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Published on: March 16, 2022
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.
Abstract:
Autotaxin is a member of the phosphodiesterase family of enzymes, (NPP2). It is an important secreted protein found in conditioned medium from adipocytes. It also has a putative role in the metastatic process. Based on these observation, further validation of this potential target was necessary, apart from the classical biochemical ones. The construction of a knock out mouse strain for ATX was started. In this paper, we report the generation of a mouse line displaying an inactivated ATX gene product. The KO line was designed in order to generate a functional inactivation of the protein. In this respect, the threonine residue T210 was replaced by an alanine (T210A) leading to a catalytically inactive enzyme. If the experimental work was straight forward, we disappointedly discovered at the final stage that the breeding of heterozygous animals, ATX -/+, led to the generation of a Mendelian repartition of wild-type and heterozygous, but no homozygous were found, strongly suggesting that the ATX deletion is lethal at an early stage of the development. This was confirmed by statistical analysis. Although other reported the same lethality for attempted ATX-/- mice generation [van Meeteren, L.A., Ruurs, P., Stortelers, C., Bouwman, P., van Rooijen, M.A., Pradère, J.P., Pettit, T.R., Wakelam, M.J.O., Saulnier-Blache, J.S., Mummery, C.L., Moolenar, W.H. and Jonkers, J. (2006) Autotaxin, a secreted lysophospholipase D, is essential for blood vessel formation during development, Mol. Cell. Biol. 26, 5015-5022; Tanaka, M., Okudaira, S., Kishi, Y., Ohkawa, R., Isei, S., Ota, M., Noji, S., Yatomi, Y., Aoki, J., and Arai, H. (2006) Autotaxin stabilizes blood vessels and is required for embryonic vasculature by producing lysophosphatidic acid, J. Biol. Chem. 281, 25822-25830], they used more drastic multiple exon deletions in the ATX gene, while we chose a single point mutation. To our knowledge, the present work is the first showing such a lethality in any gene after a point mutation in an enzyme catalytic site.
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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