Related Experiment Video
Updated: Apr 3, 2026

Microinjection of Medaka Embryos for use as a Model Genetic Organism
Published on: December 22, 2010
Mutation of Gonadal soma-derived factor induces medaka XY gonads to undergo ovarian development
Takuto Imai1, Kentaro Saino2, Masaru Matsuda1
1United Graduate School of Agricultural Science, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan; Center for Bioscience Research and Education, Utsunomiya University, Tochigi 321-8505, Japan.
Abstract:
Gonochoristic species have a bipotential gonad that develops into a testis or an ovary. In species whose sex is determined by a genetic factor, the expression of a sex-determining gene is the first cue that directs the development of a bipotential gonad. Subsequent expression of downstream genes induces the gonad to develop into a testis or an ovary. The TGF-ß family member Gonadal soma-derived factor (Gsdf) is thought to be an important gene for gonadal development in teleost fish, and it is expressed at higher levels in the testis than in the ovary from early to mature stages. However, there is little functional information about the gene. In this study, we targeted the Gsdf coding region in the medaka fish Oryzias latipes using transcription activator-like effector nucleases (TALENs) and studied the phenotypes of the Gsdf mutant medaka. Although normal and heterozygous XY gonads developed into a testis, all XY gonads with a homozygous mutation in Gsdf developed into an ovary at early developmental stages. However, two-thirds of Gsdf mutant XY gonads developed into testes in the adult stages. These results demonstrate that although a gonad can develop into a complete testis in the absence of Gsdf, Gsdf function is critical for directing the bipotential gonad at early developmental stages. Therefore, Gsdf is an endogenous inducer of testicular development similar to a master sex-determining gene.
Insights
Gonadal soma-derived factor (Gsdf) is crucial for early testicular development in medaka fish. While Gsdf mutations initially cause ovaries, adult testes can still form, indicating Gsdf
Area of Science:
- Developmental Biology
- Genetics
- Reproductive Biology
Background:
- Gonochoristic species possess bipotential gonads.
- Sex-determining genes initiate gonad differentiation.
- Gonadal soma-derived factor (Gsdf) is implicated in teleost gonadal development.
Purpose of the Study:
- To investigate the function of Gsdf in medaka fish (Oryzias latipes).
- To determine Gsdf's role in early gonad development and sex determination.
Main Methods:
- Utilized transcription activator-like effector nucleases (TALENs) to create Gsdf mutations in medaka.
- Analyzed gonadal phenotypes of Gsdf mutant medaka at different developmental stages.
Main Results:
- Homozygous Gsdf mutations in XY medaka resulted in ovarian development at early stages.
- Despite early ovarian development, two-thirds of Gsdf mutant XY gonads developed into testes by adulthood.
- Normal and heterozygous XY gonads developed into testes.
Conclusions:
- Gsdf is essential for directing bipotential gonads towards testicular development early on.
- Gsdf acts as an endogenous inducer of testicular development, similar to a master sex-determining gene.
- Complete testicular development is possible without Gsdf, but its early function is critical.
Related Concept Videos
The Ratio of X Chromosome to Autosomes
Normal male Drosophila has a ratio of one X chromosome to two sets of autosomes. In contrast, normal female...
Dosage Compensation
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will...
Oogenesis
Each primary oocyte is surrounded by a layer of pre-granulosa cells, forming what is...
Oogenesis
Meiosis vs. Mitosis
Before the start of mitosis and meiosis I, the cell synthesizes DNA, resulting in two homologous copies of each chromosome. DNA synthesis is...
Background and Environment Affect Phenotype
An example of how genetic background affects phenotype can be seen in horses. The Extension gene in horses is responsible for their coat color. A wild-type gene (EE) produces black pigment in the coat, while a mutant gene (ee) produces red pigment. A...

