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Updated: Aug 3, 2026

Scanning Electron Microscopy of Macerated Tissue to Visualize the Extracellular Matrix
Published on: June 14, 2016
Recent progress towards a molecular understanding of Marfan syndrome
Harry C Dietz1, Bart Loeys, Luca Carta
1Institute of Genetic Medicine, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA. hdietz@welchlink.welch.jhu.edu
Abstract:
Marfan syndrome (MFS) is a systemic disorder of the connective tissue that is inherited as an autosomal dominant trait and which displays variable manifestations in the ocular, skeletal, and cardiovascular systems. These pleiotropic manifestations are accounted for by mutations in fibrillin-1, the building block of extracellular microfibrils. During the past 10 years, we have witnessed significant progress in delineating the pathological events responsible for the manifestations of MFS. Much of this progress has been based on the creation and analysis of fibrillin-1 mutant mouse lines that faithfully recapitulate the spectrum of clinical severity of MFS. These studies have established the critical contribution of fibrillin-1 deficiency to disease progression through altered cell-matrix interactions and dysregulated TGF-beta signaling. As a result, our definition of MFS as the prototypical structural disorder of the connective tissue has changed to that of a developmental abnormality with broad and complex effects on the morphogenesis and function of multiple organ systems. Importantly, new biological targets have emerged that may yield exciting new opportunities for the development of productive treatment strategies in MFS.
Insights
Marfan syndrome (MFS) is a connective tissue disorder caused by fibrillin-1 mutations. Research shows MFS involves altered cell interactions and TGF-beta signaling, impacting multiple organ systems and offering new therapeutic targets.
Area of Science:
- Genetics and Molecular Biology
- Pathology
- Developmental Biology
Background:
- Marfan syndrome (MFS) is an autosomal dominant connective tissue disorder.
- It presents with variable ocular, skeletal, and cardiovascular manifestations.
- Mutations in fibrillin-1, a key component of extracellular microfibrils, underlie MFS.
Purpose of the Study:
- To delineate the pathological events responsible for Marfan syndrome manifestations.
- To understand the role of fibrillin-1 deficiency in disease progression.
- To identify new therapeutic targets for Marfan syndrome.
Main Methods:
- Analysis of fibrillin-1 mutant mouse models.
- Investigation of cell-matrix interactions.
- Assessment of transforming growth factor-beta (TGF-β) signaling pathways.
Main Results:
- Fibrillin-1 deficiency critically contributes to MFS progression.
- Altered cell-matrix interactions and dysregulated TGF-β signaling are key pathological mechanisms.
- MFS is redefined as a developmental abnormality affecting multiple organ systems.
Conclusions:
- Fibrillin-1 mutations lead to complex effects on organ system morphogenesis and function.
- Understanding these mechanisms reveals new biological targets for MFS treatment.
- Further research into these targets may yield novel therapeutic strategies.
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