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H. Piepho (1994)
Best Linear Unbiased Prediction (BLUP) for regional yield trials: a comparison to additive main effects and multiplicative interaction (AMMI) analysisTheoretical and Applied Genetics, 89
Nishi Mishra, M. Tripathi, S. Tiwari, Niraj Tripathi, H. Trivedi (2020)
Morphological and Molecular Screening of Soybean Genotypes against Yellow Mosaic Virus DiseaseLEGUME RESEARCH - AN INTERNATIONAL JOURNAL
L. Rajput, V. Nataraj, S. Kumar, P. Amrate, S. Jahagirdar, S. Huilgol, P. Chakruno, A. Singh, S. Maranna, M. Ratnaparkhe, M. Borah, K. Singh, S. Gupta, N. Khandekar (2021)
WAASB index revealed stable resistance sources for soybean anthracnose in IndiaThe Journal of Agricultural Science, 159
S. Ramesh, P. Sahu, M. Prasad, S. Praveen, H. Pappu (2017)
Geminiviruses and Plant Hosts: A Closer Examination of the Molecular Arms RaceViruses, 9
A. Zuffo, F. Steiner, J. Aguilera, P. Teodoro, L. Teodoro, A. Busch (2020)
Multi‐trait stability index: A tool for simultaneous selection of soya bean genotypes in drought and saline stressJournal of Agronomy and Crop Science, 206
Tal Galili, Alan O'Callaghan, J. Sidi, Carson Sievert (2017)
heatmaply: an R package for creating interactive cluster heatmaps for online publishingBioinformatics, 34
Ashok Singamsetti, J. Shahi, P. Zaidi, K. Seetharam, M. Vinayan, Munnesh Kumar, Saurav Singla, K. Shikha, Kartik Madankar (2021)
Genotype × environment interaction and selection of maize (Zea mays L.) hybrids across moisture regimesField Crops Research
(2014)
Molecular studies on transmission of mungbean yellow mosaic virus ( YMV ) by Bemisia tabaci Genn
K. Singh, T. Aravind (2019)
Identification of resistant sources against soybean yellow mosaic and soybean mosaic diseases in field evaluation of soybean (Glycine max (L.) Merr.) genotypesIndian Phytopathology, 72
R. Nair, M. Götz, S. Winter, R. Giri, V. Boddepalli, A. Sirari, T. Bains, G. Taggar, H. Dikshit, M. Aski, M. Boopathi, D. Swain, A. Rathore, V. Kumar, E. Lii, L. Kenyon (2017)
Identification of mungbean lines with tolerance or resistance to yellow mosaic in fields in India where different begomovirus species and different Bemisia tabaci cryptic species predominateEuropean Journal of Plant Pathology, 149
K. Girish, R. Usha (2005)
Molecular characterization of two soybean-infecting begomoviruses from India and evidence for recombination among legume-infecting begomoviruses from South-East AsiaVirus Research, 108
PAWAN AMRATE, M SHRIVASTAVA, D.K. PANCHESHWAR (2021)
Crop-weather based relation and severity prediction of aerial blight incited by Rhizoctonia solani Kuhn in soybeanJournal of Agrometeorology
J. Turon, M. Pérez (1999)
Handbook of agriculture.
