|本期目录/Table of Contents|

[1]曹凡,王莹,郭聪,等.美国薄壳山核桃细菌性叶枯病研究进展[J].江苏农业科学,2022,50(12):18-22.
 Cao Fan,et al.Research progress of American pecan bacterial leaf blight[J].Jiangsu Agricultural Sciences,2022,50(12):18-22.
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美国薄壳山核桃细菌性叶枯病研究进展(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第50卷
期数:
2022年第12期
页码:
18-22
栏目:
专论与综述
出版日期:
2022-06-20

文章信息/Info

Title:
Research progress of American pecan bacterial leaf blight
作者:
曹凡王莹郭聪陈燕李玉娟
江苏沿江地区农业科学研究所,江苏南通 226541
Author(s):
Cao Fanet al
关键词:
美国山核桃木质部难养菌酶联免疫法荧光定量PCR细菌性叶枯病
Keywords:
-
分类号:
S436.64
DOI:
-
文献标志码:
A
摘要:
薄壳山核桃是高档干果树种,不仅经济效益高,也是优良的行道树和庭荫树,适于河流沿岸、湖泊周围及平原地区“四旁”绿化,具有极大的应用研究价值。薄壳山核桃细菌性叶枯病是由木质部难养菌引起的,可导致病株严重落叶、坚果质量和果仁质量下降,造成巨大的产量损失。本文从薄壳山核桃细菌性叶枯病的病原概述、病症表现及检测手段等方面进行综述,以期对该病害有更全面的了解,并且针对今后检测技术、防治措施及抗病品种培育等研究方向提出合理化建议,旨在为我国薄壳山核桃成熟果园病害防治研究提供参考。
Abstract:
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参考文献/References:

