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首页> 外文期刊>Aquaculture >Genetically based resistance to summer mortality in the Pacific oyster (Crassostrea gigas) and its relationship with physiological, immunological characteristics and infection processes
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Genetically based resistance to summer mortality in the Pacific oyster (Crassostrea gigas) and its relationship with physiological, immunological characteristics and infection processes

机译:遗传对太平洋牡蛎(Crassostrea gigas)夏季死亡率的抗性及其与生理,免疫学特征和感染过程的关系

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摘要

Summer mortality of Pacific oysters is known in several countries. However no specific pathogen has been systematically associated with this phenomenon. A complex combination of environmental and biological parameters has been suggested as the cause and is now starting to be identified. A high genetic basis was found for survival in oysters when a first generation (G1) was tested in three sites during summer. This paper presents a synthesis on physiological characteristics of two selected groups ('R' and 'S', from families selected for resistance and susceptibility to summer mortality respectively), of the second and third generations. R and S showed improvement or reduction of survival compared with the control in both field and laboratory trials confirming the high heritability of survival of juveniles <1 year old. Interestingly, no correlation was observed between growth and survival. Comparison between the two selected groups showed that S oysters invested more energy in reproduction and stayed a longer time without spawning than R oysters which had high synchronous spawning. This was mainly shown with high rather than low dietary rations (respectively 12% and 4% DW algae/DW oyster) in a controlled experiment. Moreover, early partial spawning was detected in S oysters and not R ones in the high dietary ration. S showed a higher respiration rate and an earlier decrease in absorption efficiency than R during gametogenesis, but they were not significantly different in glycogen or ATP utilisation. Two months before a mortality episode, hemocytes from S oysters had a higher adhesive capacity than R hemocytes and significantly higher reactive oxygen species production capacity. One month before mortality, S oysters had the highest hyalinocyte concentration and their expression of genes coding for glucose metabolism enzymes (Hexokinase, GS, PGM, PEPCK) was significantly lower in the labial palps. After a thermal increase from 13 degrees C to 19 degrees C, during 8 days in normoxia, S oysters showed a large HSP70 increase under hypoxia contrary to R oysters, suggesting their high susceptibility to stress. Their catalase activity was lower than in R oysters and showed no further change to subsequent hypoxia and pesticide stresses, in contrast to R oysters. These observations suggest possible links between higher reproductive effort in S oysters, their specific stress response to temperature and hypoxia, ROS production, partial spawning, hyalinocyte increase and the infection process. To compare R and S oysters in a more integrated way, a suppression subtractive hybridisation (SSH) library and a micro-array strategy are being undertaken..
机译:在几个国家中,太平洋牡蛎的夏季死亡率已知。但是,没有特定的病原体与该现象有系统地关联。已经提出将环境和生物学参数的复杂组合作为原因,并且现在已经开始确定。夏季在三个地点测试了第一代(G1)时,发现牡蛎存活的遗传基础很高。本文介绍了第二代和第三代两个选定群体(“ R”和“ S”,分别来自对夏季死亡率具有抗药性和易感性的家庭)的生理特征的综合。在田间试验和实验室试验中,R和S与对照组相比均显示出存活率的改善或降低,这证实了<1岁少年的存活率具有很高的遗传性。有趣的是,在生长与生存之间没有相关性。两组的比较显示,与同步繁殖率高的牡蛎相比,牡蛎在繁殖上投入了更多的能量,并且没有产卵的时间更长。在对照实验中,这主要表现为高而不是低的饮食比例(分别为12%和4%的DW藻类/ DW牡蛎)。此外,在高日粮中,在牡蛎中发现了早期的部分产卵,而在R牡蛎中则没有。 S在配子发生过程中显示出比R高的呼吸速率和更快的吸收效率降低,但在糖原或ATP利用方面没有显着差异。死亡事件发生前两个月,牡蛎的血细胞比R血细胞具有更高的粘附能力,并且活性氧的产生能力也明显更高。在死亡前一个月,牡蛎的透明质酸细胞浓度最高,而在唇部触角中,它们编码葡萄糖代谢酶的基因(Hexokinase,GS,PGM,PEPCK)的表达明显降低。在常氧状态下,在8天的时间内,温度从13摄氏度增加到19摄氏度,在低氧条件下,牡蛎显示出HSP70的大量增加,这与牡蛎相反,表明它们对压力的敏感性很高。与牡蛎相比,它们的过氧化氢酶活性低于牡蛎,并且对随后的缺氧和农药胁迫无进一步变化。这些观察结果表明,牡蛎的较高繁殖力,它们对温度和缺氧的比应激反应,ROS产生,部分产卵,透明质细胞增加和感染过程之间可能存在联系。为了以更集成的方式比较R和S牡蛎,正在采用抑制消减杂交(SSH)库和微阵列策略。

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