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Updated: Aug 23, 2026

Microinjection of Medaka Embryos for use as a Model Genetic Organism
Published on: December 22, 2010
Mutations affecting liver development and function in Medaka, Oryzias latipes, screened by multiple criteria
Tomomi Watanabe1, Satoshi Asaka, Daiju Kitagawa
1Department of Physiological Chemistry, Graduate School of Pharmaceutical Sciences, University of Tokyo, Tokyo 113-0033, Japan.
Abstract:
We report here mutations affecting various aspects of liver development and function identified by multiple assays in a systematic mutagenesis screen in Medaka. The 22 identified recessive mutations assigned to 19 complementation groups fell into five phenotypic groups. Group 1, showing defective liver morphogenesis, comprises mutations in four genes, which may be involved in the regulation of growth or patterning of the gut endoderm. Group 2 comprises mutations in three genes that affect the laterality of the liver; in kendama mutants of this group, the laterality of the heart and liver is uncoupled and randomized. Group 3 includes mutations in three genes altering bile color, indicative of defects in hemoglobin-bilirubin metabolism and globin synthesis. Group 4 consists of mutations in three genes, characterized by a decrease in the accumulation of fluorescent metabolite of a phospholipase A(2) substrate, PED6, in the gall bladder. Lipid metabolism or the transport of lipid metabolites may be affected by these mutations. Mutations in Groups 3 and 4 may provide animal models for relevant human diseases. Group 5 mutations in six genes affect the formation of endoderm, endodermal rods and hepatic bud from which the liver develops. These Medaka mutations, identified by morphological and metabolite marker screens, should provide clues to understanding molecular mechanisms underlying formation of a functional liver.
Insights
Researchers identified 22 Medaka mutations affecting liver development and function. These genetic mutations offer insights into liver formation, metabolism, and potential models for human liver diseases.
Area of Science:
- Developmental Biology
- Genetics
- Comparative Genomics
Background:
- The liver is a vital organ with complex developmental processes.
- Understanding the genetic regulation of liver formation is crucial for addressing human liver diseases.
Purpose of the Study:
- To identify and characterize mutations affecting liver development and function using a systematic mutagenesis screen in Medaka.
- To provide insights into the molecular mechanisms underlying liver formation and function.
Main Methods:
- Systematic mutagenesis screen in Medaka.
- Multiple assays including morphological and metabolite marker screens.
- Complementation analysis to assign mutations to complementation groups.
Main Results:
- Identified 22 recessive mutations in 19 complementation groups, categorized into five phenotypic groups.
- Mutations affect liver morphogenesis, laterality, bile color (hemoglobin-bilirubin metabolism), gall bladder metabolite accumulation (lipid metabolism), and endoderm/hepatic bud formation.
- Specific mutations in Groups 3 and 4 may serve as models for human diseases.
Conclusions:
- Medaka mutagenesis screen successfully identified genes critical for liver development and function.
- These findings provide valuable genetic resources and models for studying liver biology and related human pathologies.

