Molecular characteristics of the HSP70 gene and its differential expression in female and male golden apple snails (Pomacea canaliculata) under temperature stimulation

文献类型: 外文期刊

第一作者: Song, Hong-Mei

作者: Song, Hong-Mei;Mu, Xi-Dong;Gu, Dang-En;Luo, Du;Yang, Ye-Xin;Xu, Meng;Luo, Jian-Ren;Hu, Yin-Chang;Zhang, Jia-En

作者机构:

关键词: Gene expression;HSP70;Pomacea canaliculata;Temperature stress

期刊名称:CELL STRESS & CHAPERONES ( 影响因子:3.667; 五年影响因子:3.717 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Heat-shock protein 70 (HSP70) is one of the most important heat-shock proteins that helps organisms to modulate stress response via over-expression. The HSP70 gene from Pomacea canaliculata was cloned using the RACE approach; the gene is 2,767 bp in length and contains an open reading frame of 1,932 bp, which is encoded by a polypeptide of 643 amino acids. BLAST analysis showed that the predicted amino acid sequence of the P. canaliculata HSP70 gene shared a relatively high similarity with that of other known eukaryotic species that display conserved HSP characteristics. The phylogeny demonstrated a separate clustering of the apple snail HSP70 with other constitutive members from other mollusk species. Quantitative real-time RT-PCR was used to detect the differential expression of HSP70 in both sexes of P. canaliculata at different temperature conditions. These results showed that HSP70 transcript levels decreased slightly under cold shock and increased significantly under heat-shock conditions in both sexes compared to normal temperatures (26°C). Under cold-shock treatment, the sex effect was not significant. With heat treatment, HSP70 expression could be induced at 36°C in both females and males, and it peaked at 42 and 39°C in females and males, respectively. In addition, a clear time-dependent HSP70 expression pattern of the apple snail exposed to the same high temperature (36°C) was observed at different time points. The maximal induction of HSP70 expression appeared at 12 and 48 h in males and females after heat shock, respectively. The maximal induction in females was significantly higher compared to males under heat stimulus. Taken together, these results strongly suggested that males were more susceptible to heat than females and provided useful molecular information for the ecological adaptability of P. canaliculata against extreme environmental stress.

分类号: Q1

  • 相关文献

[1]Spatial variation in adult sex ratio across multiple scales in the invasive golden apple snail, Pomacea canaliculata. Xu, Meng,Fang, Miao,Yang, Yexin,Song, Hongmei,Luo, Du,Mu, Xidong,Gu, Dangen,Luo, Jianren,Hu, Yinchang,Fang, Miao,Dick, Jaimie T. A.. 2016

[2]Transcriptome analysis between invasive Pomacea canaliculata and indigenous Cipangopaludina cahayensis reveals genomic divergence and diagnostic microsatellite/SSR markers. Mu, Xidong,Song, Hongmei,Luo, Du,Gu, Dangen,Xu, Meng,Luo, Jianren,Hu, Yinchan,Hou, Guangyuan,Xu, Peng,Zhang, Jiaen. 2015

[3]Genetic variability of the invasive snail Pomacea canaliculata in South China based on mitochondrial 16S rDNA sequences. Hu, Yinchang,Mu, Xidong,Luo, Du,Xu, Meng,Yang, Yexin,Gu, Dangen,Luo, Jianren,Zhang, Jiaen.

[4]Ambrosia artemisiifolia as a potential resource for management of golden apple snails, Pomacea canaliculata (Lamarck). Ding, Wenbing,Huang, Rui,He, Hualiang,Li, Youzhi,Ding, Wenbing,Li, Youzhi,Huang, Rui,Zhou, Zhongshi. 2018

[5]Molecular identification of Pomacea canaliculata and P. insularum from rice paddy in different origins in China using mitochondrial adenosine triphosphate subunit 6 gene. Bian, Qing-Qing,Li, Xiao-Yan,Fang, Yan-Qin,Jia, Yan-Qing,Mu, Xi-Dong.

[6]MORPHOLOGICAL, PHYSIOLOGICAL AND BIOCHEMICAL RESPONSES OF CAMELLIA OLEIFERA TO LOW-TEMPERATURE STRESS. Hu, Juanjuan,Wen, Jia,Shu, Qinglong,Fu, Songling,Wu, Wei,Cao, Zhihua. 2016

[7]Cytological, molecular mechanisms and temperature stress regulating production of diploid male gametes in Dianthus caryophyllus L.. Zhou, Xuhong,Luo, Ying,Tang, Wenru,Zhou, Xuhong,Luo, Ying,Tang, Wenru,Zhou, Xuhong,Mo, Xijun,Gui, Min,Wu, Xuewei,Jiang, Yalian,Ma, Lulin,Shi, Ziming,Zhou, Xuhong,Mo, Xijun,Gui, Min,Wu, Xuewei,Jiang, Yalian,Ma, Lulin,Shi, Ziming.

