NAD deficiency due to environmental factors or gene-environment interactions causes congenital malformations and

Hartmut Cuny1,2, Melissa Rapadas1, Jessica Gereis1

  • 1Developmental and Stem Cell Biology Division, Victor Chang Cardiac Research Institute, Sydney, NSW 2010, Australia.

Insights

Nicotinamide adenine dinucleotide (NAD) deficiency causes embryo loss and congenital malformations. This can result from genetic variants or environmental factors like diet, not just severe gene mutations.

Area of Science:

  • Developmental Biology
  • Nutritional Science
  • Genetics

Background:

  • Congenital malformations and miscarriages stem from genetic and environmental factors.
  • Biallelic variants in NAD synthesis genes (HAAO, KYNU) cause developmental issues due to NAD deficiency.
  • NAD is crucial for embryonic development, synthesized from tryptophan and vitamin B3.

Purpose of the Study:

  • To investigate if NAD deficiency causes malformations independent of genetic disruption in NAD biosynthesis.
  • To explore gene-environment interactions in embryonic development related to NAD deficiency.
  • To determine the impact of environmental factors and monoallelic variants on embryonic NAD levels and outcomes.

Main Methods:

  • Studied C57BL/6J wild-type mice with dietary restriction of NAD precursors (tryptophan, vitamin B3).
  • Examined offspring for malformations and NAD levels under dietary restriction and heterozygous Haao variants.
  • Assessed the combined effects of NAD precursor restriction, heterozygous Haao variants, and mild hypoxia.

Main Results:

  • Dietary restriction of NAD precursors in wild-type mice led to offspring malformations.
  • Maternal heterozygous Haao variants combined with dietary restriction significantly increased embryo loss and malformations.
  • NAD deficiency was observed in maternal and embryonic tissues; hypoxia exacerbated negative outcomes.

Conclusions:

  • NAD deficiency is a significant cause of embryo loss and congenital malformations, not limited to biallelic gene mutations.
  • Monoallelic genetic variants and environmental factors (diet, hypoxia) can collectively lead to developmental abnormalities.
  • Sufficient NAD precursor intake during pregnancy is critical for preventing congenital malformations.

Related Concept Videos

Lethal Alleles02:41

Lethal Alleles

Agouti: A Lethal Allele
Lucien Cuénot discovered lethal alleles in 1905 while studying the inheritance of coat color in mice. The agouti gene is responsible for the color of the coat in mice. This gene codes for an agouti-signaling protein, which is responsible for melanin distribution in mammals. The wild-type allele gives rise to gray-brown coat color in mice, while the mutant allele gives rise to yellow coat color. In addition to coat color, the agouti gene is associated with the yellow...
17.6K
Teratogenicity01:07

Teratogenicity

The ability of a drug to produce structural deformations and functional abnormalities in the developing embryo or the fetus is called teratogenicity, and the drug producing this effect is known as a teratogen. Teratogenic effects include stillbirth, miscarriage, intrauterine growth restriction, and neurocognitive delay. A teratogen may affect the embryo at different stages of development, which is important in determining the type and extent of the damage. During blastocyst formation, the early...
3.9K
Background and Environment Affect Phenotype02:27

Background and Environment Affect Phenotype

Although the genetic makeup of an organism plays a major role in determining the phenotype, there are also several environmental factors, such as temperature, oxygen availability, presence of mutagens, that can alter an organism’s 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...
7.3K
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.
81.5K
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...
4.7K
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
6.2K