[1]彭方仁,李永荣,郝明灼,等. 我国薄壳山核桃生产现状与产业化发展策略[J]. 林业科技开发,2012,26(4):1-4.
[2]彭方仁. 美国薄壳山核桃产业发展现状及对我国的启示[J]. 林业科技开发,2014,28(6):1-5.
[3]Wood B W. Production unit trends and price characteristics within the United States pecan industry[J]. HortTechnology,2001,11(1):110-118.
[4]Fabrizio G C,van der Watt E,Gesine M C. Propagation of pecan (Carya illinoensis):a review[J]. African Journal of Biotechnology,2018,17(18):586-605.
[5]Wakeling L T,Mason R L,DArcy B R,et al. Composition of pecan cultivars Wichita and western schley[Carya illinoinensis (Wangenh.)K.Koch]grown in Australia[J]. Journal of Agricultural and Food Chemistry,2001,49(3):1277-1281.
[6]Lazarotto M,Milanesi P M,Muniz M F B,et al. Morphological and molecular characterization of Fusarium spp pathogenic to pecan tree in Brazil[J]. Genetics and Molecular Research:GMR,2014,13(4):9390-9402.
[7]Zhang R,Peng F R,Li Y R. Pecan production in China[J]. Scientia Horticulturae,2015,197:719-727.
[8]Hilton A E,Jo Y K,Cervantes K,et al. First report of pecan bacterial leaf scorch caused by Xylella fastidiosa in pecan (Carya illinoinensis) in Arizona,New Mexico,California,and Texas[J]. Plant Disease,2017,101(11):1949.
[9]Sanderlin R S,Heyderich-Alger K I. Evidence that Xylella fastidiosa can cause leaf scorch disease of pecan[J]. Plant Disease,2000,84(12):1282-1286.
[10]Sanderlin R S,Heyderich-Alger K I. Effects of pecan bacterial leaf scorch on growth and yield components of cultivar cape fear[J]. Plant Disease,2003,87(3):259-262.
[11]Grauke L J,Wood B W,Harris M K. Crop vulnerability:Carya[J]. HortScience,2016,51(6):653-663.
[12]Bock C H,Oliver J E,Chen C X,et al. Pecan bacterial leaf scorch,caused by Xylella fastidiosa,is endemic in Georgia pecan orchards[J]. Plant Health Progress,2018,19(4):284-287.
[13]赵宇. 澳大利亚修订木质部难养细菌寄主苗木进口条件[J]. 植物检疫,2010,24(1):63-64.
[14]赵友福,葛起新,张志雍. 木质部难养菌及其病害[J]. 植物检疫,1989,3(2):83-87.
[15]Sanderlin R S. Evidence that Xylella fastidiosa is associated with pecan fungal leaf scorch[J]. Plant Disease,1998,82(2):264.
[16]Hilton A,Wang X W,Zhang M L,et al. Improved methods for detecting Xylella fastidiosa in pecan and related Carya species[J]. European Journal of Plant Pathology,2020,157(4):899-918.
[17]Costa H S,Raetz E,Pinckard T R,et al. Plant hosts of Xylella fastidiosa in and near southern California vineyards[J]. Plant Disease,2004,88(11):1255-1261.
[18]Huang Q. Natural occurrence of Xylella fastidiosa in a commercial nursery in Maryland[J]. Canadian Journal of Plant Pathology,2007,29(3):299-303.
[19]关巍. 木质部难养菌(Xylella fastidiosa)基因组分析及特异性分子检测[D]. 北京:中国农业科学院,2015.
[20]Alvarez A M. Integrated approaches for detection of plant pathogenic bacteria and diagnosis of bacterial diseases[J]. Annual Review of Phytopathology,2004,42(1):339-366.
[21]Chen J C,Civerolo E L,Jarret R L,et al. Genetic discovery in Xylella fastidiosa through sequence analysis of selected randomly amplified polymorphic DNAs[J]. Current Microbiology,2005,50(2):78-83.
[22]Chen J,Groves R,Civerolo E L,et al. Two Xylella fastidiosa genotypes associated with almond leaf scorch disease on the same location in California[J]. Phytopathology,2005,95(6):708-714.
[23]Hernandez-Martinez R,Pinckard T R,Costa H S,et al. Discovery and characterization of Xylella fastidiosa strains in southern California causing mulberry leaf scorch[J]. Plant Disease,2006,90(9):1143-1149.
[24]Olson B R,Dominiak J,von Broembsen S,et al. First report of Xylella fastidiosa in Oklahoma[J]. Plant Disease,2006,90(1):108.
[25]Rodrigues J L M,Silva-Stenico M E,Gomes J E,et al. Detection and diversity assessment of Xylella fastidiosa in field-collected plant and insect samples by using 16S rRNA and gyrB sequences[J]. Applied and Environmental Microbiology,2003,69(7):4249-4255.
[26]Francis M,Lin H,Rosa J C L,et al. Genome-based PCR primers for specific and sensitive detection and quantificationof Xylella fastidiosa[J]. European Journal of Plant Pathology,2006,115(2):203-213.
[27]Harper S J,Ward L I,Clover G R G.Development of LAMP and real-time PCR methods for the rapid detection of Xylella fastidiosa for quarantine and field applications[J]. Phytopathology,2010,100(12):1282-1288.
[28]Minsavage G V. Development of a polymerase chain reaction protocol for detection of Xylella fastidiosa in plant tissue[J]. Phytopathology,1994,84(5):456.
[29]Pooler M R,Hartung J S. Specific PCR detection and identification of Xylella fastidiosa strains causing citrus variegated chlorosis[J]. Current Microbiology,1995,31(6):377-381.[30]Schaad N W,Opgenorth D,Gaush P.Real-time polymerase chain reaction for one-hour on-site diagnosis of pierces disease of grape in early season asymptomatic vines[J]. Phytopathology,2002,92(7):721-728.
[31]郭忠仁,莫正海. 薄壳山核桃高效栽培技术[M]. 北京:北京出版社,2021.
[32]Sanderlin R S,Melanson R A. Reduction of Xylella fastidiosa transmission through pecan scion wood by hot-water treatment[J]. Plant Disease,2008,92(7):1124-1126.
[33]Melanson R A,Sanderlin R S. Hot-water treatment of pecan scions as a means of phytosanitation to reduce the potential introduction of Xylella fastidiosa,the causal agent of pecan bacterial leaf scorch,into orchards and new geographic regions[J]. Acta Horticulturae,2015(1070):201-209.
[34]Sanderlin R S,Melanson R A. Insect transmission of Xylella fastidiosa to pecan[J]. Plant Disease,2010,94(4):465-470.
[35]Cao F,Wei Y C,Wang X W,et al. A study of the evaluation of the pecan drought resistance of grafted ‘Pawnee’ trees from different seedling rootstocks[J]. HortScience,2019,54(12):2139-2145.
[36]Ollat N,Bordenave L,Tandonnet J P,et al. Grapevine rootstocks:origins and perspectives[J]. Acta Horticulturae,2016(1136):11-22.

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备注/Memo

备注/Memo:
收稿日期:2020-11-05
基金项目:江苏省农业科技自主创新资金[编号: CX(19)3121]。
作者简介:曹凡(1990—),男,江苏南通人,博士,主要从事经济林育种与栽培研究。E-mail: caofan90@126.com。
通信作者:李玉娟,副研究员,主要从事观赏苗木育种与栽培技术研究。E-mail: lyglyj90@sohu.edu.cn。
更新日期/Last Update: 2022-06-20