Discrepancies in Serology-Based and Nucleic Acid-Based Detection and Quantitation of Tomato Spotted Wilt Orthotospovirus in Leaf and Root Tissues from Symptomatic and Asymptomatic Peanut Plants
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M. Abney | R. Srinivasan | S. Bag | Pin-Chu Lai | Yi-Ju Chen
[1] D. Gorbet,et al. Registration of ‘TUFRunner ‘511’ ’ Peanut , 2017 .
[2] W. D. Branch. Registration of ‘Georgia‐16HO’ Peanut , 2017 .
[3] W. Turechek,et al. Development and Evaluation of ELISA and qRT-PCR for Identification of Squash vein yellowing virus in Cucurbits. , 2017, Plant disease.
[4] E. Borer,et al. Methodological Guidelines for Accurate Detection of Viruses in Wild Plant Species , 2016, Applied and Environmental Microbiology.
[5] D. Schneweis,et al. Thrips transmission of tospoviruses. , 2015, Current opinion in virology.
[6] M. Abney,et al. Effects of Thrips Density, Mode of Inoculation, and Plant Age on Tomato Spotted Wilt Virus Transmission in Peanut Plants , 2015, Environmental Entomology.
[7] Neil Boonham,et al. Methods in virus diagnostics: from ELISA to next generation sequencing. , 2014, Virus research.
[8] E. Martinoia,et al. Root exudates: the hidden part of plant defense. , 2014, Trends in plant science.
[9] A. Culbreath,et al. Host plant resistance against tomato spotted wilt virus in peanut (Arachis hypogaea) and its impact on susceptibility to the virus, virus population genetics, and vector feeding behavior and survival. , 2014, Phytopathology.
[10] A. Culbreath,et al. Effects of seeding rate and cultivar on tomato spotted wilt of peanut , 2013 .
[11] A. Culbreath,et al. Second Generation Peanut Genotypes Resistant to Thrips-Transmitted Tomato Spotted Wilt Virus Exhibit Tolerance Rather Than True Resistance and Differentially Affect Thrips Fitness , 2013, Journal of economic entomology.
[12] A. Culbreath,et al. Epidemiology of spotted wilt disease of peanut caused by Tomato spotted wilt virus in the southeastern U.S. , 2011, Virus research.
[13] Sakariyawo Olalekan,et al. Crop Production I , 2011 .
[14] S. Mahmoud. Detection of cucumber mosaic virus in some ornamental plants and elimination of nonspecific ELISA reactions , 2011 .
[15] A. R. van Schadewijk,et al. Validation of Plant Virus Detection , 2011 .
[16] S. Diffie,et al. Thrips Vectors of Tospoviruses , 2011 .
[17] J. Ferrell,et al. Diagnosing Herbicide Injury in Peanut , 2010, EDIS.
[18] R. Kemerait,et al. Interactive Effects of Planting Date and Cultivar on Tomato Spotted Wilt of Peanut. , 2010, Plant disease.
[19] Y. Zhu,et al. RT-PCR and quantitative real-time RT-PCR detection of Sugarcane Yellow Leaf Virus (SCYLV) in symptomatic and asymptomatic plants of Hawaiian sugarcane cultivars and the correlation of SCYLV titre to yield , 2010, European Journal of Plant Pathology.
[20] D. Rowland,et al. Comparison of ELISA and RT-PCR assays for the detection of Tomato spotted wilt virus in peanut , 2009 .
[21] D. K. Willis,et al. Variation in Tomato spotted wilt virus titer in Frankliniella occidentalis and its association with frequency of transmission. , 2009, Phytopathology.
[22] A. Culbreath,et al. Response of New Field-Resistant Peanut Cultivars to Twin-Row Pattern or In-Furrow Applications of Phorate for Management of Spotted Wilt. , 2008, Plant disease.
[23] R. Knutsson,et al. Strategies for overcoming PCR inhibition. , 2008, CSH protocols.
