Agricultural Statistics, 2021. Volume III: Report on horticultural and greenhouse products 307 p.
Amanifar N, 2019. Frequency isolation some of microorganisms and pathogens associated with peach replant problem in orchrads of Chahar Mahal va Bakhtiary province. Iranian Journal of Plant Pathology 54: 207-229. (in Persian with English summary). doi. 10.22034/ijpp.2018.34711
Amanifar N, 2020. Winter sunscald as a predisposing factor for bacterial canker of almond and peach trees in Chaharmahal va Bakhtiari province. Applied Entomology and Phytopathology 88: 117-127. (in Persian with English summary). doi.org/10.22092/ jaep.2020.341697.1325
Amanifar N, 2022. Evaluation resistance of some rootstocks of almond and peach to Mesocriconema xenoplax and Pseudomonas syringae for managing bacterial canker disease. Agricultural, Research, Education and Extension Organization (AREEO) Research final report 61036 40 pp. (in Persian with English summary).
Amanifar N, 2023a. Study on diversity of bacterial causal agents of peach and almond canker and disease management in Chaharmahal va Bakhtiary province. Agricultural, Research, Education and Extension Organization (AREEO) Research, final report 64256, 52 pp. (in Persian with English summary).
Amanifar N, 2023b. Synergistic effect of Mesocriconema xenoplax in the creation of bacterial canker of peach by Pseudomonas syringae pv. syringae. Iranian Journal of Plant Protection Science 54 (2): 47-58. doi. 10.22059/ijpps.2023.354890.1007020
Abbasi V, Rahimian H, Tajick Ghanbari MA, 2013. Genetic variability of Iranian strains of Pseudomonas syringae pv. syringe causing bacterial canker disease of stone fruits. European Journal of Plant Pathology 135: 225-235. doi.org/10.1007/s10658-012-0095-1
Bophela KN, Petersen Y, Bull CT, Coutinho TA, 2020. Identification of Pseudomonas isolates associated with bacterial canker of stone fruit trees in the Western Cape, South Africa. Plant Disease 104: 882–892. doi. 10.1094/PDIS-05-19-1102-RE
Cao T, Mckenry MV, Duncan RA, Dejong TM, Kirkpatrick BC, Shackel KA, 2006. Influence of ring nematode infestation and calcium, nitrogen, and indoleacetic acid applications on peach susceptibility to Pseudomonas syringae pv. syringae, Phytopathology 96 : 608–615. doi. 10.1094/ PHYTO-96-0608
Cao T, Kirkpatrick KA, Shackel BC, Dejong TM, 2011. Influence of mineral nutrients and freezing-thawing on peach susceptibility to bacterial canker caused by Pseudomonas syringae pv. syringae. Fruits 66: 441–452. doi.org/10.1051/fruits/2011057
Cao T, Duncan RA, Kirkpatrick KA, Shackel BC, Dejong TM, 2013. Effect of calcium and nitrogen fertilization on bacterial canker susceptibility in stone fruits. Fruits 68: 245–254. doi.org/10.1051/fruits/2013071
Farhadfar S, Keshavarzi M, Bouzari N, Ladan Moghadam A, Soleimani A, 2016. Susceptibility of cherries to bacterial canker in field and laboratory. International Journal of Agriculture and Forestry 6: 20–27. doi.10.5923/j.ijaf.20160601.04
Hamzenejad P, Ghasemi A, Rahimian H, Goharkhai S, 2006. Evaluation resistance of cherry cultivars to Pseudomonas syringae, the causative agent of canker disease of stone fruit trees. Iranian Journal of Agriculture Science 37 (3): 457-462. doi.org/10.1007/s10658-012-0095-1
Hulin MT, Jackson RW, Harrison RJ, Mansfield JW, 2020. Cherry picking by pseudomonads: After a century of research on canker, genomics provides insights into the evolution of pathogenicity towards stone fruits. Plant Pathology 69:962–978. doi: 10.1111/ppa.13189
Husseini A, Akköprü A, 2020. The possible mechanisms of copper resistance in the pathogen Pseudomonas syringae pathovars in stone fruit trees. Phytoparasitica 48: 705–718. doi.10.1007/s12600-020-00828-1
Jafarpour B, 1993. Resistant cultivars of apricot to bacterial canker (Pseudomonas syringae pv. syringae) in Mashhad. Current Plant Science and Biotechnology in Agriculture 18: 327–332. doi. 10.22034/arpp.2021.13486
Keshavarzi M, Bouzari N, 2014. Resistance to bacterial canker in a number of selected apricot genotypes. Research final report 46359, AREEO, Tehran, Iran (In Persian with English abstract). doi. 10.22034/arpp.2021.13486
Keshavarzi M, Dejampour J, 2018. Evaluation of bacterial canker resistance in a number of apricot hybrids. Research final report 43320, AREEO, Tehran, Iran (In Persian with English abstract). doi.org/10.22034/arpp.2021.13486
Mohammadi R, Keshavarzi M, Hassanzadeh N, Dejampour J, Farhadnejad A, 2021. Relative resistance levels to bacterial canker in Iranian apricot hybrids. Plant Pathology Science 10(2):15-29. doi: 10.2982/PPS.10.2.15
Nosratnezhad F, Rouhrazi K, Khezrinezhad N, 2018. Characterization and genetic diversity of Pseudomonas syringae isolates from stone fruits in north-western Iran. Journal of Phytopathology 166: 516-524. doi.10.4454/jpp.v92i3.327
Ranjbari SH, Keshavarzi M, Bouzai N, Kakovan S, Salehi Z, 2022. Determination of bacterial canker resistance level in Iranian sour cherry germplasm. Journal of Applied Research in Plant Protection 10 (4): 25–35. doi.org/10.22034/arpp.2021.13486
Sayler RJ, Kirkpatrick BC, 2003. The effect of copper sprays and fertilization on bacterial canker in 'French' prune. Canadian journal of plant pathology 25: 406–410. doi.10.1080/07060660309507097
Scortichini M, 2010. Epidemiology and predisposing factors of some major bacterial diseases of stone and nut fruit trees species. Journal of Plant Pathology 92: 73-78. doi: 10.1111/ppa.13188
Weaver DJ, Wehunt EJ, 1975. Effect of soil pH on susceptibility of peach to Pseudomonas syringae. Phytopathology 65: 984–989. doi. 10.1094/Phyto-65-984.
Wenneker M., Janse J. D., DE Bruine A., Vink P., Pham K. 2012. Bacterial canker of plum caused by Pseudomonas syringae pathovars, as a serious threat for plum production in the Netherlands. Journal of plant pathology 94: 11-13. doi.abs/10.5555/2012331567