Research Papers

Diversity of Midgut Microbial Community of ChilosuppressalisExposed to Chlorobenzamide

Expand
  • 1Institute of Plant Protection and Microbiology,Zhejiang Academy of Agricultural Sciences, Hangzhou310021, China
    2Hangzhou Academy of forestry,Hangzhou 310021, China
*Corresponding author, E-mail: chenjm63@163.com

Received date: 2020-01-06

  Revised date: 2020-04-20

  Online published: 2020-11-10

Abstract

【Objective】We aim toilluminatethestructural changes in the midgut microbial community of Chilosuppressalis exposed to chlorobenzamide.【Method】Macrogenomic sequencing and in vitro culturewere used to analyze the diversity of midgut microbiotaof Chilosuppressalistreatedwith different concentrations (100, 200, 400µg/mL) of chlorobenzamide.【Result】The results showed that chlorobenzamide treatmentdecreased the abundance anddiversityof the midgut bacteria of Chilosuppressalis,and the OTU number and specific OTU number of the intestinal bacteria of treated population were lower than those of the control;the proportion of Morganella, Provincia and Proteus in the chlorobenzamide treated population increased significantly. Meanwhile, the result of in vitro culture indicated besides enterobacter,Lelliottinimipressuralis, Leclerciadecarboxylata, Pantoeaagglomeranswere isolated from chlorobenzamide treated Chilosuppressalis population. COG classification and KEGG analysis didn’t show significant difference in number and relative abundance of functional genes among control and three chlorobenzamide treated populations.【Conclusion】The study had clarified the diversity of intestinal bacteria and the relationshipbetween gutbacteria of Chilosuppressalis andthe formation of chlorobenzamide resistance, and will lay a scientific basis for the role of intestinal bacteria in resistance of Chilosuppressalistochlorobenzamide.

Cite this article

Juefeng ZHANG, Qin ZHANG, Fang LI, Haiying ZHONG, Jianming CHEN . Diversity of Midgut Microbial Community of ChilosuppressalisExposed to Chlorobenzamide[J]. Chinese Journal OF Rice Science, 2020 , 34(6) : 586 -594 . DOI: 10.16819/j.1001-7216.2020.0101

