Amponsah, N.T., Walter, M., Beresford, R.M. and Scheper, R.W.A. 2015. Seasonal wound presence and susceptibility to Neonectria ditissima infection in New Zealand apple trees. New Zealand Plant Protection, 68: 250-256.
Beresford, R.M. and Kim, K.S. 2011. Identification of regional climatic conditions favorable for development of European canker of apple. Phytopathology, 101(1): 135-146.
Børve, J., Dalen, M. and Stensvand, A. 2019. Development of Neonectria ditissima infections initiated at grafting of apple trees. European Journal of Plant Pathology, 155: 1225-1239.
Bus, V.G., Scheper, R.W., Walter, M., Campbell, R.E., Kitson, B., Turner, L., Fisher, B.M., Johnston, S.L., Wu, C., Deng, C.H. and Singla, G. 2019. Genetic mapping of the European canker (Neonectria ditissima) resistance locus Rnd1 from Malus ‘Robusta 5’. Tree Genetics and Genomes, 15: 1-13.
Delgado, Á., García-Fernández, B., Gómez-Cortecero, A. and Dapena, E. 2022. Susceptibility of cider apple accessions to European canker-Comparison between evaluations in field planted trees and rapid screening tests. Plants, 11(9): 1145.
Garkava-Gustavsson, L., Zborowska, A., Sehic, J., Rur, M., Nybom, H., Englund, J.E., Lateur, M., Van de Weg, E. and Holefors, A. 2013. Screening of apple cultivars for resistance to European canker, Neonectria ditissima. Acta Horticulturae, 976: 529-536.
Gelain, J., Hamada, N.A. and Mio, L.L.M.D. 2022. Survival of pathogens after dormancy in apple tree twigs indicates potential risk as source of inoculum. Acta Scientiarum. Agronomy, 44: e53816.
Gelvonauskienė, D., Sasnauskas, A. and Gelvonauskis, B. 2007. The breeding of apple tree resistant to European canker (Nectria galligena Bres.). Sodininkystė ir daržininkystė, 26: 174-178.
Ghasemkhani, M., Liljeroth, E., Sehic, J., Zborowska, A. and Nybom, H. 2015. Cut-off shoots method for estimation of partial resistance in apple cultivars to fruit tree canker caused by Neonectria ditissima. Acta Agriculturae Scandinavica, Section B—Soil and Plant Science, 65(5): 412-421.
Gómez-Cortecero, A., Saville, R.J., Scheper, R.W., Bowen, J.K., Agripino De Medeiros, H., Kingsnorth, J., Xu, X. and Harrison, R.J. 2016. Variation in host and pathogen in the Neonectria/Malus interaction; toward an understanding of the genetic basis of resistance to European canker. Frontiers in Plant Science, 7: 1365.
Harteveld, D.O.C., Goedhart, P.W., Houwers, I., Köhl, J., de Jong, P.F. and Wenneker, M. 2023. Detecting the asymptomatic colonization of apple branches by Neonectria ditissima, causing European canker of apple. European Journal of Plant Pathology, 166(3): 291-301.
Jansonius, P., de Jong, P.F. and Anbergen, R. 2004. Vruchtboomkanker in de biologische vruchtboomteelt. Publicatie LF79. Louis Bolk Instituut: Driebergen, Netherlands.
Kazlouskaya, Z.A. and Marchuk, Y.G. 2011. Evaluation of susceptibility to Nectria canker as initial material for apple breeding. In XIII Eucarpia Symposium on Fruit Breeding and Genetics 976: 549-554.
Kennel, W. 1963. Zur Pathogenese des Obstbaumkrebses (Nectria galligena Bres.) am Apfel. Gartenbauwissenschaft, 29-64.
Kim, K.S. and Beresford, R.M. 2012. Use of a climatic rule and fuzzy sets to model geographic distribution of climatic risk for European canker (Neonectria galligena) of apple. Phytopathology, 102(2): 147-157.
Lichtfouse, E. 2009. Climate change, intercropping, pest control and beneficial microorganisms (Vol. 2, pp. 229-232). Dordrecht, The Netherlands: Springer.
