Year 2025,
Volume: 42 Issue: 1, 33 - 40
Rana Kurum
,
Mine Ünlü
,
Emine Gümrükcü
References
- Aslam, W., Noor, R.S., Hussain, F., Ameen, M., Ullah, S., & Chen, H. (2020). Evaluating morphological growth yield and postharvest fruit quality of cucumber (Cucumis sativus L.) grafted on cucurbitaceous rootstocks. Agriculture, 10(4):101.
- Balkaya, A., Güngör, B., Sarıbaş, Ş., & Yıldız, S. (2018). Determination of the effects of pumpkin rootstock on yield and fruit quality in mini watermelon cultivation. Yuzuncu Yıl University Journal of Agricultural Sciences 28:237-246.
- Bayoumi, Y., Abd-Alkarim, E., El-Ramady, H., El-Aidy, F., Hamed, E.S., Taha, N., Prohens, J., & Rakha, M. (2021). Grafting improves fruit yield of cucumber plants grown under combined heat and soil salinity stresses. Horticulturae 7(3): 61.
- Champaco, E.R., Martyn, R.D., & Miller, M.E. (1993). Comparison of Fusarium solani and F. oxysporum as causal agents of fruit rot and root rot of muskmelon. HortScience, 28(12): 1174–1177.
- Colla, G., Rouphael, Y., Rea, E., & Cardarelli, M. (2012). Grafting cucumber plants enhance tolerance to sodium chloride and sulfate salinization. Scientia Horticulturae, 135: 177-185.
- Colla, G., Rouphael, Y., Jawad, R., Kumar, P., Rea, E., & Cardarelli, M. (2013). The effectiveness of grafting to improve NaCl and CaCl2 tolerance in cucumber. Scientia Horticulturae, 164: 380-391.
- Davis, AR., Perkins-Veazie, P., Sakata, Y., Lopez-Galarza, S., Maroto, J.V., Lee, S.G., Huh, Y.C., Sun, Z., Miguel, A., King, S.R, Cohen R & Lee, J.M. (2008). Cucurbit grafting. Critical Reviews in Plant Sciences, 27(1): 50-74.
- El-Sayed, S.F., Hassan, H.A., Abdel-Wahab, A.A., & Gebrael, A.A. (2014). Effect of grafting on the cucumber yield and quality under high and low temperatures. Journal of Plant Production, 5(3): 443-456.
- Erper, İ., Balkaya, A., Türkkan, M., & Kılıç, G. (2015). Determination of fungal pathogens causing root and crown rot in winter squash (Cucurbita maxima Duch.) growing areas in The Black Sea Region and reactions of some winter squash genotypes against these pathogens. Anadolu Journal of Agricultural Sciences, 30: 15-23.
- Gordon, T. R., Okamoto, D., & Jacobson, D. J. (1989). Colonization of muskmelon and nonsusceptible crops by Fusarium oxysporum f. sp. melonis and other species of Fusarium. Phytopathology, 79(10): 1095-1100.
- Guan, W., Haseman, D., & Nowaskie, D. (2020). Rootstock evaluation for grafted cucumbers grown in high tunnels: yield and plant growth. HortScience 55(6): 914-919.
- Hamdi, N., Benfradj, N., Ben Salem, I.B., & Abad-Campos, P. (2019). Genetic diversity of Fusarium solani f.sp. cucurbitae the causal agent of crown and root rot of watermelon in Tunisia using ISSR markers. Novel Research in Microbiology Journal 3(1): 271-280.
- Huang, Y., Zhao, L., Kong, Q., Cheng, F., Niu, M., Xie, J., Muhammad Azher, N. & Bie, Z. (2016). Comprehensive mineral nutrition analysis of watermelon grafted onto two different rootstocks. Horticultural Plant Journal, 2(2): 105-113.
- Jabnoun-Khiareddine, H., Abdallah, R.A.B., Nefzi, A., Ayed, F., & Daami-Remadi, M. (2019). Grafting tomato cultivars for soilborne diseases uppression and plant growth and yield improvement. Journal of Plant Pathology and Microbiology, 10(1): 473.
- Kamel, S.M., & Taher, D, I. (2021). Grafting cucumber onto interspesific Cucurbita hybrid rootstocks to improve productivity and control wilt disease caused by Fusarium oxysporum f.sp. cucumerinum. Journal of Plant Production, 12(1): 41-47.
