Parent-of-origin effects propagate through networks to shape metabolic traits.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 35356864.
- Also identified by DOI 10.7554/eLife.72989 and PMC identifier 9075957.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Parent-of-origin effects are unexpectedly common in complex traits, including metabolic and neurological traits. Parent-of-origin effects can be modified by the environment, but the architecture of these gene-by-environmental effects on phenotypes remains to be unraveled. Previously, quantitative trait loci (QTL) showing context-specific parent-of-origin effects on metabolic traits were mapped in the F<sub>16</sub> generation of an advanced intercross between LG/J and SM/J inbred mice. However, these QTL were not enriched for known imprinted genes, suggesting another mechanism is needed to explain these parent-of-origin effects phenomena. We propose that non-imprinted genes can generate complex parent-of-origin effects on metabolic traits through interactions with imprinted genes. Here, we employ data from mouse populations at different levels of intercrossing (F<sub>0</sub>, F<sub>1</sub>, F<sub>2</sub>, F<sub>16</sub>) of the LG/J and SM/J inbred mouse lines to test this hypothesis. Using multiple populations and incorporating genetic, genomic, and physiological data, we leverage orthogonal evidence to identify networks of genes through which parent-of-origin effects propagate. We identify a network comprised of three imprinted and six non-imprinted genes that show parent-of-origin effects. This epistatic network forms a nutritional responsive pathway and the genes comprising it jointly serve cellular functions associated with growth. We focus on two genes, <i>Nnat</i> and <i>F2r</i>, whose interaction associates with serum glucose levels across generations in high-fat-fed females. Single-cell RNAseq reveals that <i>Nnat</i> expression increases and <i>F2r</i> expression decreases in pre-adipocytes along an adipogenic trajectory, a result that is consistent with our observations in bulk white adipose tissue.
Medical subject headings
- Multifactorial Inheritance
- Quantitative Trait Loci