Please wait a minute...
Journal of Integrative Agriculture  2015, Vol. 14 Issue (7): 1367-1375    DOI: 10.1016/S2095-3119(14)60864-9
Plant Protection Advanced Online Publication | Current Issue | Archive | Adv Search |
Effects of intercropping vines with tobacco and root extracts of tobacco on grape phylloxera, Daktulosphaira vitifoliae Fitch
 WANG Zhong-yue , SU Jun-ping, LIU Wei-wei, GUO Yu-yuan
State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, P.R.China
Download:  PDF in ScienceDirect  
Export:  BibTeX | EndNote (RIS)      
摘要  The effects of grape-tobacco intercropping patterns on populations of grape phylloxera, Daktulosphaira vitifoliae Fitch, as well as on the growth and development of the infested vines were evaluated in the field and the impact of an aqueous tobacco root extract on grape phylloxera was evaluated using a laboratory bioassay. The aqueous tobacco root extract exhibited biological activity against this pest. The egg mortality, nymph mortality, development period, life span and female fecundity were significantly affected. In the field trial, grape phylloxera populations were clearly lower as compared to the monoculture pattern. However, the rates of newly developed roots and newly infested grape roots were significantly higher and lower, in intercropping patterns than in the vine monoculture, respectively. The grape phylloxera population number on the grape roots decreased each year, and the vine trees gradually renewed upon continuous intercropping with tobacco over three years. These results confirmed that intercropping grapes with tobacco can effectively control grape phylloxera in an infested vineyard. The results also indicated that additional crops could be intercropped with grapes and are effective against grape phylloxera, which should be explored as an integrated approach for controlling the pest.

Abstract  The effects of grape-tobacco intercropping patterns on populations of grape phylloxera, Daktulosphaira vitifoliae Fitch, as well as on the growth and development of the infested vines were evaluated in the field and the impact of an aqueous tobacco root extract on grape phylloxera was evaluated using a laboratory bioassay. The aqueous tobacco root extract exhibited biological activity against this pest. The egg mortality, nymph mortality, development period, life span and female fecundity were significantly affected. In the field trial, grape phylloxera populations were clearly lower as compared to the monoculture pattern. However, the rates of newly developed roots and newly infested grape roots were significantly higher and lower, in intercropping patterns than in the vine monoculture, respectively. The grape phylloxera population number on the grape roots decreased each year, and the vine trees gradually renewed upon continuous intercropping with tobacco over three years. These results confirmed that intercropping grapes with tobacco can effectively control grape phylloxera in an infested vineyard. The results also indicated that additional crops could be intercropped with grapes and are effective against grape phylloxera, which should be explored as an integrated approach for controlling the pest.
Keywords:  grape phylloxera       tobacco       intercropping       developmental duration       secondary metabolites       control method  
Received: 27 May 2014   Accepted:
Fund: 

This research was supported by the Project of National Technology System for Grape Industry (nycytx-30).

Corresponding Authors:  GUO Yu-yuan, Tel: +86-10-62894786, E-mail: yuyuanguo@hotmail.com     E-mail:  yuyuanguo@hotmail.com
About author:  WANG Zhong-yue, Tel: +86-10-62811655, E-mail: wangzhy0301@sina.com;

Cite this article: 

WANG Zhong-yue , SU Jun-ping, LIU Wei-wei, GUO Yu-yuan. 2015. Effects of intercropping vines with tobacco and root extracts of tobacco on grape phylloxera, Daktulosphaira vitifoliae Fitch. Journal of Integrative Agriculture, 14(7): 1367-1375.

de Benedictis J A, Granett J. 1992. Variability of responses ofgrape phylloxera (Homoptera: Phylloxeridae) to bioassaysthat discriminate between California biotypes. Journal ofEconomic Entomology, 85, 1527-1534

Benheim D, Rochfort S, Robertson E, Potter I D, Powell K S2012. Grape phylloxera (Daktulosphaira vitifoliae)-a reviewof potential detection and alternative management options.Annals of Applied Biology, 161, 91-115

Bickerton M W. 2011. Intercropping for conservation biologicalcontrol of European corn borer Ostrinia nubilalis Hübner(Lepidoptera: Crambidae) in bell peppers. Ph D thesis,Rutgers, the State University of New Jersey, America. pp.1-20

Buchanan G A, Godden G D. 1989. Insecticide treatmentsfor control of grape phylloxera (Daktulosphaira vitifolii)infesting grapevines in Victoria, Australia. Animal ProductionScience, 29, 267-271

Chitkowski R L, Fisher J R 2005. Effect of soil type on theestablishment of grape phylloxera colonies in the PacificNorthwest. American Journal of Enology and Viticulture,56, 207-211

