Nuclear Transfer Perturbs Genomic Balance
Eryk Andreas1, Justin C St John1
1Experimental Mitochondrial Genetics Group, School of Biomedicine, The University of Adelaide, Adelaide, SA 5005, Australia.
Background:
The transfer of a nucleus from one oocyte to another offers patients harbouring high levels of mitochondrial DNA mutation and sufferers of frequent fertilisation failure or early embryonic arrest the potential to have healthy children. However, a small amount of mtDNA is carried over with the nucleus as the transfer takes place. Consequently, we still need to distinguish between the effects of the carryover and the transfer of a nucleus itself from a mature oocyte.
Methods:
To overcome this, we analysed a series of hatching stage blastocysts generated using metaphase II spindle transfer and mitochondrial supplementation. The latter approach also introduces a small amount of mtDNA into the oocyte as fertilisation takes place. For both manipulations, an autologous approach was used to overcome the effects of third-party transfer.
Results:
We then compared the changes in global gene expression between the two groups. We found that the nuclear transfer process affected a number of gene networks and pathways. These included metabolic, cell cycle, inflammatory and immune, and epigenetic responses. A comparison with earlier stage blastocysts did not suggest that the cause was due to developmental delay.
Conclusions:
Critically, these changes could affect offspring health and well-being as is the case following somatic cell nuclear transfer.
More Related Videos
10:08Genetic Mapping of Thermotolerance Differences Between Species of Saccharomyces Yeast via Genome-Wide Reciprocal Hemizygosity Analysis
Published on: August 12, 2019
06:02A Computational Pipeline for Intergenic/Intragenic Enhancer RNA Quantification in Mouse Embryonic Stem Cells
Published on: October 28, 2025
Related Concept Videos
Methods of Nuclear Reprogramming
Gene Conversion
Nuclear Transmutation
Introduction to Nuclear Reprogramming
Genome Copying Errors
Overview of Transposition and Recombination
