热带超级蝇:Cas9在果蝇中的整合及其表型效应

IF 2.3 2区 农林科学 Q1 ENTOMOLOGY Journal of insect physiology Pub Date : 2023-06-01 DOI:10.1016/j.jinsphys.2023.104516
Vera M. Yılmaz , Timothy J.S. Ramnarine , Annabella Königer , Selina Mussgnug , Sonja Grath
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引用次数: 0

摘要

昆虫等外部动物的体温在很大程度上取决于环境温度,温度变化提供了影响这些物种地理分布的选择压力。然而,在进化过程中,一些昆虫物种设法在以不同温度范围为特征的环境中定居。因此,昆虫为研究适应温度变化和极端情况的基础提供了一个极好的研究系统。我们通常使用醋蝇果蝇作为模型系统来研究抗寒性的遗传基础。该物种已从其热带祖先范围扩展到更温和的地区,从而形成了国际化的国内分布。此前,我们在该物种中鉴定了与抗寒性显著相关的候选基因。我们现在建立了分子遗传学工具来评估这些基因的功能。利用CRISPR/Cas9基因组编辑方法和PiggyBac系统,将Cas9酶成功整合到三种具有不同抗寒水平的苍蝇菌株的基因组中。我们进一步报道了初步发现,即Cas9整合本身对抗寒性没有一致的影响。总之,我们的研究提供了分子工具,可以在未来研究D.ananassae中与压力相关的候选基因。此外,我们还指出并指导了非模式物种基因组编辑所面临的挑战。
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Tropical super flies: Integrating Cas9 into Drosophila ananassae and its phenotypic effects

Ectotherms such as insects are animals whose body temperature largely depends on ambient temperature and temperature variations provide a selection pressure affecting the geographical distribution of these species. However, over the course of evolution, some insect species managed to colonize environments characterized by various temperature ranges. Therefore, insects provide an excellent study system to investigate the basis of adaptation to temperature changes and extremes. We are generally using the vinegar fly Drosophila ananassae as a model system to investigate the genetic basis of cold tolerance. This species has expanded from its tropical ancestral range to more temperate regions resulting in a cosmopolitan, domestic distribution. Previously, we identified candidate genes significantly associated with cold tolerance in this species. We now established molecular genetic tools to assess the function of these genes. Using CRISPR/Cas9 methodology for genome editing and the PiggyBac system, the Cas9 enzyme was successfully integrated into the genome of three fly strains with different levels of cold tolerance. We further report on preliminary findings that the Cas9 integration itself did not have a consistent effect on tolerance to cold. In conclusion, we offer with our study the molecular tools that allow studying stress-related candidate genes in D. ananassae in the future. In addition, we point out and provide guidance on the challenges that come with genome editing in a non-model species.

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来源期刊
Journal of insect physiology
Journal of insect physiology 生物-昆虫学
CiteScore
4.50
自引率
4.50%
发文量
77
审稿时长
57 days
期刊介绍: All aspects of insect physiology are published in this journal which will also accept papers on the physiology of other arthropods, if the referees consider the work to be of general interest. The coverage includes endocrinology (in relation to moulting, reproduction and metabolism), pheromones, neurobiology (cellular, integrative and developmental), physiological pharmacology, nutrition (food selection, digestion and absorption), homeostasis, excretion, reproduction and behaviour. Papers covering functional genomics and molecular approaches to physiological problems will also be included. Communications on structure and applied entomology can be published if the subject matter has an explicit bearing on the physiology of arthropods. Review articles and novel method papers are also welcomed.
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