Lika Jorgo, Katzenberger Rebeccah J, Ganetzky Barry, Wassarman David A
Department of Medical Genetics, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI 53706.
Department of Genetics, College of Agricultural and Life Sciences, University of Wisconsin-Madison, Madison, WI 53706.
MicroPubl Biol. 2021 Jul 13;2021. doi: 10.17912/micropub.biology.000423. eCollection 2021.
Blunt force injuries are a significant cause of disability and death worldwide. Here, we describe a model of blunt force injury that can be used to investigate cellular and molecular mechanisms that underlie the short-term and long-term effects of injuries sustained at a juvenile stage of development. Injuries inflicted in late third-instar larvae using the spring-based High-Impact Trauma (HIT) device robustly activated the humoral defense response process of melanization and caused larval and pupal lethality. Additionally, adults that developed from injured larvae had reduced lifespans, indicating that cellular and molecular mechanisms activated by blunt force injuries in larvae persist through metamorphosis and adult development. Previously, the HIT device has been used to investigate genetic and environmental factors underlying mechanisms that contribute to consequences of blunt force injuries incurred in adult flies. This work expands use of the HIT device to a juvenile stage of development, offering the opportunity to investigate whether the consequences of blunt force injuries involve different factors and mechanisms at different stages of development.
钝器伤是全球范围内导致残疾和死亡的一个重要原因。在此,我们描述了一种钝器伤模型,该模型可用于研究在发育的幼年阶段所受损伤的短期和长期影响背后的细胞和分子机制。使用基于弹簧的高冲击创伤(HIT)装置对三龄晚期幼虫造成的损伤有力地激活了黑化的体液防御反应过程,并导致幼虫和蛹死亡。此外,从受伤幼虫发育而来的成虫寿命缩短,这表明幼虫中钝器伤激活的细胞和分子机制在变态和成虫发育过程中持续存在。此前,HIT装置已被用于研究导致成年果蝇钝器伤后果的机制背后的遗传和环境因素。这项工作将HIT装置的应用扩展到发育的幼年阶段,为研究钝器伤的后果在不同发育阶段是否涉及不同因素和机制提供了机会。