McCracken, A.R., Berrie, A., Barbara, D.J., Locke, T., Cooke, L.R., Phelps, K., Swinburne, T.R., Brown, A.E., Ellerker, B. and Langrell, S.R.H. 2003. Relative significance of nursery infections and orchard inoculum in the development and spread of apple canker (Nectria galligena) in young orchards. Plant Pathology, 52(5): 553-566.
Metzler, B., Meierjohann, E., Kublin, E. and Von Wühlisch, G. 2002. Spatial dispersal of Nectria ditissima canker of beech in an international provenance trial. Forest Pathology, 32(3): 137-144.
Montecchio, L., Scattolin, L. and De Battisti, R. 2011. Dormouse injuries predispose beech to infection by Neonectria ditissima. Forest Pathology, 41(2): 114-119.
Palm, G., Harms, F. and Vollmer, I. 2011. Mehrjärige Befallsentwicklung des Obstbaukrebses an verschiedenen Apfelsorten an drei Standorten. Mitteilungen des Obstbauversuchsringes des Alten Landes, 66: 360-363.
Papp-Rupar, M., Karlstrom, A., Passey, T., Deakin, G. and Xu, X. 2022. The influence of host genotypes on the endophytes in the leaf scar tissues of apple trees and correlation of the endophytes with apple canker (Neonectria ditissima) development. Phytobiomes Journal, 6(2): 127-138.
Pechous, S.W., Watkins, C.B. and Whitaker, B.D. 2005. Expression of α-farnesene synthase gene AFS1 in relation to levels of α-farnesene and conjugated trienols in peel tissue of scald-susceptible ‘Law Rome’and scald-resistant ‘Idared’apple fruit. Postharvest Biology and Technology, 35(2):125-132.
Sasnauskas, A., Gelvonauskienė, D., Gelvonauskis, B., Bendokas, V. and Baniulis, D. 2006. Resistance to fungal diseases of apple cultivars and hybrids in Lithuania. Agronomy Research, 4: 349-352.
Saville, R. and Olivieri, L. 2019. Fungal diseases of fruit: apple cankers in Europe. In Integrated management of diseases and insect pests of tree fruit (pp. 59-84). Burleigh Dodds Science Publishing.
Scheper, R.W., Fisher, B.M., Taylor, T. and Hedderley, D.I. 2018. Detached shoot treatments cannot replace whole-tree assays when phenotyping for apple resistance to Neonectria ditissima. New Zealand Plant Protection, 71: 151-157.
Shaner, G. and Finney, R.E. 1977. The effect of nitrogen fertilization on the expression of slow-mildewing resistance in Knox wheat. Phytopathology, 67(8): 1051-1056.
Van de Weg, W.E. 1989. Screening for resistance to Nectria galligena Bres. in cut shoots of apple. Euphytica, 42: 233-240.
Walter, M., Manktelow, D.W., Le Berre, F., Campbell, R.E., Turner, L., Vorster, L., Patrick, E., Butler, R.C. and Northcott, G.L. 2019. How much captan is required for wound protection of Neonectria ditissima conidial infection in apple?. New Zealand Plant Protection, 72: 95-102.
Weber, R.W. and Børve, J. 2021. Infection biology as the basis of integrated control of apple canker (Neonectria ditissima) in Northern Europe. CABI Agriculture and Bioscience, 2: 1-16.
Weber, R.W.S. 2014. Biology and control of the apple canker fungus Neonectria ditissima (syn. N. galligena) from a Northwestern European perspective. Erwerbs-Obstbau, 56(3): 95-107.
Wenneker, M., de Jong, P.F., Joosten, N.N., Goedhart, P.W. and Thomma, B.P. 2017. Development of a method for detection of latent European fruit tree canker (Neonectria ditissima) infections in apple and pear nurseries. European Journal of Plant Pathology, 148: 631-635.
Wesche, J. and Weber, R.W. 2023. Are microconidia infectious principles in Neonectria ditissima? Journal of Plant Diseases and Protection, 130(1): 157-162.
Xu, X., Passey, T., Robinson-Boyer, L., Mclean, H., Saville, R. and Papp-Rupar, M. 2022. Development of European apple canker on different cultivars in relation to planting time at three sites in the UK. Frontiers in Horticulture, 1:995776.
Yoder, K.S., Miller, S.S. and Byers, R.E. 1999. Suppression of fireblight in apple shoots by prohexadione-calcium following experimental and natural inoculation. HortScience, 34(7): 1202-1204.