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Published on: February 2, 2021
Exogenous gene can be integrated into Nosema bombycis genome by mediating with a non-transposon vector
Rui Guo1,2, Guangli Cao1,3, Yahong Lu1
1School of Biology and Basic Medical Science, Soochow University, Suzhou, 215123, China.
Abstract:
Nosema bombycis, a microsporidium, is a pathogen of pebrine disease of silkworms, and its genomic DNA sequences had been determined. Thus far, the research of gene functions of microsporidium including N. bombycis cannot be performed with gain/loss of function. In the present study, we targeted to construct transgenic N. bombycis. Therefore, hemocytes of the infected silkworm were transfected with a non-transposon vector pIZT/V5-His vector in vivo, and the blood, in which the hemocyte with green fluorescence could be observed, was added to the cultured BmN cells. Furthermore, normal BmN cells were infected with germinated N. bombycis, and the infected cells were transfected with pIZT/V5-His. Continuous fluorescence observations exposed that there were N. bombycis with green fluorescence in some N. bombycis-infected cells, and the extracted genome from the purified N. bombycis spore was used as templates. PCR amplification was carried out with a pair of primers for specifically amplifying the green fluorescence protein (GFP) gene; a specific product representing the gfp gene could be amplified. Expression of the GFP protein through Western blotting also demonstrated that the gfp gene was perfectly inserted into the genome of N. bombysis. These results illustrated that exogenous gene can be integrated into N. bombycis genome by mediating with a non-transposon vector. Our research not only offers a strategy for research on gene function of N. bombycis but also provides an important reference for constructing genetically modified microsporidium utilized for biocontrol of pests.
Insights
Researchers successfully created genetically modified Nosema bombycis (a silkworm pathogen) by integrating foreign genes. This breakthrough enables future studies on microsporidian gene function and pest biocontrol applications.
Area of Science:
- Molecular Biology
- Genetics
- Entomology
Background:
- Nosema bombycis is a microsporidian pathogen causing pebrine disease in silkworms.
- Previous research determined N. bombycis genomic DNA sequences.
- Gene function studies in microsporidia, including N. bombycis, were limited due to the lack of gain/loss of function methodologies.
Purpose of the Study:
- To construct transgenic Nosema bombycis.
- To establish a method for integrating exogenous genes into the N. bombycis genome.
- To provide a strategy for N. bombycis gene function research and genetically modified microsporidia for pest biocontrol.
Main Methods:
- Transfection of silkworm hemocytes with the non-transposon vector pIZT/V5-His in vivo.
- Infection of cultured BmN cells with germinated N. bombycis and subsequent transfection with the pIZT/V5-His vector.
- PCR amplification of the green fluorescence protein (GFP) gene and Western blotting to confirm gene insertion and expression.
Main Results:
- Green fluorescence was observed in N. bombycis within infected BmN cells, indicating successful gene transfer.
- PCR confirmed the specific amplification of the gfp gene from extracted N. bombycis genomic DNA.
- Western blotting demonstrated the expression of GFP protein, confirming perfect insertion of the gfp gene into the N. bombycis genome.
Conclusions:
- Exogenous genes can be integrated into the N. bombycis genome using a non-transposon vector.
- This study offers a viable strategy for investigating N. bombycis gene function.
- The research provides a foundation for developing genetically modified microsporidia for pest biocontrol.