[8]Characterizing heat shock protein 90 gene of Apolygus lucorum (Meyer-Dur) and its expression in response to different temperature and pesticide stresses. Sheng, Yang,Bai, Lixin,Xiao, Liubin,Tan, Yongan,Shen, Youmi,Sun, Yang,Zhang, Yongjun,Xiao, Yingfang. 2014

[9]Mycorrhizal efficacy of trifoliate orange seedlings on alleviating temperature stress. Wu, Q. S.,Wu, Q. S.. 2011

[10]EVALUATION OF ENDOGENOUS REFERENCE GENES OF BACTROCERA (TETRADACUS) MINAX BY GENE EXPRESSION PROFILING UNDER VA RIOUS EXPERIMENTAL CONDITIONS. Wang, Liu-Hao,Dai, Rui-Lin,Zhang, Gui-Fen,Guo, Jian-Ying,Wan, Fang-Hao,Guo, Jian-Ying,Wan, Fang-Hao,Wang, Liu-Hao.

[11]Metabolic responses of alfalfa (Medicago Sativa L.) leaves to low and high temperature induced stresses. Mo, Yiwei,Shi, Weiqi,Xie, Jianghui,Liang, Guobin. 2011

[12]Temperature regulates fatty acid desaturases at a transcriptional level and modulates the fatty acid profile in the Antarctic microalga Chlamydomonas sp ICE-L. An, Meiling,Zheng, Zhou,Miao, Jinlai,Mou, Shanli,Zhang, Xiaowen,Ye, Naihao,Cao, Shaona,Xu, Dong,Fan, Xiao,Wang, Yitao. 2013

[13]Effects of anthraquinone extract from Rheum officinale Bail on the growth performance and physiological responses of Macrobrachium rosenbergii under high temperature stress. Liu, Bo,Xie, Jun,Ge, Xianping,Xu, Pao,Wang, Aiming,Liu, Bo,Xie, Jun,Ge, Xianping,Xu, Pao,He, Yijin,Zhou, Qunlan,Pan, Liangkun,Chen, Ruli,Wang, Aiming.

[14]Accumulation and subcellular localization of heat shock proteins in young grape leaves during cross-adaptation to temperature stresses. Zhang, Jun-Huan,Pan, Qiu-Hong,Zhan, Ji-Cheng,Huang, Wei-Dong,Zhang, Jun-Huan,Wang, Yu-Zhu,Wang, Li-Jun. 2008

[15]Effect of High Dietary Carbohydrate on Growth, Serum Physiological Response, and Hepatic Heat Shock Protein 70 Expression of Wuchang Bream (Megalobrama amblycephala) at Two Temperatures. Zhou, Chuanpeng,Liu, Bo,Xie, Jun,Ge, Xianping,Liu, Bo,Xie, Jun,Ge, Xianping. 2013

[16]Analysis of genetic diversity of the heat shock protein 70 gene on the basis of abundant sequence polymorphisms in chicken breeds. Gan, J. K.,Kong, L. N.,Zhang, X. Q.,Luo, Q. B.,Gan, J. K.,Gan, J. K.,Jiang, L. Y.,Kong, L. N.,Zhang, X. Q.,Luo, Q. B.. 2015

[17]Promoter methylation negatively correlated with mRNA expression but not tissue differential expression after heat stress. Gan, J. K.,Zhang, D. X.,Zhang, X. Q.,Chen, Z. Y.,Luo, Q. B.,Gan, J. K.,Zhang, D. X.,He, D. L.,Zhang, X. Q.,Chen, Z. Y.,Luo, Q. B.,He, D. L.. 2013

[18]Molecular cloning and expression of two HSP70 genes in the Wuchang bream (Megalobrama amblycephala Yih). Ming, Jianhua,Xie, Jun,Xu, Pao,Ge, Xianping,Liu, Bo,He, Yijin,Cheng, Yanfen,Zhou, Qunlan,Pan, Liangkun,Ming, Jianhua,Liu, Wenbin. 2010

[19]The Effect of Muscle-Regulatory Factor Genes and Satellite Cell Response to Recombinant Hsp70 Protein on Megalobrama amblycephala Skeletal Muscle. Zhu, Kecheng,Zhang, Dianchang,Wang, Huanling,Zhu, Kecheng,Zhang, Dianchang,Wang, Huanling. 2016

[20]Starvation reduces the heat shock protein responses in white sturgeon larvae. Huang, Susie S. Y.,Hung, Silas S. O.,Han, Dong,Wang, Wei-Fang. 2012

作者其他论文 更多>>