综述

应用胶饵防治德国小蠊的现状和研究进展

展开
  • 1 广西壮族自治区疾病预防控制中心媒介防治科, 南宁 530028;
    2 辽宁省疾病预防控制中心
冯向阳, 男, 副主任技师, 主要从事媒介生物防治研究工作。

收稿日期: 2013-12-04

  网络出版日期: 2014-06-20

Current status and research progress in gel bait controlof Blattella germanica in China

Expand
  • 1 Guangxi Center for Disease Control and Prevention, Nanning 530028, Guangxi Zhuang Autonomous Region, China;
    2 Liaoning Center for Disease Control and Prevention

Received date: 2013-12-04

  Online published: 2014-06-20

摘要

德国小蠊是城市中最难防治的卫生害虫之一。我国已大量应用胶饵现场防治德国小蠊。该文从目前胶饵的主要成分、使用剂量和方法、现场杀灭效果、适口性、连锁杀灭作用等方面对国内应用胶饵防治德国小蠊的现状和研究进展进行综述, 探讨更科学地使用胶饵技术防治德国小蠊。

关键词: 德国小蠊; 胶饵; 防治

本文引用格式

冯向阳, 费守华 . 应用胶饵防治德国小蠊的现状和研究进展[J]. 中国媒介生物学及控制杂志, 2014 , 25(3) : 277 -280 . DOI: 10.11853/j.issn.1003.4692.2014.03.023

Abstract

Blattella germanica is one of the prevailing pests that are most difficult to manage in urban China. Gel bait has been extensively used in the control of B. germanica. This study reviews the current situation and research development of gel bait application in controlling B. germanica, including its main active ingredients, dosage, protocol, on?site killing effect, palatability, and chain killing efficacy, in order to find a more scientific and practical way in gel bait?based control of B. germanica.