T Olivoto, ADC Lúcio, JAG Silva, VS Marchioro, VQ Souza, E Jost (2019)
Mean performance and stability in multienvironment trials I: combining features of AMMI and BLUP techniquesAgron J, 111
N. Dewangan, H. Sharma, S. Das (2015)
Associationship of whitefly population and weather variables at different yellow sticky trap height in soybean : A correlation and regression approach
Weikai Yan, L. Hunt, Q. Sheng, Z. Szlavnics (2000)
Cultivar Evaluation and Mega‐Environment Investigation Based on the GGE BiplotCrop Science, 40
V. Nataraj, A. Bhartiya, Chandra Singh, H. Devi, M. Deshmukh, P. Verghese, Kamendra Singh, S. Mehtre, V. Kumari, S. Maranna, Giriraj Kumawat, M. Ratnaparkhe, G. Satpute, V. Rajesh, S. Chandra, R. Ramteke, N. Khandekar, Sanjay Gupta (2021)
WAASB‐based stability analysis and simultaneous selection for grain yield and early maturity in soybeanAgronomy Journal
A. Parihar, A. Basandrai, A. Sirari, D. Dinakaran, Deepak Singh, K. Kannan, Kailash Kushawaha, Maddineni Adinarayan, M. Akram, T. Latha, V. Paranidharan, Sanjeev Gupta (2017)
Assessment of mungbean genotypes for durable resistance to Yellow Mosaic Disease: Genotype × Environment interactionsPlant Breeding, 136
S. Kohli, T. Mohapatra, S. Das, Ashutosh Singh, V. Tandon, R. Sharma (2004)
Yellow mosaic virus infecting soybean in northern India is distinct from the species infecting soybean in southern and western India
(2015)
Study on assessment of causes of outbreak of YMV and estimation of yield losses in soybean during kharif -2015 in Madhya Pradesh. DPD, Bhopal and DAC & FW
SK Chahal (2009)
146J Agrometeorol, 11
J. Doyle (1990)
Isolation of plant DNA from fresh tissue, 12
Isaac Tizé, A. Fotso, E. Nukenine, C. Masso, F. Ngome, C. Suh, V. Lendzemo, I. Nchoutnji, G. Manga, E. Parkes, P. Kulakow, C. Kouebou, K. Fiaboe, R. Hanna (2021)
New cassava germplasm for food and nutritional security in Central AfricaScientific Reports, 11
Tiago Olivoto, A. Lúcio, J. Silva, V. Marchioro, V. Souza, E. Jost (2019)
Mean Performance and Stability in Multi‐Environment Trials I: Combining Features of AMMI and BLUP TechniquesAgronomy Journal
A. Talukdar, G.Harish, M. Shivakumar, B. Kumar, K. Verma, S. Lal, R. Sapra, K. Singh (2013)
Genetics of yellow mosaic virus (YMV) resistance in cultivated soybean [Glycine max (L.) Merr.]Legume Research, 36
Ryan Peterson, J. Cavanaugh (2019)
Ordered quantile normalization: a semiparametric transformation built for the cross-validation eraJournal of Applied Statistics, 47
S. Raj, M. Khan, S. Snehi, S. Srivastava, H. Singh (2006)
A Yellow Mosaic Disease of Soybean in Northern India is Caused by Cotton leaf curl Kokhran virus.Plant disease, 90 7
(2009)
Incidence of yellow mosaic virus as influenced by weather in moong
G. Mishra, H. Dikshit, R. V., Kuldeep Tripathi, R. Kumar, M. Aski, A. Singh, A. Roy, Priti, N. Kumari, Uttarayan Dasgupta, Atul Kumar, S. Praveen, R. Nair (2020)
Yellow Mosaic Disease (YMD) of Mungbean (Vigna radiata (L.) Wilczek): Current Status and Management OpportunitiesFrontiers in Plant Science, 11
R. Zobel, M. Wright, Hugh Gauch (1988)
Statistical Analysis of a Yield TrialAgronomy Journal, 80
H. Dikshit, Gyan Mishra, P. Somta, T. Shwe, A. Alam, T. Bains, R. Nair (2020)
Classical Genetics and Traditional Breeding in Mungbean
R. Kumar, D. Rajabaskar, N. Balakrishnan, G. Karthikeyan (2019)
Influence of weather parameters with incidence of Mung bean yellow mosaic virus (MYMV) disease and its vector population in Vigna radiata (l.) WilczekAnnals of Plant Protection Sciences
R. Marabi, Kailash Chaukikar, S. Das, A. Bhowmick (2017)
Population Dynamics of Whitefly, Bemisia tabaci and Incidence of Mungbean Yellow Mosaic India Virus (MYMIV) on BlackgramInternational journal of Bio-resource and Stress Management, 8
Kunika Silodia, U. Bhale, M. Bhale (2018)
Status and evaluation of soybean varieties against Mungbean Yellow Mosaic (MYMV) disease under changing climatic conditions of Kaymore plateau zone, Madhya Pradesh, IndiaIndian Journal Of Agricultural Research
K. Surbhi, K. Singh (2020)
Influence of weather factors on severity of aerial blight of soybeanIndian Phytopathology
K. Bisht, S. Yadav, A. Karnatak, N. Gaur (2017)
Resistance against whitefly Bemisia Tabaci and Yellow vein mosaic in soybeanIndian journal of entomology, 79
T. Morinaga, M. Ikegami, K. Miura (1990)
Physical mapping and molecular cloning of mung bean yellow mosaic virus DNA.Intervirology, 31 1
