Yıldız Berkant İsmail, Karabağ Kemal
Department of Agricultural Biotechnology, Faculty of Agriculture, Akdeniz University, Antalya, Turkey.
Biochem Genet. 2025 Aug 25. doi: 10.1007/s10528-025-11233-w.
Genome editing technologies have revolutionized molecular biology, enabling precise manipulation of gene functions across diverse organisms. In this study, we introduce a novel liposome-mediated delivery system for CRISPR-Cas9 components targeting the Juvenile Hormone Acid Methyltransferase (JHAMT) gene in honey bees (Apis mellifera anatoliaca). This approach leverages drone sperm cells as vectors for CRISPR-Cas9 transfection, overcoming the technical challenges of embryo microinjection in honey bees, such as low survival rates and labor-intensive procedures. The study involved artificial insemination of queen bees with transfected sperm and subsequent evaluation of gene-editing efficiency across generations.Our findings demonstrate the successful generation of both heterozygous and homozygous mutants, with gene-editing efficiencies reaching approximately 43%. This innovative method highlights the potential of liposome-mediated delivery systems for non-invasive, efficient, and scalable genome editing in eusocial insects. The results pave the way for broader applications in honey bee genetic research, offering a viable alternative to traditional methods. Furthermore, this study underscores the importance of genetic tools in advancing apiculture and addressing ecological challenges linked to pollinator health.
基因组编辑技术彻底改变了分子生物学,使人们能够在各种生物体中精确操纵基因功能。在本研究中,我们介绍了一种新型脂质体介导的递送系统,用于靶向蜜蜂(Apis mellifera anatoliaca)中的保幼激素酸甲基转移酶(JHAMT)基因的CRISPR-Cas9组件。这种方法利用雄蜂精子细胞作为CRISPR-Cas9转染的载体,克服了蜜蜂胚胎显微注射的技术挑战,如低存活率和劳动密集型程序。该研究包括用转染的精子对蜂王进行人工授精,并随后评估几代人的基因编辑效率。我们的研究结果表明成功产生了杂合和纯合突变体,基因编辑效率达到约43%。这种创新方法突出了脂质体介导的递送系统在社会性昆虫中进行非侵入性、高效和可扩展基因组编辑的潜力。这些结果为蜜蜂遗传研究的更广泛应用铺平了道路,为传统方法提供了可行的替代方案。此外,本研究强调了遗传工具在推进养蜂业和应对与传粉者健康相关的生态挑战方面的重要性。