文章摘要
公洁,祝孟茹,占铭,席昌俊,神国卿,水燕,徐增洪,沈怀舜.克氏原螯虾细胞色素c基因通过调节凋亡途径抑制WSSV感染.渔业科学进展,2023,44(1):137-146
克氏原螯虾细胞色素c基因通过调节凋亡途径抑制WSSV感染
Cytochrome c gene in Procambarus clarkii inhibits WSSV infection by regulating the apoptosis pathway
投稿时间:2021-08-27  修订日期:2021-09-27
DOI:
中文关键词: 克氏原螯虾  细胞色素c  凋亡  WSSV感染  RNA干扰
英文关键词: Procambarus clarkii  Cytochrome c gene  Apoptosis  WSSV infection  RNA interference
基金项目:
作者单位
公洁 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214000 
祝孟茹 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214000 
占铭 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214001 
席昌俊 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214002 
神国卿 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214003 
水燕 中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214000 
徐增洪 中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214001 
沈怀舜 南京农业大学无锡渔业学院 江苏 南京 210000中国水产科学研究院淡水研究中心淡水渔业与种质资源利用重点实验室 江苏 无锡 214000 
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中文摘要:
      细胞凋亡是由一系列相关基因严格调控的细胞程序性死亡,在抵御病原入侵、维持机体内环境稳态等方面有着重要意义。其中细胞色素c从线粒体释放到细胞质中是凋亡开始的关键一步。本研究利用RACE技术首次克隆获得了克氏原螯虾(Procambarus clarkii)细胞色素c基因(PcCytc),全长为897 bp,包括163 bp的5′-UTR、419 bp的3′-UTR和315 bp的开放阅读框,编码104个氨基酸。定量PCR检测结果显示,PcCytc基因在克氏原螯虾的各组织中均有表达,其中在鳃、肠道和肌肉中表达高,在胃中表达最低。WSSV感染实验显示,在病毒感染后PcCytc在肝胰腺、肠道和肌肉组织中的表达水平均出现上调,并在24 h达最高值,约是此时PBS组表达量的2.65、2.07和2.20倍,均存在极显著性差异(P<0.01)。PcCytc基因干扰后,克氏原螯虾体内WSSV病毒拷贝数显著增加(P<0.05),表明PcCytc能够抑制WSSV在克氏原螯虾体内的复制,延迟感染;同时,凋亡相关基因bcl-2、bax和caspase-3的表达均发生显著上调或下调(P<0.05)。本研究表明,PcCytc可通过调节凋亡途径抑制WSSV感染,为克氏原螯虾对WSSV感染的免疫反应提供了新的见解。
英文摘要:
      Apoptosis is programmed cell death and is regulated by a series of related genes. It is of great significance in resistance to pathogen invasion and maintaining homeostasis in the environment. The release of cytochrome c (Cytc) from the mitochondria into the cytoplasm is a key step in the initiation of apoptosis. Increasing evidence from investigation of Cytc in cell apoptosis and immunity shows that it can participate in cell apoptosis induced by virus infection. For example, white spot syndrome virus (WSSV) stimulation can induce Cytc gene expression in Litopenaeus vannamei hepatopancreas and hemocytes, and the apoptosis of Epinephelus akaara hepatocytes induced by red-spotted grouper nervous necrosis virus (RGNNV) is related to the release of Cytc. However, the role of Cytc-mediated apoptosis in Procambarus clarkii WSSV infection has not yet been reported. Therefore, in this study, the full length of the the cytochrome c gene of P. clarkii (PcCytc) was cloned, and the role of PcCytc in P. clarkii was analyzed. Its expression in various tissues of P. clarkii proved that WSSV infection can induce the expression of PcCytc. The mechanism of PcCytc involvement in cell apoptosis during WSSV infection was also explored using RNA interference technology, to gain a deeper understanding of the potential role of apoptosis-related factors in the immune response of P. clarkii. In this study, PcCytc was cloned using RACE technology, with a total length of 897 bp, including the 163 bp 5′-UTR, 419 bp 3′-UTR, and 315 bp open reading frame; it encoded 104 amino acids. The structure prediction showed that PcCytc contained a conserved Cytochrom_C domain, proving that it is related to energy production and tends to be conserved in evolution. The results of the quantitative PCR showed that the PcCytc gene was expressed in all tissues of P. clarkii. The expression was lowest in the stomach and higher in the gills, intestines, and muscles, which showed, respectively, 9.46, 8.65 and 7.88 times greater PcCytc expression than that in the stomach. PcCytc showed relatively high expression in tissues with high energy consumption, such as the intestines and muscles, which is consistent with previous studies in Penaeus vannamei. The highest expression level was observed in the gills of the main immune and respiratory tissues of P. clarkii, indicating that PcCytc may be involved in the related biological processes. Based on the above results, we speculate that PcCytc may play different functions in different tissues. WSSV infection experiments showed that the expression level of PcCytc in the tested hepatopancreas, intestines, and muscle tissues increased after virus infection, and reached the highest value at 24 h (P<0.01), after which it began to decrease until it returned to a normal level at 96 h; the overall performance was an induced expression pattern. This showed that PcCytc is involved in the process of WSSV infection. In addition, considering that PcCytc can participate in ATP production as a key element in the mitochondrial respiratory chain, the low expression of PcCytc leads to energy deficiency. We speculate that once the virus disrupts the energy metabolism of the host cell, the host may compensate for the loss by upregulating the expression of PcCytc. RNAi technology revealed the role of PcCytc in the process of WSSV infection. At 24 and 48 h after WSSV infection, the WSSV copies of the PcCytc RNAi group were significantly increased compared to the uninterrupted group (P<0.01), and at 72 h were still significantly increased (P<0.05). These results indicate that PcCytc plays an important role in inhibiting the replication of WSSV in P. clarkii and delays the infection process. To further confirm whether PcCytc mainly inhibits WSSV infection through the apoptotic pathway, we tested the expression changes of some important apoptosis-related genes (bcl-2, bax, and caspase-3). Among them, caspase-3 is an effector protein that regulates cell apoptosis, and its expression directly reflects the result of cell apoptosis. The ratio of bcl-2/bax is considered to be an indicator of the process of cell apoptosis; an increase in the ratio indicates that apoptosis has been affected. Inhibition (a decrease in the ratio) indicates that apoptosis was promoted. The test results were as follows: compared with the PBS group, the expression of bcl-2, bax, and caspase-3 genes of P. clarkii in the WSSV group was up-regulated to varying degrees, with a very significant difference in values (P<0.01). This shows that WSSV can cause hemolymph apoptosis in P. clarkii, which is consistent with observations in mud crab and shrimp. In addition, the expression of caspase-3 in the dsCytc injection group was significantly downregulated (P<0.01), indicating that apoptosis was inhibited after interfering with PcCytc. The value of bcl-2/bax in the dsCytc injection group was significantly increased (P<0.01), which supported this conclusion. In summary, our results indicate that PcCytc can inhibit WSSV infection by regulating the apoptotic pathway. The results of this study provide new insights into the immune response of P. clarkii to WSSV infection.
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