The molecular genetics of Marfan syndrome and related microfibrillopathies

P N Robinson1, M Godfrey

  • 1Laboratory of Paediatric Molecular Biology, Department of General Paediatrics, Charité University Hospital, Humboldt University, D-10098 Berlin, Germany.

Insights

Mutations in the fibrillin-1 gene cause Marfan syndrome and related disorders. These fibrillinopathies affect connective tissue, impacting ocular, skeletal, and cardiovascular systems, with ongoing research into their complex pathogenesis.

Area of Science:

  • Genetics and Molecular Biology
  • Connective Tissue Disorders
  • Human Physiology

Background:

  • Marfan syndrome is an autosomal dominant disorder caused by fibrillin-1 (FBN1) gene mutations.
  • Fibrillin-1 is crucial for microfibril and elastic fiber formation in connective tissues.
  • FBN1 mutations also cause related disorders, forming a spectrum of fibrillinopathies.

Purpose of the Study:

  • To review the molecular physiology and pathophysiology of Marfan syndrome.
  • To discuss related microfibrillopathies linked to fibrillin gene mutations.
  • To explore the pathogenesis of connective tissue disorders associated with fibrillin dysfunction.

Main Methods:

  • Review of existing literature on fibrillin genes (FBN1 and FBN2) and associated disorders.
  • Analysis of mutation distribution within the FBN1 gene, including hot spots for severe phenotypes.
  • Discussion of the proposed dominant negative effect of mutant fibrillin monomers.

Main Results:

  • FBN1 mutations are the primary cause of Marfan syndrome and related fibrillinopathies.
  • Mutations are distributed throughout the FBN1 gene, with a cluster in exons 24-32 linked to neonatal Marfan syndrome.
  • FBN2 mutations cause congenital contractural arachnodactyly, a related disorder.

Conclusions:

  • Marfan syndrome and related conditions represent a spectrum of microfibrillopathies due to fibrillin dysfunction.
  • Understanding the precise molecular mechanisms and pathogenesis of these disorders remains incomplete.
  • Further research is needed to fully elucidate the role of microfibrils in connective tissue integrity and disease.

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