参考文献

[1] Himmel ME, Ding SY, Johnson DK, et al. Biomass recalcitrance: engineering plants and enzymes for biofuels production[J]. Science, 2007, 315(5813):804-807.
[2] 莫建初. 黑翅土白蚁纤维素酶开发利用前景[C]. 城市害虫综合治理进展. 全国第七届城市昆虫学术研讨会论文集(资源昆虫), 诸暨, 2005. 杭州:浙江大学出版社, 2005:161-165.
[3] Prins RA, Kreulen DA. Comparative aspects of plant cell wall degradation in insects[J]. Animal Feed Sci Technol, 1991, 32(1/3):101-118.
[4] 龙海涛. 白蚁纤维素酶研究进展[J]. 现代农业科技, 2012(21):235-236.
[5] Watanabe H, Noda H, Tokuda G, et al. A cellulase gene of termite origin[J]. Nature, 1998, 394(6691):330-331.
[6] Tokuda G, Lo N, Watanabe H. Metazoan cellulase genes from termites: intron/exon structures and sites of expression[J]. Biochim Biophys Acta, 1999, 1447(2/3):146-159.
[7] Tokuda G, Miyagi M, Makiya H, et al. Digestive β?gluosidases from the wood?feeding higher termite, Nastitermes takasagoensis: intestinal distribution, molecular characterization, and alteration in sites of expression[J]. Insect Biochem Mol Biol, 2009, 39(12): 931-937.
[8] Zhou X, Wheeler MM, Oi FM, et al. RNA interference in the termite Reticulitermes flavipes through ingestion of double?stranded RNA[J]. Insect Biochem Mol Biol, 2008, 38(8):805-815.
[9] Mika N, Zorn H, Rühl M. Insect?Derived Enzymes: A Treasure for Industrial Biotechnology and Food Biotechnology[J/OL]. Adv Biochem Eng Biotechnol, 2013, 136:1-17.[2013-07-25]. http://www.ncbi.nlm.nih.gov/pubmed/23881056.
[10] Watanabe H, Tokuda G. Cellulolytic systems in insects[J]. Annu Rev Entomol, 2010(55):609-632.
[11] Zhang DH, Lax AR, Henrissat B, et al. Carbohydrate?active enzymes revealed in Coptotermes formosanus (Isoptera: Rhinotermitidae) transcriptome[J]. Insect Mol Biol, 2012, 21(2): 235-245.
[12] Yamada A, Inoue T, Wiwatwitaya D, et al. Carbon mineralization by termites in tropical forests, with emphasis on fungus combs[J]. Ecol Res, 2005, 20(4):453-460.
[13] Yuki M, Moriya S, Inoue T, et al. Transcriptome analysis of the digestive organs of Hodotermopsis sjostedti, a lower termite that hosts mutualistic microorganisms in its hindgut[J]. Zool Sci, 2008, 25(4):401-406.
[14] Tokuda G, Lo N, Watanabe H, et al. Major alteration of the expression site of endogenous cellulases in members of an apical termite lineage[J]. Mol Ecol, 2004, 13(10):3219-3228.
[15] Tokuda G, Watanabe H, Hojo M, et al. Cellulolytic environment in the midgut of the wood?feeding higher termite Nasutitermes takasagoensis[J]. J Insect Physiol, 2012, 58(1):147-154.
[16] Wu Y, Chi S, Yun C, et al. Molecular cloning and characterization of an endogenous digestive β?glucosidase from the midgut of the fungus?growing termite Macrotermes barneyi[J]. Insect Mol Biol, 2012, 21(6):604-614.
[17] Ni JF, Tokuda G. Lignocellulose?degrading enzymes from termites and their symbiotic microbiota[J]. Biotechnol Advances, 2013, 31(6):838-850.
[18] Ni JF, Takehara M, Watanabe H. Heterologous overexpression of a mutant termite cellulase gene in Escherichia coli by DNA shuffling of four orthologous parental cDNAs[J]. Biosci Biotechnol Biochem, 2005, 69(9):1711-1720.
[19] Zhang DH, Lax AR, Raina AK, et al. Differential cellulolytic activity of native?form and C?terminal tagged?form cellulase derived from Coptotermes formosanus in E. coli[J]. Insect Biochem Mol Biol, 2009, 39(8):516-522.
[20] Zhang DH, Lax AR, Bland JM, et al. Characterization of a new endogenous endo-β-1, 4-glucanase of Formosan subterranean termite (Coptotermes formosanus)[J]. Insect Biochem Mol Biol, 2011, 41(4):211-218.
[21] 刘慧琳, 曹以诚, 杨磊, 等. 白蚁纤维素酶结构域重组研究[J]. 广东农业科学, 2011, 38(9):152-154.
[22] Zhou X, Kovaleva ES, Scharf DW, et al. Production and characterization of a recombinant β-1, 4-endoglucanase (glycohydrolase family 9) from the termite Reticulitermes flavipes[J]. Arch Insect Biochem Physiol, 2010, 74(3):147-162.
[23] 陈春润. 黑翅土白蚁体内纤维素酶编码基因的克隆与表达[D]. 杭州:浙江大学, 2010.
[24] Hirayama K, Watanabe H, Tokuda G, et al. Purification and characterization of termite endogenous β-1, 4-endoglucanases produced in Aspergillus oryzae[J]. Biosci Biotechnol Biochem, 2010, 74(8):1680-1686.
[25] Uchima CA, Arioka M. Expression and one?step purification of recombinant proteins using an alternative episomal vector for the expression of N?tagged heterologous proteins in Pichia pastoris[J]. Biosci Biotechnol Biochem, 2012, 76(2):368-371.
[26] 秦国梅, 张建珍, 韦宇拓, 等. 白蚁内切-β-1, 4-葡聚糖酶基因的克隆、表达、纯化及酶学性质的研究[J]. 工业微生物, 2009, 39(5):30-37.
[27] Tokuda G, Saito H, Watanabe H. A digestive β?glucosidase from the salivary glands of the termite, Neotermes koshunensis (Shiraki): distribution, characterization and isolation of its precursor cDNA by 5′- and 3′-RACE amplifications with degenerate primers[J]. Insect Biochem Mol Biol, 2002, 32(12):1681-1689.
[28] Ni JF, Tokuda G, Takehara M, et al. Heterologous expression and enzymatic characterization of beta?glucosidase from the drywood?eating termite, Neoterme koshunensis[J]. Appl Entomol Zool, 2007, 42(3):457-463.
[29] Zhang DH, Allen AB, Lax AR. Functional analyses of the digestiveβ?glucosidase of Formosan subterranean termites (Coptotermes formosanus)[J]. J Insect Physiol, 2012, 58(1):205-210.
[30] Uchima CA, Tokuda G, Watanabe H, et al. Heterologous expression and characterization of a glucose?stimulated β?glucosidase from the termite Neotermes koshunensisin Aspergillus oryzae[J]. Appl Microbiol Biotechnol, 2011, 89(6):1761-1771.
[31] Scharf ME, Kovaleva ES, Jadhao S, et al. Functional and translational analyses of a beta?glucosidase gene (glycosyl hydrolase family 1) isolated from the gut of the lower termite Reticulitermes flavipes[J]. Insect Biochem Mol Biol, 2010, 40(8): 611-620.
[32] Scharf ME, Karl ZJ, Sethi A, et al. Multiple levels of synergistic collaboration in termite lignocellulose digestion[J]. PLoS One, 2011, 6(7):e21709.
[33] Uchima CA, Tokuda G, Watanabe H, et al. Heterologous expression in Pichia pastoris and characterization of an endogenous thermostable and high glucose?tolerant β?glucosidase from the termite Nasutitermes takasagoensis[J]. Appl Environ Microbiol, 2012, 78(12):4288-4293.

文章导航

/