State Key Laboratory of Rice Biology & Ministry of Agriculturaland Rural Affairs, Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Institute of Insect Sciences, Zhejiang University, Hangzhou, China.
State Key Laboratory Breeding Base for Zhejiang Sustainable Pest and Disease Control, Zhejiang Academy of Agricultural Sciences, Hangzhou, China.
Arch Insect Biochem Physiol. 2020 Feb;103(2):e21629. doi: 10.1002/arch.21629. Epub 2019 Oct 9.
Parasitoids serve as effective biocontrol agents for agricultural pests. However, they face constant challenges from host immune defense and numerous pathogens and must develop potent immune defense against these threats. Despite the recent advances in innate immunity, little is known about the immunological mechanisms of parasitoids. Here, we identified and characterized potential immune-related genes of the endoparasitoid, Pteromalus puparum, which act in regulating populations of some members of the Pieridae. We identified 216 immune-related genes based on interrogating the P. puparum genome and transcriptome databases. We categorized the cognate gene products into recognition molecules, signal moieties and effector proteins operating in four pathways, Toll, IMD, JAK/STAT, and JNK. Comparative analyses of immune-related genes from seven insect species indicate that recognition molecules and effector proteins are more expanded and diversified than signaling genes in these signal pathways. There are common 1:1 orthologs between the endoparasitoid P. puparum and its relative, the ectoparasitoid Nasonia vitripennis. The developmental expression profiles of immune genes randomly selected from the transcriptome analysis were verified by a quantitative polymerase chain reaction. Our work provides comprehensive analyses of P. puparum immune genes, some of which may be exploited in advancing parasitoid-based biocontrol technologies.
寄生蜂是农业害虫的有效生物防治剂。然而,它们面临着宿主免疫防御和大量病原体的持续挑战,必须针对这些威胁发展强大的免疫防御。尽管先天免疫的研究最近取得了进展,但对于寄生蜂的免疫学机制知之甚少。在这里,我们鉴定并表征了内寄生蜂 Pteromalus puparum 的潜在免疫相关基因,这些基因在调节某些粉蝶科成员的种群中发挥作用。我们基于对 P. puparum 基因组和转录组数据库的查询,鉴定了 216 个免疫相关基因。我们将同源基因产物归类为识别分子、信号分子和效应蛋白,它们在 Toll、IMD、JAK/STAT 和 JNK 这四个途径中发挥作用。对来自 7 种昆虫物种的免疫相关基因的比较分析表明,在这些信号途径中,识别分子和效应蛋白比信号基因更扩展和多样化。内寄生蜂 P. puparum 和其外寄生蜂 Nasonia vitripennis 之间存在常见的 1:1 直系同源物。通过定量聚合酶链反应验证了从转录组分析中随机选择的免疫基因的发育表达谱。我们的工作提供了对 P. puparum 免疫基因的全面分析,其中一些基因可能被用于推进基于寄生蜂的生物防治技术。