Complementary DNA cloning establishes microfibril-associated glycoprotein (MAGP) to be a discrete component of the

M A Gibson1, L B Sandberg, L E Grosso

  • 1Department of Pathology, University of Adelaide, South Australia.

Insights

Researchers isolated cDNA clones encoding the full microfibril-associated glycoprotein (MAGP). This glycoprotein is a distinct component of 12-nm microfibrils and is not derived from a larger polypeptide.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Connective Tissue Research

Background:

  • Microfibril-associated glycoprotein (MAGP) is a component of extracellular matrix microfibrils.
  • Understanding MAGP's structure and origin is crucial for comprehending connective tissue organization.

Purpose of the Study:

  • To isolate and characterize the cDNA encoding bovine MAGP.
  • To determine the complete amino acid sequence and structural domains of MAGP.
  • To confirm MAGP's role as a distinct microfibril component.

Main Methods:

  • Screening of a bovine nuchal ligament cDNA library using affinity-purified anti-MAGP antibodies.
  • Isolation and sequencing of cDNA clones (cM5 and cM32).
  • In vitro translation and Northern blot hybridization to confirm MAGP identity and mRNA size.

Main Results:

  • Isolation of a 936-base pair cDNA clone (cM32) encoding the entire 183-amino acid MAGP polypeptide (21 kDa).
  • Identification of two distinct structural domains within MAGP: an amino-terminal domain rich in glutamine, proline, and acidic residues, and a carboxyl-terminal domain containing all 13 cysteine residues.
  • Confirmation of a single MAGP mRNA species of approximately 1.1 kilobases in fetal nuchal ligament.

Conclusions:

  • MAGP is a distinct component of 12-nm microfibrils.
  • MAGP is not derived from a larger microfibrillar glycopolypeptide.
  • The characterized cDNA provides a basis for further studies on MAGP structure-function relationships.

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