References

[1] Sharon G, Segal D, Ringo JM.Commensal bacteria play a role in mating preference of Drosophila melanogaster[J]. Proceedings of the National Academy of Sciences of the United States of America, 2010,107(46):20051-20056.
[2] Dillon R J, Vennard C T, Buckling A.Diversity of locust gut bacteria protects against pathogen invasion[J]. Ecology Letters, 2005, 8(12):1291-1298.
[3] Roush R T, McKenzie J A. Ecological genetics of insecticide and acaricideresistance[J]. Annual Review of Entomology,1987, 32:361-380.
[4] Whalon M E, Motasanchez D, Hollingworth R M.Global pesticide resistance in arthropods[M]. Cambridge, Mass:Wallingford, Oxfordshire,2008
[5] 张浩, 薛妍, 候艳飞. 肠道菌对苏云菌芽孢杆菌杀虫活性的研究[J]. 生物技术通报, 2012(7): 176-180. (in Chinese with English abstract)
[5] Zhang H, Xue Y, Hou Y F.Effects of gut bacteria to the insecticidal activity of Bacillus thuringiensistoward Helicoverpaarmigera[J]. Biotechnology Bulletin, 2012(7): 176-180.
[6] Kikuchia Y, Hayatsuc M, Hosokawad T.Symbiont-mediated insecticide resistance[J]. Proceedingsof the National Academy of Sciences, 2012,109(22): 8612-8617.
[7] 刘浩,张凡,黄艳红. 三种抗生素对德国小蠊肠道菌去除效果的研究[J].山东师范大学学报, 2012, 27(3): 115-117.
[7] Liu H, Zhang F, Huang Y H.A Study of the removal of intestinal flora in BlattellaGermanica using three antibiotics[J].Journal of Shandong Normal University, 2012, 27(3): 115-117. (in Chinese with English abstract)
[8] 刘浩. 德国小蠊共生菌种群变化与抗药性的关系[D]. 济南: 山东师范大学, 2013.
[8] Liu H.Study on the symbiotic bacteria population change and insecticide resistance of Blattellagermannica[D]. Jinan: Shandong Normal University, 2013. (in Chinese with English abstract)
[9] Xia X F, Zheng D D, You M S.DNA sequencing reveals the midgut microbiota of diamondback moth, Plutellaxylostella (L.) and a possible relationship with insecticide resistance[J]. PLoS ONE,2013, 8(7):e68852.
[10] 夏晓峰. 小菜蛾中肠微生物多样性及其功能研究[D]. 福州: 福建农林大学, 2014.
[10] Xia X F.Organizational diversity and functional characterization of microbiota in the midgut of diamondback moth, Plutellaxylostella L. [D]. Fuzhou: Fujian Agriculturaland Forestry University, 2014. (in Chinese with English abstract)
[11] 胡君, 陈文明, 张真真, 郑雪松, 靳建超, 苏建亚, 高聪芬, 沈晋良. 长江流域稻区二化螟抗药性监测. 中国水稻科学, 2010, 24(5): 509-515.
[11] Hu J, Chen W M, Zhang Z Z, Zheng X S, Jin J C, Su J Y, Gao C F, Shen J L.Insecticide resistance monitoring of Chilosuppressalis in the drainage area of the Yangtze River, China[J].Chinese Journal of Rice Science,2010, 24(5): 509-515. (in Chinese with English abstract)
[12] 张扬, 王保菊, 韩平, 韩召军. 二化螟抗药性检测方法比较和抗药性监测. 南京农业大学学报, 2014, 37(6):37-43.
[12] Zhang Y, Wang B J, Han P, Han Z J.Comparison of methods for testing insecticide resistance in Chilosuppressalis and the resistance monitored[J].Journal of Nanjing Agricultural University, 2014, 37(6):37-43. (in Chinese with English abstract)
[13] Yao R, Zhao DD, Zhang S, Zhou LQ, Wang X, Gao CF, Wu SF.Monitoring and mechanisms of insecticide resistance in Chilosuppressalis (Lepidoptera: Crambidae), with special reference to diamides[J]. Pest Management,2017, 73: 1169-1178.
[14] He Y P, Zhang J F, Gao C F.Regression analysis of dynamics of insecticide resistance in field populations of Chilosuppressalis (Walker) (Lepidoptera: Pyralidae) during 2002-2011 in China[J]. Journal of Economic Entomology, 2013,106(4): 1832-1837.
[15] He Y P, Zhang J F, Chen J M.Effect of synergists on susceptibility to chlorantraniliprole in field populations of rice stem borer (Chilosuppressalis) (Lepidoptera: Pyralidae)[J]. Journal of Economic Entomology, 2014, 107(2): 791-796.
[16] Su J Y, Zhang Z Z, Gao C F.Geographic susceptibility of Chilosuppressalis Walker (Lepidoptera: Crambidae), to chlorantraniliprole in China[J].Pest Management Science, 2014,70(6):989-995.
[17] Lu Y H, Wang G R, Zhong L Q, Zhang F C, Bai Q,Zheng X S, Lu Z X.Resistance monitoring of Chilosuppressalis (Walker) (Lepidoptera: Crambidae) to chlorantraniliprole in eight field populations from east and central China[J]. Crop Protection, 2017, 100: 196-202.
[18] Kang W J, Koo H N,Jeong D, Kim H. Functional and genetic characteristics of chlorantraniliprole resistance in the diamondback moth, Plutellaxylostella(Lepidoptera: Plutellidae)[J]. Entomological Research, 2017, 47(6):394-403.
[19] Hu Z D, Feng X, Lin Q S, Chen H Y, Li Z Y, Yin F.Biochemical mechanism of chlorantraniliprole resistance in the diamondback moth, plutellaxylostellalinnaeus[J]. Journal of Integrative Agriculture, 2014, 11:2452-2459.
[20] 张珏锋, 何月平, 陈建明. 不同抗性水平二化螟幼虫中肠细菌群落多样性分析[J]. 昆虫学报, 2013, 56(9): 1075-1082.
[20] Zhang J F, He Y P, Chen J M.Diversity analysis of bacterial community in midguts of larvae of the striped stem borer,Chilosuppressalis(Lepidoptera:Crambidae), with different levels of resistance to insecticides ActaEntomologica Sinica, 2013, 56(9): 1075-1082. (in Chinese with English abstract)
[21] Gandhi GracyR, MalathiV M, JalaliS K,Thulasi A. Variation in larval gut bacteria between insecticide-resistant and -susceptible populations of Helicoverpaarmigera (Hübner)(Lepidoptera: Noctuidae)[J].Phytoparasitica, 2016, 44:477-490.
[22] Huang S, Zhang H.The impact of environmental heterogeneity and life stage on the hindgut microbiota ofHolotrichiaparallela larvae (Coleoptera: Scarabaeidae)[J/OL]. PloSONE, 2013, 8(2):e57169.
[23] Nyholm S V, Graf J.Knowing your friends: Invertebrate innate immunity fosters beneficial bacterial symbioses[J]. Nature Reviews Microbiology, 2012, 10(12): 815-827.
[24] Round JL, Mazmanian SK.The gut microbiota shapes intestinal immune responses during health and disease[J]. Nature Reviews Immunology, 2009, 9(5): 313-323.
[25] Robertson B K, Alexander M.Growth-linked and cometabolic biodegradation: Possible reason for occurrence or absence of accelerated pesticide biodegradation[J]. Pesticide Science,1994, 41(4):311-324.
[26] Sonia Rodríguez-Cruz M, Jones J E, Bending G D. Field-scale study of the variability in pesticide biodegradation with soil depth and its relationship with soil characteristics[J]. Soil Biology and Biochemistry. 2006, 38(9):2910-2918.
[27] Cheng D F, GuoZ J,Riegler M. Gut symbiont enhances insecticide resistance in a significant pest, the oriental fruit fly Bactrocera dorsalis (Hendel)[J].Microbiome, 2017, 5:13.
[28] 李冠楠. 氟胁迫对不同抗性家蚕肠道微生态环境的影响[D]. 重庆: 西南大学,2015.
[28] Li G N.Effect of fluoride exposure on the intestinal microecology in different-resistance of silkworm, Bombyxmori L. [D]. Chongqing: Southwest University, 2015. (in Chinese with English abstract)
[29] 刘金萍. 高CO2浓度对棉铃虫适合度及肠道微生物的直接影响[D]. 武汉: 华中农业大学, 2017.
[29] Liu J P.The direct effects of elevated CO2 on fitness and gut microbes of HelicoverpaArmigera[D]. Wuhan: Huazhong Agricultural University, 2017. (in Chinese with English abstract)
[30] Louca S, Parfrey L W, Doebeli M.Decoupling function and taxonomy in the global oceanmicrobiome[J]. Science, 2016, 353(6305): 1272-1277.
[31] Nelson M B, Martiny A C, Martiny J B H. Global biogeography of microbial nitrogen-cycling traits in soil[J]. Proceedingsof the National Academy of Sciences, 2016, 113(29): 8033-8040.
Outlines

/

Tel: 0571-63370278 E-mail: cjrs@263.net
Supported by Beijing Magtech Co., Ltd.