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Four novel mutations in deficiency of coagulation factor XIII: consequences to expression and structure of the

H Mikkola1, V C Yee, M Syrjälä

  • 1Department of Clinical Chemistry, University of Helsinki, Finland.

Blood
|January 1, 1996
PubMed

Insights

Mutations in factor XIII (FXIII) A-subunit can cause deficiency. This study used FXIII A-subunit crystallization to analyze four new mutations, revealing structural defects that likely impair protein folding and antigen presence.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • Factor XIII (FXIII) A-subunit deficiency is a rare bleeding disorder.
  • Understanding the structural and functional impact of FXIII A-subunit mutations is crucial for explaining disease mechanisms.

Purpose of the Study:

  • To investigate the structural consequences of previously unreported mutations in the FXIII A-subunit.
  • To correlate observed mutations with FXIII A-subunit expression, antigen levels, and potential structural disruptions.

Main Methods:

  • Molecular analysis of four families with FXIII A-subunit deficiency.
  • Identification of point mutations (missense and nonsense) using genetic techniques.
  • Quantification of FXIII A-subunit mRNA levels via reverse transcriptase-polymerase chain reaction.
  • Assessment of FXIII A-subunit antigen levels using ELISA and immunofluorescence.
  • Structural analysis of mutations mapped onto the three-dimensional model of FXIII A-subunit.

Main Results:

  • Four novel point mutations were identified: three missense (Arg326-->Gln, Arg252-->Ile, Leu498-->Pro) and one nonsense (delT Phe8).
  • The nonsense mutation reduced steady-state mRNA levels, while missense mutations did not affect mRNA.
  • All patients lacked detectable FXIIIA antigen in platelets, irrespective of mutation type.
  • Structural analysis revealed missense mutations are in the catalytic core domain, away from the active site, suggesting impacts on protein folding and stability.
  • Specific substitutions disrupt electrostatic balance, hydrogen bonding, or hydrophobic interactions, potentially impairing dimerization.

Conclusions:

  • Missense mutations in the FXIII A-subunit catalytic core likely destabilize the protein, leading to undetectable antigen levels.
  • The nonsense mutation affects mRNA levels, also contributing to the absence of functional FXIIIA.
  • The three-dimensional model is essential for understanding how specific mutations lead to FXIII A-subunit deficiency at a molecular level.

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