- Karaağaç, O., & Balkaya, A. (2013). Interspecific hybridization and hybrid seed yield of winter squash (Cucurbita maxima Duch.) and pumpkin (Cucurbitamoschata Duch.) lines for rootstock breeding. Scientia Horticulturae, 149: 9-12.
- Khapte, P. S., Kumar, P., Panwar, N. R., Burman, U., Rouphael, Y., & Kumar, P. (2021). Combined influence of grafting and type of protected environment structure on agronomic and physiological traits of single-and cluster-fruit-bearing cucumber hybrids. Agronomy, 11(8): 1604.
- King, S.R., Davis, A.R., Zhang, X., & Crosby, K. (2010). Genetics, breeding and selection of rootstocks for Solanaceae and Cucurbitaceae. Scientia Horticulturae, 127(2): 106-111.
- Kyriacou, M.C., Soteriou, G.A., Rouphael, Y., Siomos, A.S., & Gerasopoulos, D. (2016). Configuration of watermelon fruit quality in response to rootstock‐mediated harvest maturity and postharvest storage. Journal of the Science of Food and Agriculture, 96(7): 2400-2409.
- Kyriacou, M.C., Rouphael, Y., Colla, G., Zrenner, R., & Schwarz, D. (2017). Vegetable grafting: The implications of a growing agronomic imperative for vegetable fruit quality and nutritive value. Frontiers in Plant Science, 8: 741.
- Kyriacou, M.C., Colla, G., & Rouphael, Y. (2020). Grafting as a sustainable means for securing yield stability and quality in vegetable crops. Agronomy, 10(12): 1945.
Lee, J.M., Kubota, C., Tsao, S.J., Bie, Z., Echevarria, P. H., Morra, L., & Oda, M. (2010). Current status of vegetable grafting: Diffusion, grafting techniques, automation. Scientia Horticulturae, 127(2): 93-105.
- Lim, J.H., Kim, I.S., Choi, D.J., Kwon, Y.S., Yoon, J.T., Choi, B.S., Lee, W.S., & Oh, J.Y. (1994). Studies on grafted affinity, growth characteristics and yield between cucumber (Cucumis sativa) and the rootstock Sicyos angulatus L. RDA Journal of Agricultural Science, Horticulture, 36(1): 388-392.
- Louws, F.J., Rivard, C.L., & Kubota, C. (2010). Grafting fruiting vegetables to manage soilborne pathogens, foliar pathogens, arthropods and weeds. Scientia Horticulturae, 127(2): 127-146.
- Martyn, R.D., & McLaughlin, R.J. (1983). Effects of inoculum concentration on the apparent resistance of watermelon to Fusarium oxysporum f. sp. niveum. Plant Disease, 67(5): 493-495.
- Németh, D., Balázs, G., Bodor, Z., Zaukuu, J.L.Z., Kovács, Z., & Kappel, N. (2020). Food quality attributes of melon (Cucumis melo L.) influenced by grafting. Progress in Agricultural Engineering Sciences, 16(S1): 53-66.
- Noor, R.S., Wang, Z., Umair, M., Yaseen, M., Ameen, M., Rehman, S.U., Khan, M.U., Imran, M., Ahmed, W., & Sun, Y. (2019). Interactive effects of grafting techniques and scion-rootstocks combinations on vegetative growth, yield and quality of cucumber (Cucumis sativus L.). Agronomy, 9(6): 288.
- Oda, M., Tsuji, K., & Sasaki, H. (1993). Effect of hypocotyl morphology on survival rate and growth of cucumber seedlings grafted on Cucurbita spp. Japon Agricultural Research Quarterly, 26: 259-263.
- Papadaki, A.M., Bletsos, F.A., Menexes, G., İsmail, A.M., & Lagopodi, A.L. (2017). Effectiveness of six rootstocks for Fusarium wilt control in cucumber and their influence on growth yield and fruit quality characteristics. Journal of Plant Pathology, 99(3): 643-650.
- Perez Hernandez, A., Rocha, L.O., Porcel-Rodriguez, E., Summerell, B.A., Liew, E.C., & Gomez-Vazquez, J.M. (2020). Pathogenic, morphological and phylogenetic characterization of Fusarium solani f. sp. cucurbitae isolates from cucurbits in Almeria Province, Spain. Plant Disease, 104(5): 1465-1476.
