Odd-skipped related 1 (Odd 1) is an essential regulator of heart and urogenital development

Qingru Wang1, Yu Lan, Eui-Sic Cho

  • 1Center for Oral Biology and Department of Biomedical Genetics, University of Rochester School of Medicine and Dentistry, 601 Elmwood Avenue, Box 611, Rochester, NY 14642, USA.

Developmental Biology
|October 15, 2005
PubMed

Insights

The Odd-skipped related 1 (Odd 1) gene is crucial for embryonic development, particularly heart and intermediate mesoderm formation. Its absence in mice leads to severe cardiac defects and failure of kidney and adrenal gland development.

Area of Science:

  • Developmental Biology
  • Genetics
  • Molecular Biology

Background:

  • The Odd-skipped related 1 (Odd 1) gene encodes a transcription factor vital for embryonic patterning.
  • Odd-skipped transcription factors are essential for tissue morphogenesis during embryonic development.

Purpose of the Study:

  • To investigate the role of the Odd 1 gene in mammalian embryonic development.
  • To determine the specific functions of Odd 1 in heart and intermediate mesoderm development.

Main Methods:

  • Generation of mice with a targeted null mutation in the Odd 1 gene (Odd 1(-/-)).
  • Analysis of embryonic phenotypes, including cardiac morphology and urogenital development.
  • Molecular marker analyses to assess gene expression patterns in mutant embryos.

Main Results:

  • Odd 1(-/-) mutant embryos exhibit severe heart defects, including failure of atrial septum formation and dilated atria.
  • Complete agenesis of adrenal glands, metanephric kidneys, and gonads observed in Odd 1(-/-) mutants.
  • Down-regulation of key intermediate mesoderm regulators (Lhx1, Pax2, Wt1) and increased apoptosis in mutant embryos.

Conclusions:

  • Odd 1 is essential for normal heart morphogenesis, specifically atrial septum development.
  • Odd 1 plays a critical role in the development of intermediate mesoderm-derived organs, including kidneys and adrenal glands.
  • These findings elucidate novel molecular mechanisms underlying heart and urogenital development.

Related Concept Videos

Development of the Sexual Organs in the Embryo and Fetus01:15

Development of the Sexual Organs in the Embryo and Fetus

Development of the reproductive organs in an embryo starts from a bipotential state. This means the early embryo can develop either male or female reproductive organs. The formation of these organs begins with the growth of gonadal ridges that arise from the intermediate mesoderm during the fifth week of development.
Near the gonadal ridges, two duct systems are present: the mesonephric ducts (Wolffian ducts) and paramesonephric ducts (Müllerian ducts). These ducts form the basis for the male...
Development of the Heart01:27

Development of the Heart

The development of the human heart, a crucial organ, commences from the mesoderm on the 18th or 19th day after fertilization. This process initiates in the cardiogenic area, a group of mesodermal cells at the embryo's head end, which evolves into elongated strands known as cardiogenic cords. These cords undergo a transformation to form hollow-centered endocardial tubes.
As the embryo undergoes lateral folding, these paired tubes approach each other, merging into a single primitive heart tube by...
Regulation of the Cardiovascular System01:27

Regulation of the Cardiovascular System

The regulation of the cardiovascular system allows the body to adapt to various demands and maintain homeostasis.
The regulation of the cardiovascular system involves the autonomic nervous system (ANS), baroreceptors, and chemoreceptors, ensuring that heart rate and blood pressure are appropriately modulated in response to varying physiological demands.
The ANS comprises two main divisions: the sympathetic and parasympathetic nervous systems. The sympathetic nervous system enhances...
Nondisjunction01:29

Nondisjunction

During meiosis, chromosomes occasionally separate improperly. This occurs due to failure of homologous chromosome separation during meiosis I or failed sister chromatid separation during meiosis II. In some species, notably plants, nondisjunction can result in an organism with an entire additional set of chromosomes, which is called polyploidy. In humans, nondisjunction can occur during male or female gametogenesis and the resulting gametes possess one too many or one too few chromosomes.
Nondisjunction01:21

Nondisjunction

Nondisjunction is the failure of homologous chromosomes or sister chromatids to separate correctly and move to the opposite poles of the cells. This produces daughter cells with abnormal chromosome numbers.  Nondisjunction is common during anaphase I or anaphase II of meiosis.  Mutations in synaptonemal complex proteins that attach homologous chromosomes increase the chances of nondisjunction in anaphase I of meiosis I. In contrast, mutations in topoisomerases and condensins that hold sister...
Nondisjunction01:29

Nondisjunction

During meiosis, chromosomes occasionally separate improperly. This occurs due to failure of homologous chromosome separation during meiosis I or failed sister chromatid separation during meiosis II. In some species, notably plants, nondisjunction can result in an organism with an entire additional set of chromosomes, which is called polyploidy. In humans, nondisjunction can occur during male or female gametogenesis and the resulting gametes possess one too many or one too few chromosomes.