[24] W. D. Branch. Registration of ‘Georgia‐06G’ Peanut , 2007 .
[25] M. Wang,et al. Preliminary Screening of Peanut Germplasm in the US Collection for TSWV Resistance and High Flavonoid Content , 2007 .
[26] R. Kemerait,et al. Integrated Disease Management of Leaf Spot and Spotted Wilt of Peanut. , 2006, Plant disease.
[27] D. Gorbet,et al. Utilizing immunoassays to determine systemic tomato spotted wilt virus infection for elucidating field resistance in peanut , 2006 .
[28] J. Dorner,et al. Tomato spotted wilt virus in peanut tissue types and physiological effects related to disease incidence and severity , 2005 .
[29] Mila Pearce,et al. 2004 Georgia plant disease loss estimates , 2005 .
[30] P. Redolfi. Occurrence of pathogenesis-related (b) and similar proteins in different plant species , 1983, Netherlands Journal of Plant Pathology.
[31] Elaine Ward,et al. Plant pathogen diagnostics : immunological and nucleic acid-based approaches , 2004 .
[32] Peter Rådström,et al. Strategies to Generate PCR-Compatible Samples , 2004 .
[33] R. Naidua. Methods for the detection of plant virus diseases , 2004 .
[34] M. Wirthensohn,et al. Comparison of ELISA and RT-PCR for the detection of Prunus necrotic ring spot virus and prune dwarf virus in almond (Prunus dulcis). , 2003, Journal of virological methods.
[35] R. Frederick,et al. Advances in molecular-based diagnostics in meeting crop biosecurity and phytosanitary issues. , 2003, Annual review of phytopathology.
[36] J W Todd,et al. Epidemiology and management of tomato spotted wilt in peanut. , 2003, Annual review of phytopathology.
[37] M. López,et al. Innovative tools for detection of plant pathogenic viruses and bacteria , 2003, International microbiology : the official journal of the Spanish Society for Microbiology.
[38] P. Gognalons,et al. AN UPDATE OF THE HOST RANGE OF TOMATO SPOTTED WILT VIRUS , 2003 .
[39] A. Culbreath,et al. Differential Response of Selected Peanut (Arachis hypogaea) Genotypes to Mechanical Inoculation by Tomato spotted wilt virus. , 2002, Plant disease.
[40] R. Frederick,et al. Emerging technologies / Technologies naissantes Real-time PCR and its application for rapid plant disease diagnostics , 2002 .
[41] A. Culbreath,et al. A regression approach for comparing field resistance of peanut cultivars to tomato spotted wilt tospovirus , 2002 .
[42] H. T. Stalker,et al. Evaluation of Arachis Species for Resistance to Tomato Spotted Wilt Virus , 2002 .
[43] A. Nitsche,et al. Real-time PCR in virology. , 2002, Nucleic acids research.
[44] N. Boonham,et al. The detection of Tomato spotted wilt virus (TSWV) in individual thrips using real time fluorescent RT-PCR (TaqMan). , 2002, Journal of virological methods.
[45] R. Brandenburg,et al. Incidence of Tomato spotted wilt virus (Bunyaviridae) and Tobacco Thrips in Virginia-Type Peanuts in North Carolina. , 2000, Plant disease.
[46] A. Culbreath,et al. Reaction of Peanut Cultivars to Spotted Wilt , 2000 .
[47] John F. Murphy,et al. Detection of cucumber mosaic cucumovirus in weed species: a cautionary report on nonspecific reactions in ELISA , 1999 .
[48] T. Brenneman,et al. First Report of Natural Infection of Peanut (Groundnut) by Impatiens Necrotic Spot Tospovirus (Family Bunyaviridae). , 1999, Plant disease.
[49] A. Culbreath,et al. Localization of Tomato Spotted Wilt Virus (Genus Tospovirus, Family Bunyaviridae) in Peanut Pods , 1999 .