- Pitrat, M., Risser, G., Epinat, C., Ferrière, C., Ricard, M., Olivier, C., Ruffinato, A., Lecog, H., Blancard, D., Bertrand, F., Nicot, A., Glandard, A., Molot, P.M. & Mas, P. (1991). Techniques d’inoculation artificielle du melon avec différents agents pathogènes pour la sélection de variétes résistantes. Informal technical Bulletin edited by INRA, Station d’Amélioration des Plantes maraîchères and Station de Pathologie végétale, Montfavet, France, p 8.
- Rouphael, Y., Cardarelli, M., & Colla, G. (2008). Yield, mineral composition, water relations, and water use efficiency of grafted mini-watermelon plants under deficit irrigation. HortScience, 43(3): 730-736.
- Reyad, N.E.H.A., El-Sayed, S.F., & Azoz, S.N. (2021). Evaluation of grafting using cucurbit interspesific hybrids to control Fusarium wilt in cucumber. Plant Cell Biotechnology. and Molecular. Biology 22(37&38): 50-63.
- Salehi-Mohammadi, R., Khasi, A., Lee, S. G., Huh, Y. C., Lee, J. M., & Delshad, M. (2009). Assessing survival and growth performance of Iranian melon to grafting onto Cucurbita rootstocks. Korean Journal of Horticulture Science and Technology, 27(1): 1-6.
- Sallaku, G., Sanden, H., Babaj, I., Kaciu, S., Balliu, A., & Rewald, B. (2019). Specific nutrient absorption rates of transplanted cucumber seedlings are highly related to RGR and influenced by grafting method, AMF inoculation and salinity. Scientia Horticulturae, 243: 177-188.
- Savvas, D., Ntatsi, G., Rodopoulou, M., & Goumenaki, F. (2013). Nutrient uptake concentrations in a cucumber crop grown in a closed hydroponic system under Mediterranean climatic conditions as influenced by irrigation schedule. In International Symposium on Growing Media and Soilless Cultivation 1034 (pp. 545-552).
- Schwarz, D., Rouphael, Y., Colla, G., & Venema, J. H. (2010). Grafting as a tool to improve tolerance of vegetables to abiotic stresses: Thermal stress, water stress and organic pollutants. Scientia Horticulturae, 127(2): 162-171.
- Shi, L., Du, N., Yuan, Y., Shu, S., Sun, J., & Guo, S. (2016). Vinegar residue compost as a growth substrate enhances cucumber resistance against the Fusarium wilt pathogen Fusarium oxysporum by regulating physiological and biochemical responses. Environmental Science and Pollution Research, 23: 18277-18287.
- Tamilselvi, N. A., & Pugalendhi, L. (2017). Graft compatibility and anatomical studies of bitter gourd (Momordica charantia L.) scions with cucurbitaceous rootstocks. International Journal of Current Microbiology and Applied Sciences, 6(2): 1801-1810.
- Tawnsend, G.R., & Heuberger, J.W. (1943). Methods for estimating losses caused by diseases in fungicide experiments. Plant Disease Reporter, 27: 340-343.
- Traka-Mavrona, E., Koutsika-Sotiriou, M., & Pritsa, T. (2000). Response of squash (Cucurbita spp.) as rootstock for melon (Cucumis melo L.). Scientia Horticulturae, 83(3-4): 353-362.
- Üre, H.S., & Aktaş, H. (2019). Farklı anaçlar üzerine aşılamanın hıyarlarda bitki büyümesi, verim ve kalite üzerine etkileri. Türk Bilim ve Mühendislik Dergisi, 1(1): 17-22 (in Turkish).
- Velkov, N., & Pevicharova, G. (2016). Effects of cucumber grafting on yield and fruit sensory characteristics. Zemdirbyste-Agriculture, 103: 405-410.
- Wang, H., Shuijiang, R., Lianping, W., & Zhongmin, F. (2004). Study on the control of fusarium wilt and phytophthora blight in cucumber by grafting. Acta Agriculturae Zhejiangensis, 16(5): 336-339.
- Zaki, M. H., Abd-el Raman, T. G., & Ayoub, F. H. (2018). Graftig Technique Onto Cucurbit Rootstocks For Control Soil Born Diseases And Enhance The Productive Behavior For melon (Cucumis melo) in Egypt. Menoufia Journal of Plant Production, 3(1): 63-84.
- Zink, F.W., & Gubler, W.D. (1985). Inheritance of Resistance in Muskmelon to Fusarium wilt. Journal of American Society. Horticultural Science, 110(5): 600-604.