Donald W L 2000. Grape phylloxera [Daktulosphaira vitifoliae(Homoptera: Phylloxeridae)] related root damage inorganically and conventionally managed vineyards. Ph Dthesis, University of California, Davis, America. pp. 12-33

Dong D D, Liu C H, Fan X C, Sun H S, Zhang G H, Wang Z Y 2010. Qualitative analysis on pest risk of grape phylloxera.Sio-Overseas Grapevine and Wine, 9, 75-78 (in Chinese)

Dunstone R J, Corrie A M, Powell K S. 2003. Effect of sodiumhypochlorite on first instar phylloxera (Daktulosphairavitifoliae Fitch) mortality. Australian Journal of Grape andWine Research, 9, 107-109

 Fukai S, Trenbath B R. 1993. Processes determining intercropproductivity and yields of component crops. Field CropsResearch, 34, 247-271

Granett J, Timper P, Lider L A. 1985. Grape phylloxera(Daktulosphaira vitifoliae) (Homoptera: Phylloxeridae)biotypes in California. Journal of Economic Entomology,78, 1463-1467

Granett J, Timper P, White J. 1986. Grape phylloxera,Daktulosphaira vitifoliae (Homoptera: Phylloxeridae),susceptibility to Carbofuran: stage and clonal variability.Journal of Economic Entomology, 79, 1096-1099

Granett J, Walker M A, Kocsis L, Omer A D. 2001. Biologyand management of grape phylloxera. Annual Review ofEntomology, 46, 387-412

Guo Q. 2011. Using the intercrop to control and real-timePCR detection of grape phylloxera. MSc thesis, ChineseAcademy of Agricultural Sciences, Beijing. pp. 33. (inChinese)

Herbert K, Powell K, Mckay A, Hartley D, Ophel-Keller K,Schiffer M, Hoffmann A. 2008. Developing and testinga diagnostic probe for grape phylloxera applicable tosoil samples. Journal of Economic Entomology, 101,1934-1943

Hummel J D. 2010. Insect and agronomic responses in canolaand wheat intercrops. Ph D thesis, University of Alberta,Canada. pp. 4-9

Javaid A, Anjum T. 2006. Control of Parthenium hysterophorusL. by aqueous extracts of allelopathic grasses. PakistanJournal of Botany, 38, 139-145

Kamiloglu O. 2011. Influence of some cultural practices onyield, fruit quality and individual anthocyanins of table grapecv. ‘Horoz Karasi’. Journal of Animal and Plant Sciences,21, 240-245

Kellow A V, Sedgley M, van Heeswijck R. 2004. Interactionbetween Vitis vinifera and grape phylloxera: changes inroot tissue during nodosity formation. Annals of Botany,93, 581-590

King P D, Billing G. 1985. Variations in the galling reaction ofgrapevines: evidence of different phylloxera biotypes andclonal reaction to phylloxera. Vitis, 24, 32-42

de Klerk C A. 1974. Biology of Phylloxera vitifoliae (Fitch)(Homoptera: Phylloxeridae) in South Africa. Phytophylactica,6, 109-117

Kocsis L, Granett J, Walker M A. 2002. Performance ofHungarian phylloxera strains on Vitis riparia rootstocks.Journal of Applied Entomology, 126, 567-571

Lü J. 2008. Biology, genetic difference of different populationand management of grape phylloxera in China. MSc thesis,Agricultural University of Hunan, Hunan. pp. 13-14 (inChinese)

Ma X M, Xi L, Xiong S P, Yang J. 2006. Dynamic changes ofmorphological parameters of tobacco root in field. ChineseJournal of Applied Ecology, 17, 373-376 (in Chinese)

Miao Y, Gao X, Jiang J Q, Wang Y. 2013. Effects ofintercropping of cabbage and garlic on major pests andarthropod community in spring cabbage fields. Journalof South China Agricultural University, 34, 352-355 (inChinese)

Natarajan N, Cork A, Boomathi N, Pandi R, Velavan S,Dhakshnamoorthy G. 2006. Cold aqueous extracts ofAfrican marigold, Tagetes erecta for control tomato rootknot nematode, Meloidogyne incognita. Crop Protection,25, 1210-1213

Omer A D, Granett J, Downie, D A, Walker M A. 1997.Population dynamics of grape phylloxera in Californiavineyards. Vitis, 36, 199-205

Ouyang G C, Yang,Y P, Liu D G, Xiong J J, Huang M D. 2006.Ecological control effects of Litchi chinensis-Desmodiumintortum complex plant ecosystem on litchi pests. ChineseJournal of Applied Ecology, 17, 151-154 (in Chinese)