[50] Adams,et al. Plum pox virus detection in dormant plum trees by PCR and ELISA , 1999 .
[51] V. Pallás,et al. Comparative analysis of ELISA, nonradioactive molecular hybridization and PCR for the detection of prunus necrotic ringspot virus in herbaceous and Prunus hosts. , 1998 .
[52] A. Culbreath,et al. Molecular Diagnosis of Tomato Spotted Wilt Tospovirus Infection of Peanut and Other Field and Greenhouse Crops. , 1998, Plant disease.
[53] J. Moyer,et al. Pathogenesis of Tomato Spotted Wilt Virus in Peanut Plants Dually Infected with Peanut Mottle Virus. , 1998, Plant disease.
[54] J. A. Sanchez-Navarroa,et al. Comparative analysis of ELISA , nonradioactive molecular hybridization and PCR for the detection of prunus necrotic ringspot virus in herbaceous and Prunus hosts , 1998 .
[55] J. Kijne,et al. Root Lectins and Rhizobia , 1997, Plant physiology.
[56] I G Wilson,et al. Inhibition and facilitation of nucleic acid amplification , 1997, Applied and environmental microbiology.
[57] W. D. Branch. Registration of 'Georgia Green' peanut , 1996 .
[58] D. Gorbet,et al. Interaction of Early‐Season Herbicide Injury, Tobacco Thrips Injury, and Cultivar on Peanut , 1996 .
[59] W. Peumans,et al. Lectins as Plant Defense Proteins , 1995, Plant physiology.
[60] M. Putnam. Evaluation of selected methods of plant disease diagnosis , 1995 .
[61] J. W. Smith,et al. Survey by ELISA of Thrips (Thysanoptera: Thripidae) Vectored Tomato Spotted Wilt Virus Distribution in Foliage and Flowers of Field-Infected Peanut1 , 1995 .
[62] John S. Hu,et al. Comparison of dot blot, ELISA, and RT-PCR assays for detection of two cucumber mosaic virus isolates infecting banana in Hawaii , 1995 .
[63] J. Reed,et al. Thrips and Tomato Spotted Wilt Virus in a Mississippi Peanut Field , 1995 .
[64] I. Barker,et al. The detection of tomato spotted wilt virus using the polymerase chain reaction. , 1994, Journal of virological methods.
[65] A. Culbreath,et al. Productivity of Florunner Peanut Infected with Tomato Spotted Wilt Virus , 1992 .
[66] A. Culbreath,et al. Disease Progress of Spotted Wilt in Peanut Cultivars Florunner and Southern Runner , 1992 .
[67] A. Culbreath. Association of Tomato Spotted Wilt Virus with Foliar Chlorosis of Peanut in Georgia , 1991 .
[68] A. Hagan,et al. Tomato spotted wilt virus in peanut in Alabama. , 1990 .
[69] J. Sherwood,et al. Use of monoclonal antibodies in detection of tomato spotted wilt virus , 1989 .
[70] L. Gunn,et al. Effect of potato physiology on the interpretation of ELISA results for potato leafroll virus , 1988 .
[71] P. Sreenivasulu. Tomato Spotted Wilt Virus (TSWV) and Strains of Peanut Mottle Virus that Mimic TSWV Symptoms in Peanut in Georgia , 1988 .
[72] C Y Ou,et al. Polymerase chain reaction. , 1988, The Journal of infectious diseases.
[73] J. Gillett,et al. Interpreting ELISA data and establishing the positive-negative threshold , 1986 .
[74] M. Etzler,et al. Plant Lectins: Molecular and Biological Aspects , 1985 .
[75] L. Torrance,et al. Recent developments in serological methods suited for use in routine testing for plant viruses , 1981 .
[76] A. N. Adams,et al. Characteristics of the microplate method of enzyme-linked immunosorbent assay for the detection of plant viruses. , 1977, The Journal of general virology.