulator of Astrocyte  Reactivity: Disease Relevance and Therapeutic Implications
Biomedicines | Free Full-Text | TGF-β as a Key Modulator of Astrocyte Reactivity: Disease Relevance and Therapeutic Implications

TGF-β1 is a regulator of the pyruvate dehydrogenase complex in fibroblasts  | Scientific Reports
TGF-β1 is a regulator of the pyruvate dehydrogenase complex in fibroblasts | Scientific Reports

Gli2-regulated activation of hepatic stellate cells and liver fibrosis by  TGF-β signaling | American Journal of Physiology-Gastrointestinal and Liver  Physiology
Gli2-regulated activation of hepatic stellate cells and liver fibrosis by TGF-β signaling | American Journal of Physiology-Gastrointestinal and Liver Physiology

TGF-β and BMP signaling in osteoblast, skeletal development, and bone  formation, homeostasis and disease | Bone Research
TGF-β and BMP signaling in osteoblast, skeletal development, and bone formation, homeostasis and disease | Bone Research