Porten M, Huber, L. 2003. An assessment method for thequantification of Daktulosphaira vitifoliae (Fitch) (Hem.,Phylloxeridae) populations in the field. Journal of AppliedEntomology, 127, 157-162

Powell K S, Cooper P D, Forneck A. 2013. The biology,physiology and host-plant interactions of grape phylloxeraDaktulosphaira vitifoliae. Behaviour and Physiology of RootHerbivores, 45, 159-218

Sisodia S, Siddiqui M B. 2010. Allelopathic effect by aqueousextracts of different parts of Croton bonplandianum Baill.on some crop and weed plants. Journal of AgriculturalExtension and Rural Development, 2, 22-28

Stevenson A B. 1967. Leucopis simplex (Diptera:Chamaemyiidae) and other species occurring in galls ofPhylloxera vitifoliae (Homoptera: Phylloxeridae) in Ontario.The Canadian Entomologist, 99, 815-820

Wang Z Y. 2010. Grape Phylloxera (Daktulosphaira vitifoliaeFitch). China Agriculture Press, Beijing. p. 2. (in Chinese)

Williams R N, Shambaugh G F. 1988. Grape phylloxera(Homoptera:Phylloxeridae) biotypes confirmed byelectrophoresis and host susceptibility. Annals of theEntomological Society of America, 81, 1-5

Wu L, Wang T, Liu Z, Shu Y J, Wang M Z, Yang F, Wang LH, Jin Y R, Tu T. 2010. Research advance on the effectsof eco-climatic factors on tobacco quality. Journal of AnhuiAgricultural Science, 38, 11310-11312 (in Chinese)

Xi L, Ji Y L, Wang Q, Zhang L L, Ma X M. 2010. Threedimensionalvisual simulation of tobacco root growth.Microelectronics and Computer, 27, 106-110 (in Chinese)

Xue G H. 2007. Extraction of nicotine and application onbiological pesticide. MSc thesis, University of Qingdao,Shandong. pp. 2-23 (in Chinese)

Yang X Y, Liu G S, Wu R J, Xia L, Xing X J, Zhang J H, DuW M, Xie L W. 2007. Effects of shading at different growthstages on the growth, development and quality of tobacco.Chinese Journal of Ecology, 26, 1014-1020

 (in Chinese)

Yu J Q, Ye S F, Zhang M F, Hu W H. 2003. Effects of rootexudates and aqueous root extracts of cucumber (Cucumissativus) and allelochemicals, on photosynthesis andantioxidant enzymes in cucumber. Biochemical Systematics and Ecology, 31, 129-139

Zhang H G, Liu C H, Wang Z Y, Zhong X H, Fan X C, Dong DD. 2009. Identification of the resistance to grape phylloxeraof Chinese wild grape species. Journal of Fruit Science, 26,306-310 (in Chinese)

Zhang H Y, Chen B, Li Z Y, Yang J C, Yang J, Shan H F,Yuan Y W, Zheng G L. 2011. Effect of sugarcane plantsintercropped with maize on population of Ceratovacunalanigera Zehntner and Coccinellidae. Southwest ChinaJournal of Agricultural Sciences, 24, 124-127 (in Chinese)

Zhao Z J, Zhang C Y, Zhang Z M, Ma Z R, Qiu J X, Zhang GZ. 2000. Inhibitory effects of soybean root extracts and rootexudates on seed germination and emergence. JiangsuAgricultural Sciences, 29-32 (in Chinese)

