Production of mouse ES cells homozygous for Cdk5-phosphorylated site mutation in c-Src alleles

Goro Kato1, Shuichiro Maeda

  • 1Department of Biochemistry, Yamanashi Medical University, Nakakoma, Yamanashi 409-3898, Japan. gkato@res.yamanashi-med.ac.jp

Insights

Researchers developed a new method to create homozygous c-Src mutant mouse embryonic stem cells. This technique allows for studying the specific functions of c-Src protein by preventing its phosphorylation at Ser75.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Genetics

Background:

  • c-Src protein's cellular functions are not fully understood due to functional redundancy with other Src family members.
  • Cyclin-dependent kinase 1 (Cdk1) and Cdk5 phosphorylate c-Src at Ser75 in its unique N-terminal domain.
  • Studying c-Src's specific roles requires cells with a homozygous mutation at Ser75, which have been difficult to generate.

Purpose of the Study:

  • To develop an efficient procedure for generating mouse embryonic stem (ES) cell clones with a homozygous Ser75 to Asp mutation in the c-src gene.
  • To enable the assessment of c-Src's specific cellular functions through targeted mutagenesis.

Main Methods:

  • Combined a novel point mutation introduction strategy (no exogenous sequence) with high-geneticin (G418) selection for homozygous mutation.
  • Utilized gene targeting in mouse embryonic stem cells to introduce a specific point mutation at the Ser75 site of the c-src gene.

Main Results:

  • Successfully generated ES cell clones with a homozygous Ser75 to Asp mutation in the c-src gene.
  • Mutant clones exhibited normal levels of c-Src protein and autophosphorylation activity compared to wild-type cells.
  • The mutant c-Src protein was not phosphorylated at Ser75 during mitosis, confirming the mutation's functional impact.

Conclusions:

  • The developed procedure efficiently produces ES cells homozygous for subtle mutations, specifically demonstrated for the c-src Ser75 to Asp mutation.
  • This method is a significant advancement for studying gene function, particularly for genes with redundant family members.
  • The technique is expected to be broadly applicable to generating homozygous mutant somatic cell lines for various genes.