Effectiveness of Four Rootstocks against Fusarium wilt, Yield and Quality in Cucumber
Year 2025,
Volume: 42 Issue: 1, 33 - 40
Rana Kurum
,
Mine Ünlü
,
Emine Gümrükcü
Abstract
Fusarium crown root rot caused by F. solani is one of the most important diseases that limiting cucumber cultivation all around the world. There is more than one way to deal with this disease, but sometimes these practises may be insufficient. For this reason, the use of resistant varieties and rootstocks gains importance in the control of soil-borne diseases. The objectives of this study are to determine the resistance of breeding materials to fusarium and to evaluate their rootstock performance and to reveal their effects on fruit yield and quality. To determine the Fusarium resistance level, 48 breeding materials were tested and four moderate resistant materials were grafted onto the hybrid Gordion variety. The effects of grafted plants on fruit yield and vegetative growth were evaluated. Early yield was also significantly higher in grafted plants than in the ungrafted control. Strongtosa had the highest fruit per plant, followed by RS 841 and 13×18 hybrid rootstock. Although higher yields were generally obtained in grafted plants compared to the control group. Additinally fruit length, fruit diameter, fruit shape index, fruit firmness and panel test were evaluated in grafted plants. These materials used as rootstocks increased plant growth and yield.
References
- Aslam, W., Noor, R.S., Hussain, F., Ameen, M., Ullah, S., & Chen, H. (2020). Evaluating morphological growth yield and postharvest fruit quality of cucumber (Cucumis sativus L.) grafted on cucurbitaceous rootstocks. Agriculture, 10(4):101.
- Balkaya, A., Güngör, B., Sarıbaş, Ş., & Yıldız, S. (2018). Determination of the effects of pumpkin rootstock on yield and fruit quality in mini watermelon cultivation. Yuzuncu Yıl University Journal of Agricultural Sciences 28:237-246.
- Bayoumi, Y., Abd-Alkarim, E., El-Ramady, H., El-Aidy, F., Hamed, E.S., Taha, N., Prohens, J., & Rakha, M. (2021). Grafting improves fruit yield of cucumber plants grown under combined heat and soil salinity stresses. Horticulturae 7(3): 61.
- Champaco, E.R., Martyn, R.D., & Miller, M.E. (1993). Comparison of Fusarium solani and F. oxysporum as causal agents of fruit rot and root rot of muskmelon. HortScience, 28(12): 1174–1177.
- Colla, G., Rouphael, Y., Rea, E., & Cardarelli, M. (2012). Grafting cucumber plants enhance tolerance to sodium chloride and sulfate salinization. Scientia Horticulturae, 135: 177-185.
- Colla, G., Rouphael, Y., Jawad, R., Kumar, P., Rea, E., & Cardarelli, M. (2013). The effectiveness of grafting to improve NaCl and CaCl2 tolerance in cucumber. Scientia Horticulturae, 164: 380-391.
- Davis, AR., Perkins-Veazie, P., Sakata, Y., Lopez-Galarza, S., Maroto, J.V., Lee, S.G., Huh, Y.C., Sun, Z., Miguel, A., King, S.R, Cohen R & Lee, J.M. (2008). Cucurbit grafting. Critical Reviews in Plant Sciences, 27(1): 50-74.
- El-Sayed, S.F., Hassan, H.A., Abdel-Wahab, A.A., & Gebrael, A.A. (2014). Effect of grafting on the cucumber yield and quality under high and low temperatures. Journal of Plant Production, 5(3): 443-456.
- Erper, İ., Balkaya, A., Türkkan, M., & Kılıç, G. (2015). Determination of fungal pathogens causing root and crown rot in winter squash (Cucurbita maxima Duch.) growing areas in The Black Sea Region and reactions of some winter squash genotypes against these pathogens. Anadolu Journal of Agricultural Sciences, 30: 15-23.
- Gordon, T. R., Okamoto, D., & Jacobson, D. J. (1989). Colonization of muskmelon and nonsusceptible crops by Fusarium oxysporum f. sp. melonis and other species of Fusarium. Phytopathology, 79(10): 1095-1100.
- Guan, W., Haseman, D., & Nowaskie, D. (2020). Rootstock evaluation for grafted cucumbers grown in high tunnels: yield and plant growth. HortScience 55(6): 914-919.