Zhou H B. 2012. Use of intercropping and infochemicalreleasers to control aphids in wheat. Ph D thesis, Universityof Liege, Belgium. p. 6.Zhou Q Y, Wang Y R, Sun S H. 2011. Distribution characteristicand growing dynamic of grape vine roots under alternatepartial root zone drip irrigation. Transactions of the ChineseSociety of Agricultural Machinery, 42, 59-63 (in Chinese)
[1] LIANG Hai, FU Li-bo, CHEN Hua, ZHOU Guo-peng, GAO Song-juan, CAO Wei-dong. Green manuring facilitates bacterial community dispersal across different compartments of subsequent tobacco[J]. >Journal of Integrative Agriculture, 2023, 22(4): 1199-1215.
[2] LIU Zhu, NAN Zhen-wu, LIN Song-ming, YU Hai-qiu, XIE Li-yong, MENG Wei-wei, ZHANG Zheng, WAN Shu-bo. Millet/peanut intercropping at a moderate N rate increases crop productivity and N use efficiency, as well as economic benefits, under rain-fed conditions[J]. >Journal of Integrative Agriculture, 2023, 22(3): 738-751.
[3] HUI Fang, XIE Zi-wen, LI Hai-gang, GUO Yan, LI Bao-guo, LIU Yun-ling, MA Yun-tao. Image-based root phenotyping for field-grown crops: An example under maize/soybean intercropping[J]. >Journal of Integrative Agriculture, 2022, 21(6): 1606-1619.
[4] ZHENG Ben-chuan, ZHOU Ying, CHEN Ping, ZHANG Xiao-na, DU Qing, YANG Huan, WANG Xiao-chun, YANG Feng, XIAO Te, LI Long, YANG Wen-yu, YONG Tai-wen. Maizelegume intercropping promote N uptake through changing the root spatial distribution, legume nodulation capacity, and soil N availability[J]. >Journal of Integrative Agriculture, 2022, 21(6): 1755-1771.
[5] LIU Rui, ZHOU Guo-peng, CHANG Dan-na, GAO Song-juan, HAN Mei, ZHANG Jiu-dong, SUN Xiao-feng, CAO Wei-dong. Transfer characteristics of nitrogen fixed by leguminous green manure crops when intercropped with maize in northwestern China[J]. >Journal of Integrative Agriculture, 2022, 21(4): 1177-1187.
[6] GUO Lin-hui, GE Da-peng, REN Yuan, DONG Jian-mei, ZHAO Xue-qing, LIU Xue-qing, YUAN Zhao-he. The comparative analysis and identification of secondary metabolites between Tibet wild and cultivated pomegranates (Punica granatum L.) in China[J]. >Journal of Integrative Agriculture, 2022, 21(3): 736-750.
[7] CHEN Juan-ni, WU Lin-tong, SONG Kun, ZHU Yun-song, DING Wei. Nonphytotoxic copper oxide nanoparticles are powerful “nanoweapons” that trigger resistance in tobacco against the soil-borne fungal pathogen Phytophthora nicotianae[J]. >Journal of Integrative Agriculture, 2022, 21(11): 3245-3262.
[8] LI Yan-yan, GUO Li-na, LIANG Cheng-zhen, MENG Zhi-gang, Syed Tahira, GUO San-dui, ZHANG Rui. Overexpression of Brassica napus cytosolic fructose-1,6-bisphosphatase and sedoheptulose-1,7-bisphosphatase genes significantly enhanced tobacco growth and biomass[J]. >Journal of Integrative Agriculture, 2022, 21(1): 49-59.
[9] SHAO Ze-qiang, ZHENG Cong-cong, Johannes A. POSTMA, LU Wen-long, GAO Qiang, GAO Ying-zhi, ZHANG Jin-jing. Nitrogen acquisition, fixation and transfer in maize/alfalfa intercrops are increased through root contact and morphological responses to interspecies competition[J]. >Journal of Integrative Agriculture, 2021, 20(8): 2240-2254.
[10] HE Li-mei, WANG Teng-li, CHEN Yu-chao, GE Shi-shuai, Kris A. G. WYCKHUYS, WU Kong-ming. Larval diet affects development and reproduction of East Asian strain of the fall armyworm, Spodoptera frugiperda[J]. >Journal of Integrative Agriculture, 2021, 20(3): 736-744.
[11] HE Li-mei, WU Qiu-lin, GAO Xi-wu, WU Kong-ming . Population life tables for the invasive fall armyworm, Spodoptera frugiperda fed on major oil crops planted in China[J]. >Journal of Integrative Agriculture, 2021, 20(3): 745-754.
[12] CHI Bao-jie, ZHANG Dong-mei, DONG He-zhong. Control of cotton pests and diseases by intercropping: A review[J]. >Journal of Integrative Agriculture, 2021, 20(12): 3089-3100.
[13] Dilip Kumar BASTIA, Subrat Kumar BEHERA, Manas Ranjan PANDA . Impacts of soil fertility management on productivity and economics of rice and fodder intercropping systems under rainfed conditions in Odisha, India[J]. >Journal of Integrative Agriculture, 2021, 20(12): 3114-3126.
[14] XIAO Jing-xiu, ZHU Ying-an, BAI Wen-lian, LIU Zhen-yang, TANG Li, ZHENG Yi. Yield performance and optimal nitrogen and phosphorus application rates in wheat and faba bean intercropping[J]. >Journal of Integrative Agriculture, 2021, 20(11): 3012-3025.
[15] David GRANADA, Lorena LóPEZ-LUJAN, Sara RAMíREZ-RESTREPO, Juan MORALES, Carlos PELáEZ-JARAMILLO, Galdino ANDRADE, Juan Carlos BEDOYA-PéREZ. Bacterial extracts and bioformulates as a promising control of fruit body rot and root rot in avocado cv. Hass[J]. >Journal of Integrative Agriculture, 2020, 19(3): 748-758.
No Suggested Reading articles found!