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Published on: July 6, 2022
Disruption of Mitochondrion-To-Nucleus Interaction in Deceased Cloned Piglets
Joonghoon Park1, Liangxue Lai2, Melissa S Samuel2
1Department of Animal Science and Center for Regenerative Biology, University of Connecticut, Storrs, Connecticut, United States of America, 06269.
Abstract:
Most animals produced by somatic cell nuclear transfer (SCNT) are heteroplasmic for mitochondrial DNA (mtDNA). Oxidative phosphorylation (OXPHOS) in clones therefore requires the coordinated expression of genes encoded by the nuclear DNA and the two sources of mitochondria. Such interaction is rarely studied because most clones are generated using slaughterhouse oocytes of unrecorded origin. Here we traced the maternal lineages of seven diseased and five one-month-old live cloned piglets by sequencing their mtDNA. Additionally by using a 13K oligonucleotide microarray, we compared the expression profiles of nuclear and mtDNA-encoded genes that are involved in mitochondrial functions and regulation between the cloned groups and their age-matched controls (n=5 per group). We found that the oocytes used to generate the cloned piglets were of either the Large White or Duroc background, and oocyte genetic background was not related to the clones' survival. Expression profiles of mtDNA-encoded genes in clones and controls showed intermixed clustering patterns without treatment or maternal lineage-dependency. In contrast, clones and controls clustered separately for their global and nuclear DNA-encoded mitochondrial genes in the lungs for both the deceased and live groups. Functional annotation of differentially expressed genes encoded by both nuclear and mtDNA revealed abnormal gene expression in the mitochondrial OXPHOS pathway in deceased clones. Among the nine differentially expressed genes of the OXPHOS pathway, seven were down-regulated in deceased clones compared to controls, suggesting deficiencies in mitochondrial functions. Together, these data demonstrate that the coordination of expression of mitochondrial genes encoded by nuclear and mtDNA is disrupted in the lung of diseased clones.
Insights
Somatic cell nuclear transfer (SCNT) clones often have mitochondrial DNA (mtDNA) heteroplasmy. This study found disrupted coordination of nuclear and mtDNA gene expression in the lungs of diseased clones, impacting oxidative phosphorylation (OXPHOS) and suggesting mitochondrial dysfunction.
Area of Science:
- Animal cloning
- Mitochondrial genetics
- Gene expression analysis
Background:
- Somatic cell nuclear transfer (SCNT) produces animals with heteroplasmic mitochondrial DNA (mtDNA).
- Coordinated expression of nuclear and mtDNA-encoded genes is crucial for oxidative phosphorylation (OXPHOS) in clones.
- Limited research exists due to unrecorded oocyte origins in most clones.
Purpose of the Study:
- To investigate the coordination of nuclear and mtDNA gene expression in cloned piglets.
- To compare gene expression profiles between cloned and control piglets, focusing on mitochondrial function.
- To identify potential causes of disease or mortality in SCNT clones.
Main Methods:
- Sequencing of mtDNA to trace maternal lineages in cloned piglets.
- Oligonucleotide microarray analysis to compare gene expression profiles (nuclear and mtDNA-encoded) between cloned and control groups.
- Functional annotation of differentially expressed genes, particularly those involved in OXPHOS.
Main Results:
- Oocyte genetic background (Large White or Duroc) did not correlate with clone survival.
- mtDNA-encoded gene expression showed similar patterns in clones and controls.
- Cloned piglets, especially deceased ones, exhibited distinct clustering for nuclear-encoded mitochondrial genes in lung tissue.
- Seven out of nine differentially expressed OXPHOS-related genes were down-regulated in deceased clones, indicating impaired mitochondrial function.
Conclusions:
- The genetic background of oocytes does not influence SCNT clone survival.
- Coordination between nuclear and mtDNA gene expression is disrupted in the lungs of diseased SCNT clones.
- This disruption in gene expression coordination likely contributes to mitochondrial dysfunction and disease in clones.
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In SCNT, an egg cell is taken from an animal and its nucleus is removed, creating an enucleated egg. Then a somatic...

