Functional invalidation of the autotaxin gene by a single amino acid mutation in mouse is lethal

Gilles Ferry1, Adeline Giganti, Francis Cogé

  • 1Pharmacologie Moléculaire et Cellulaire, Institut de Recherches Servier, 125 Chemin de Ronde, 78290 Croissy-sur-Seine, France.

FEBS Letters
|July 14, 2007
PubMed

Insights

Autotaxin (ATX) inactivation via a point mutation is lethal at early embryonic stages. This study generated a catalytically inactive ATX mouse model, revealing essential developmental roles for this enzyme.

Area of Science:

  • Biochemistry
  • Genetics
  • Developmental Biology

Background:

  • Autotaxin (ATX), a secreted phosphodiesterase (NPP2), is implicated in adipocyte function and cancer metastasis.
  • Previous studies suggested ATX's role in development, necessitating further investigation beyond biochemical validation.
  • The generation of a knockout mouse model was pursued to functionally assess ATX's role.

Purpose of the Study:

  • To generate a mouse line with a functionally inactivated Autotaxin (ATX) gene.
  • To investigate the developmental consequences of ATX inactivation.
  • To determine if a targeted point mutation in the ATX catalytic site leads to lethality.

Main Methods:

  • Construction of a knockout mouse strain for ATX using a point mutation strategy.
  • Targeted replacement of threonine residue T210 with alanine (T210A) to create a catalytically inactive ATX enzyme.
  • Breeding of heterozygous ATX -/+ animals to assess Mendelian ratios and identify homozygous offspring.

Main Results:

  • Breeding of heterozygous ATX -/+ mice yielded only wild-type and heterozygous offspring.
  • No homozygous ATX -/- mice were found, indicating lethality at an early developmental stage.
  • Statistical analysis confirmed the absence of homozygous individuals, supporting the lethality hypothesis.

Conclusions:

  • The inactivation of Autotaxin (ATX) through a targeted point mutation is lethal during early embryonic development.
  • This finding highlights the critical role of ATX's enzymatic activity in embryonic development.
  • This study is the first to demonstrate gene lethality resulting from a point mutation in an enzyme's catalytic site.

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