Urbański A, Konopińska N, Lubawy J, Walkowiak-Nowicka K, Marciniak P, Rolff J
Department of Animal Physiology and Developmental Biology, Adam Mickiewicz University, Uniwersytetu Poznańskiego Str. 6, 61-614, Poznań, Poland; HiProMine S.A, Poznańska Str. 8, 62-023, Robakowo, Poland.
Department of Animal Physiology and Developmental Biology, Adam Mickiewicz University, Uniwersytetu Poznańskiego Str. 6, 61-614, Poznań, Poland.
Dev Comp Immunol. 2021 Jul;120:104065. doi: 10.1016/j.dci.2021.104065. Epub 2021 Mar 8.
Tachykinin-related peptides (TRPs) are important neuropeptides. Here we show that they affect the insect immune system, especially the cellular response. We also identify and predict the sequence and structure of the tachykinin-related peptide receptor (TRPR) and confirm the presence of expression of gene encoding TRPR on Tenebrio molitor haemocytes. After application of the Tenmo-TRP-7 in T. molitor the number of circulating haemocytes increased and the number of haemocytes participating in phagocytosis of latex beads decreased in a dose- and time-dependent fashion. Also, Tenmo-TRP-7 affects the adhesion ability of haemocytes. Six hours after injection of Tenmo-TRP-7, a decrease of haemocyte surface area was observed under both tested Tenmo-TRP-7 concentrations (10 and 10 M). The opposite effect was reported 24 h after injection, which indicates that the influence of Tenmo-TRP-7 on modulation of haemocyte behaviour differs at different stages of stress response. Tenmo-TRP-7 application also resulted in increased phenoloxidase activity 6 and 24 h after injection. The assessment of DNA integrity of haemocytes showed that the injection of Tenmo-TRP-7 at 10 M led to a decrease in DNA damage compared to control individuals. This effect was only visible 6 h after Tenmo-TRP-7 application. After 24 h, Tenmo-TRP-7 injection increased DNA damage. We also confirmed the expression of immune-related genes in nervous tissue of T. molitor. Transcripts for genes encoding receptors participating in pathogen recognition processes and antimicrobial peptides were detected in T. molitor brain, retrocerebral complex and ventral nerve cord. These results may indicate a role of the insect nervous system in pathogen recognition and modulation of immune response similar to vertebrates. Taken together, our results support the notion that tachykinin-related peptides probably play an important role in the regulation of the insect immune system. Moreover, some resemblances with action of tachykinin-related peptides and substance P showed that insects can be potential model organisms for analysis of hormonal regulation of conserved innate immune mechanisms.
速激肽相关肽(TRPs)是重要的神经肽。在此我们表明它们会影响昆虫免疫系统,尤其是细胞反应。我们还鉴定并预测了速激肽相关肽受体(TRPR)的序列和结构,并证实了在黄粉虫血细胞中编码TRPR的基因的表达情况。在黄粉虫中应用Tenmo - TRP - 7后,循环血细胞数量增加,参与吞噬乳胶珠的血细胞数量呈剂量和时间依赖性减少。此外,Tenmo - TRP - 7会影响血细胞的黏附能力。注射Tenmo - TRP - 7六小时后,在两种测试的Tenmo - TRP - 7浓度(10和10 μM)下均观察到血细胞表面积减小。注射24小时后报告了相反的效果,这表明Tenmo - TRP - 7对血细胞行为调节的影响在应激反应的不同阶段有所不同。应用Tenmo - TRP - 7还导致注射后6小时和24小时酚氧化酶活性增加。血细胞DNA完整性评估表明,与对照个体相比,注射10 μM的Tenmo - TRP - 7导致DNA损伤减少。这种效果仅在应用Tenmo - TRP - 7后6小时可见。24小时后,注射Tenmo - TRP - 7增加了DNA损伤。我们还证实了黄粉虫神经组织中免疫相关基因的表达。在黄粉虫的脑、后脑复合体和腹神经索中检测到了参与病原体识别过程的受体和抗菌肽的编码基因的转录本。这些结果可能表明昆虫神经系统在病原体识别和免疫反应调节中发挥的作用类似于脊椎动物。综上所述,我们的结果支持了速激肽相关肽可能在昆虫免疫系统调节中起重要作用的观点。此外,速激肽相关肽与P物质作用的一些相似之处表明,昆虫可能是分析保守的先天免疫机制激素调节的潜在模式生物。