Alleviation of Postharvest Skin Dimpling of MN55 Apple Fruit and a Possible Association with Apple stem pitting virus
暂无分享,去创建一个
[1] Meiguang Lu,et al. Analyses of virus/viroid communities in nectarine trees by next-generation sequencing and insight into viral synergisms implication in host disease symptoms , 2019, Scientific Reports.
[2] K. Silverstein,et al. Two QTL characterized for soft scald and soggy breakdown in apple (Malus × domestica) through pedigree-based analysis of a large population of interconnected families , 2018, Tree Genetics & Genomes.
[3] P. Kesanakurti,et al. Application of Next Generation Sequencing for Diagnostic Testing of Tree Fruit Viruses and Viroids. , 2017, Plant disease.
[4] L. Tirry,et al. High population densities of Macrolophus pygmaeus on tomato plants can cause economic fruit damage: interaction with Pepino mosaic virus? , 2016, Pest management science.
[5] C. Watkins,et al. Honeycrisp – To Condition or Not Condition? , 2016 .
[6] C. Watkins,et al. Repeated treatment of apple fruit with 1-methylcyclopropene (1-MCP) prior to controlled atmosphere storage , 2013 .
[7] R. Jones,et al. Minimising losses caused by Zucchini yellow mosaic virus in vegetable cucurbit crops in tropical, sub-tropical and Mediterranean environments through cultural methods and host resistance. , 2011, Virus research.
[8] J. DeEll,et al. Effects of Preconditioning and Fruit Maturity on the Occurrence of Soft Scald and Soggy Breakdown in ‘Honeycrisp’ Apples , 2010 .
[9] A. Taneda,et al. Characterization of a new Apple dimple fruit viroid variant that causes yellow dimple fruit formation in ‘Fuji’ apple trees , 2010, Journal of General Plant Pathology.
[10] C. Watkins,et al. Superficial scald control after delayed treatment of apple fruit with diphenylamine (DPA) and 1-methylcyclopropene (1-MCP) , 2008 .
[11] K. Ling,et al. Apple stem pitting virus. , 2008 .
[12] T. Sano,et al. Combinations of two amino acids (Ala40 and Phe75 or Ser40 and Tyr75) in the coat protein of apple chlorotic leaf spot virus are crucial for infectivity. , 2007, The Journal of general virology.
[13] B. Lockhart,et al. Identification of Piper yellow mottle virus, a mealybug-transmitted badnavirus infecting Piper spp. in Southeast Asia , 2004, European Journal of Plant Pathology.
[14] N. Katis,et al. A spot nested RT-PCR method for the simultaneous detection of members of the Vitivirus and Foveavirus genera in grapevine. , 2003, Journal of virological methods.
[15] V. Masenga,et al. An isolate of Apple stem grooving virus associated with Cleopatra mandarin fruit intumescence , 2003 .
[16] D. Mackenzie,et al. Elimination of apple stem grooving virus by chemotherapy and development of an immunocapture RT-PCR for rapid sensitive screening , 1997 .
[17] Canada.,et al. Postharvest disorders of apples and pears , 1994 .
[18] G. D. Blanpied,et al. Predicting Harvest Date Windows for Apples , 1992 .
[19] S. Lurie,et al. Prestorage Heat Treatment Delays Development of Superficial Scald on `Granny Smith' Apples , 1991 .
[20] 小林 敏郎,et al. 核果類から分離されたApple chlorotic leaf spot virus , 1981 .
[21] David S. Johnson,et al. Post‐harvest application of diphenylamine and ethoxyquin for the control of superficial scald on Bramley's seedling apples , 1980 .
[22] R. M. Smock. Nomenclature for internal storage disorders of apples , 1977 .
[23] C. Padfield. The use of diphenylamine and other chemicals to control superficial scald of apples , 1959 .
[24] B. Pickett,et al. Functional diseases of the apple in storage , 1935 .