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Timing of NAD Deficiency During Organogenesis Dictates Defect Type and Penetrance
Kayleigh Bozon1,2, Hartmut Cuny1,3, Nana Sunn4
1Developmental and Stem Cell Division, Victor Chang Cardiac Research Institute, Sydney, NSW, Australia.
Abstract:
Major congenital malformations are common, and most cases have no known etiology because of complex interactions between genetic and environmental factors and variable phenotypic outcomes. Congenital NAD Deficiency Disorder (CNDD), a cause of multiple congenital malformations and embryo loss, exemplifies this variability in phenotypic presentation, even between siblings with the same underlying genetic variants. Mouse models show that CNDD is caused by embryonic nicotinamide adenine dinucleotide (NAD) deficiency because of the embryos' genetic inability to synthesize NAD and/or insufficient maternal provision of NAD precursors to embryos. But it is unknown when during pregnancy embryos become susceptible to developing malformations and what drives the malformation variability. Here, we induced CNDD in wild-type mice via the maternal diet and longitudinally tracked affected and unaffected embryos in utero. We compared 3-day interval measurements of the maternal blood NAD metabolome with embryo phenotype using Fast Spin Echo Magnetic Resonance Imaging, mass spectrometry, and micro-computed tomography. Malformations varied between litters, but they correlated with different embryo growth dynamics. Mice with lower maternal NAD Salvage Pathway metabolite levels and minimal levels of derived excretion metabolites from embryonic day 6.5 onward had smaller embryos with more malformations. This showed that altered embryo growth and reduced maternal NAD precursor availability during organogenesis resulted in CNDD. Variability in the timing of maternal metabolic perturbation corresponded to variability in organ and tissue defect types between litters. As embryo phenotypes are directly linked to maternal NAD precursor availability prior to and during organogenesis, this suggests NAD-derived metabolites are potential biomarkers predicting CNDD.
Insights
Congenital NAD Deficiency Disorder (CNDD) causes birth defects due to low embryonic nicotinamide adenine dinucleotide (NAD). Maternal NAD precursor levels during early pregnancy impact embryo growth and malformation severity, suggesting NAD metabolites as predictive biomarkers.
Area of Science:
- Developmental Biology
- Biochemistry
- Genetics
Background:
- Major congenital malformations often lack clear causes, stemming from complex genetic and environmental interactions.
- Congenital NAD Deficiency Disorder (CNDD) causes multiple malformations and embryo loss, showing variable outcomes even in siblings with identical genetic variants.
- Mouse models indicate CNDD results from embryonic nicotinamide adenine dinucleotide (NAD) deficiency due to impaired embryonic synthesis or insufficient maternal NAD precursor supply.
Purpose of the Study:
- To determine the critical timing of embryonic susceptibility to malformations in CNDD.
- To investigate the factors driving malformation variability in CNDD.
- To establish a link between maternal NAD metabolism and embryonic development in CNDD.
Main Methods:
- Induced CNDD in wild-type mice through maternal diet manipulation.
- Longitudinally monitored affected and unaffected embryos in utero.
- Correlated maternal blood NAD metabolome (measured via mass spectrometry) with embryo phenotype (assessed by MRI and micro-CT) at 3-day intervals.
Main Results:
- Malformations varied between litters and correlated with distinct embryo growth dynamics.
- Embryos from mothers with lower NAD Salvage Pathway metabolites and minimal excretion metabolites from embryonic day 6.5 onwards exhibited smaller size and more malformations.
- Altered embryo growth and reduced maternal NAD precursor availability during organogenesis were identified as causes of CNDD.
Conclusions:
- Embryonic phenotypes in CNDD are directly linked to maternal NAD precursor availability during and before organogenesis.
- Variability in the timing of maternal metabolic perturbation correlates with diverse organ and tissue defect types.
- NAD-derived metabolites show potential as predictive biomarkers for CNDD.
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