A. Srivastava, R. Prajapati (2013)
Influence of Weather Parameters on Outbreak of Mungbean Yellow Mosaic Virus in Black Gram ( Vigna mungo L.) of Bundelkhand Zone of Central India
Mamta Sharma, R. Telangre, R. Ghosh, S. Pande (2015)
Multi-environment field testing to identify broad, stable resistance to sterility mosaic disease of pigeonpeaJournal of General Plant Pathology, 81
B. Kumar, A. Talukdar, K. Verma, Vanishree Girmilla, I. Bala, Sanjay, Kumar Lal, K. Singh, R. Sapra (2014)
Screening of soybean [Glycine max (L.) Merr.] genotypes for yellow mosaic virus (YMV) disease resistance and their molecular characterization using RGA and SSRs markers.Australian Journal of Crop Science, 8
(2000)
Screening for disease incidence of YVMV in Okra treated with gamma rays and EMS
NL Dewangan (2018)
198J Crop Weed, 14
Tiago Olivoto, Alessandro Lúcio (2020)
metan: an R package for multi-environment trial analysisbioRxiv
C. Singh, Poornima Singh, A. Pratap, R. Pandey, Shalini Purwar, Vibha, Col Douglas, K. Baek, A. Mishra (2019)
Breeding for Enhancing Legumovirus Resistance in Mungbean: Current Understanding and Future DirectionsAgronomy
W. Fehr, C. Caviness, D. Burmood, J. Pennington (1971)
Stage of Development Descriptions for Soybeans, Glycine Max (L.) MerrillCrop Science, 11
(2014)
Integrated Pest management for soybean. Director National Centre for Integrated Pest Management, IARI Campus
Publisher's note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations
P. Amrate, M. Shrivastava, D. Pancheshwar, Stuti Sharma (2020)
Charcoal Rot and Yellow Mosaic Virus Diseases of Soybean Under Hot Spot Condition: Symptoms, Incidence and Resistance CharacterizationInternational Journal of Bio-resource and Stress Management
A. Agnihotri, S. Mishra, M. Ansar, R. Tripathi, R. Singh, M. Akram (2019)
Molecular characterization of Mungbean yellow mosaic India virus infecting tomato (Solanum lycopersicum L.)Australasian Plant Pathology, 48
In India, soybean production is predominant in central part of the country. Gradual increase in incidence of Yellow Mosaic Disease (YMD) is a major concern for soybean production in this region. Molecular characterization of virus infected samples collected from three different locations of central India, using coat protein (CP) gene specific primers revealed that all the three samples were infected with Mungbean Yellow Mosaic India Virus (MYMIV). Through sequence similarity and phylogenetic analyses, Jabalpur isolate of MYMIV (OM643233) was found to share maximum homology (up to 97.9%) with other isolates of MYMIV in India and across the world. Simultaneously, in another experiment, forty-seven agronomically superior soybean genotypes were evaluated for YMD resistance for four consecutive growing seasons (2017–2020) under hot-spot conditions at J.N.K.V.V., Jabalpur. Percent Disease Incidence (PDI) and symptoms severity grade (0–5) based Coefficient of Infection (CI) were employed in measuring the genotypic differences for YMD resistance. Friedman test indicated significant genotypic differences for PDI and CI, across four seasons. A BLUP (Best Linear Unbiased Prediction) based mixed model, WAASB (Weighted Average of Absolute Scores) and superiority index WAASBY (a combination of WAASB and Disease score) were employed on CI of yellow mosaic disease for identifying the stable and superior sources of resistance. Through WAASBY superiority index, out of forty seven genotypes, DS 3106 (WAASBY score = 93.90) was found to be superior with respect to stability and resistance, followed by SL 955 (WAASBY score = 90.08) and JS 21–75 (WAASBY score = 78.21). Through cluster analysis, based on PDI and CI, DS 3106, SL 955 and JS 21–75 were grouped together. Hence, these three genotypes can be employed as candidate resistant sources in breeding for high yielding and YMD resistant varieties suitable for cultivation in central India. Through Pearson’s correlation analysis, CI was found to be positively correlated with WFP (Whitefly Population) (r = 0.91*) and atmospheric mean temperature (r = 0.77), indicating the role of the vector and weather variables in aggravating the disease severity.
Australasian Plant Pathology – Springer Journals
Published: May 1, 2023
Keywords: Central India; Resistance; Soybean; YMD and Mungbean Yellow Mosaic India Virus
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