Optimized cuvette-based electroporation of buffalo and caprine zygotes supports the delivery of up to 21 kilobase plasmids

Abstract The advent of precise genome editing technologies has revolutionized the capacity to manipulate animal genotypes and phenotypes, offering a targeted complement to conventional selective breeding approaches. Efficient delivery of exogenous DNA into livestock embryos remains a major technical bottleneck, particularly for large constructs, due to limitations of pronuclear microinjection and somatic cell nuclear transfer. In this study, we optimized a simplified cuvette-based electroporation method for the delivery of minicircles and shuttle plasmids (pGOF18) of different sizes (1.8–21.0 kbp) into bubaline and caprine zygotes at 10 h post-insemination. Embryos were evaluated for preimplantation developmental competence, total blastomere number, and transcriptional profiles of apoptotic (BAX, Caspase-9) and lineage-specific (OCT4, CDX2) genes. Electroporated embryos developed to the blastocyst stage with reporter-associated fluorescence, without significant differences in cleavage or blastocyst formation rates compared with controls. No significant differences in apoptotic genes expression were observed, indicating minimal cellular stress. Furthermore, pGOF18-electroporated embryos exhibited significant ( p < 0.05) upregulation of OCT4 and CDX2 transcripts. These results demonstrate that optimized cuvette-based electroporation provides an efficient, reproducible, and embryo-tolerant strategy for introducing both large and small DNA constructs into goat and buffalo zygotes, supporting the generation of transgenic embryos while preserving preimplantation developmental competence.

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Publication Details

Journal
Scientific Reports
Published
2026-09-11
DOI
https://doi.org/10.1038/s41598-026-70554-x
Primary Topic
CRISPR and Genetic Engineering
Type
article
Field-Weighted Citation Impact
0.00

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article

Optimized cuvette-based electroporation of buffalo and caprine zygotes supports the delivery of up to 21 kilobase plasmids

Manu Mangal, Priya Dahiya, Meeti Punetha, Aseem Tara et al.
Scientific Reports
CRISPR and Genetic Engineering
article

Optimized cuvette-based electroporation of buffalo and caprine zygotes supports the delivery of up to 21 kilobase plasmids

Manu Mangal, Priya Dahiya, Meeti Punetha, Aseem Tara, Dharmendra Kumar, Ashish Sindhu, Neha Sharma, Srishti Bhatia, Wilfried A. Kues, Pradeep Kumar
article en

Abstract

Abstract The advent of precise genome editing technologies has revolutionized the capacity to manipulate animal genotypes and phenotypes, offering a targeted complement to conventional selective breeding approaches. Efficient delivery of exogenous DNA into livestock embryos remains a major technical bottleneck, particularly for large constructs, due to limitations of pronuclear microinjection and somatic cell nuclear transfer. In this study, we optimized a simplified cuvette-based electroporation method for the delivery of minicircles and shuttle plasmids (pGOF18) of different sizes (1.8–21.0 kbp) into bubaline and caprine zygotes at 10 h post-insemination. Embryos were evaluated for preimplantation developmental competence, total blastomere number, and transcriptional profiles of apoptotic (BAX, Caspase-9) and lineage-specific (OCT4, CDX2) genes. Electroporated embryos developed to the blastocyst stage with reporter-associated fluorescence, without significant differences in cleavage or blastocyst formation rates compared with controls. No significant differences in apoptotic genes expression were observed, indicating minimal cellular stress. Furthermore, pGOF18-electroporated embryos exhibited significant ( p < 0.05) upregulation of OCT4 and CDX2 transcripts. These results demonstrate that optimized cuvette-based electroporation provides an efficient, reproducible, and embryo-tolerant strategy for introducing both large and small DNA constructs into goat and buffalo zygotes, supporting the generation of transgenic embryos while preserving preimplantation developmental competence.

Scientific Reports
Friedrich-Loeffler-Institut (DE), Central Institute for Research on Buffaloes (IN)
Bill and Melinda Gates Foundation
Openalex Percentile: Top 18%
CRISPR and Genetic Engineering
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