- Hamdi, N., Benfradj, N., Ben Salem, I.B., & Abad-Campos, P. (2019). Genetic diversity of Fusarium solani f.sp. cucurbitae the causal agent of crown and root rot of watermelon in Tunisia using ISSR markers. Novel Research in Microbiology Journal 3(1): 271-280.
- Huang, Y., Zhao, L., Kong, Q., Cheng, F., Niu, M., Xie, J., Muhammad Azher, N. & Bie, Z. (2016). Comprehensive mineral nutrition analysis of watermelon grafted onto two different rootstocks. Horticultural Plant Journal, 2(2): 105-113.
- Jabnoun-Khiareddine, H., Abdallah, R.A.B., Nefzi, A., Ayed, F., & Daami-Remadi, M. (2019). Grafting tomato cultivars for soilborne diseases uppression and plant growth and yield improvement. Journal of Plant Pathology and Microbiology, 10(1): 473.
- Kamel, S.M., & Taher, D, I. (2021). Grafting cucumber onto interspesific Cucurbita hybrid rootstocks to improve productivity and control wilt disease caused by Fusarium oxysporum f.sp. cucumerinum. Journal of Plant Production, 12(1): 41-47.
- Karaağaç, O., & Balkaya, A. (2013). Interspecific hybridization and hybrid seed yield of winter squash (Cucurbita maxima Duch.) and pumpkin (Cucurbitamoschata Duch.) lines for rootstock breeding. Scientia Horticulturae, 149: 9-12.
- Khapte, P. S., Kumar, P., Panwar, N. R., Burman, U., Rouphael, Y., & Kumar, P. (2021). Combined influence of grafting and type of protected environment structure on agronomic and physiological traits of single-and cluster-fruit-bearing cucumber hybrids. Agronomy, 11(8): 1604.
- King, S.R., Davis, A.R., Zhang, X., & Crosby, K. (2010). Genetics, breeding and selection of rootstocks for Solanaceae and Cucurbitaceae. Scientia Horticulturae, 127(2): 106-111.
- Kyriacou, M.C., Soteriou, G.A., Rouphael, Y., Siomos, A.S., & Gerasopoulos, D. (2016). Configuration of watermelon fruit quality in response to rootstock‐mediated harvest maturity and postharvest storage. Journal of the Science of Food and Agriculture, 96(7): 2400-2409.
- Kyriacou, M.C., Rouphael, Y., Colla, G., Zrenner, R., & Schwarz, D. (2017). Vegetable grafting: The implications of a growing agronomic imperative for vegetable fruit quality and nutritive value. Frontiers in Plant Science, 8: 741.
- Kyriacou, M.C., Colla, G., & Rouphael, Y. (2020). Grafting as a sustainable means for securing yield stability and quality in vegetable crops. Agronomy, 10(12): 1945.
Lee, J.M., Kubota, C., Tsao, S.J., Bie, Z., Echevarria, P. H., Morra, L., & Oda, M. (2010). Current status of vegetable grafting: Diffusion, grafting techniques, automation. Scientia Horticulturae, 127(2): 93-105.
- Lim, J.H., Kim, I.S., Choi, D.J., Kwon, Y.S., Yoon, J.T., Choi, B.S., Lee, W.S., & Oh, J.Y. (1994). Studies on grafted affinity, growth characteristics and yield between cucumber (Cucumis sativa) and the rootstock Sicyos angulatus L. RDA Journal of Agricultural Science, Horticulture, 36(1): 388-392.
- Louws, F.J., Rivard, C.L., & Kubota, C. (2010). Grafting fruiting vegetables to manage soilborne pathogens, foliar pathogens, arthropods and weeds. Scientia Horticulturae, 127(2): 127-146.
- Martyn, R.D., & McLaughlin, R.J. (1983). Effects of inoculum concentration on the apparent resistance of watermelon to Fusarium oxysporum f. sp. niveum. Plant Disease, 67(5): 493-495.
- Németh, D., Balázs, G., Bodor, Z., Zaukuu, J.L.Z., Kovács, Z., & Kappel, N. (2020). Food quality attributes of melon (Cucumis melo L.) influenced by grafting. Progress in Agricultural Engineering Sciences, 16(S1): 53-66.
- Noor, R.S., Wang, Z., Umair, M., Yaseen, M., Ameen, M., Rehman, S.U., Khan, M.U., Imran, M., Ahmed, W., & Sun, Y. (2019). Interactive effects of grafting techniques and scion-rootstocks combinations on vegetative growth, yield and quality of cucumber (Cucumis sativus L.). Agronomy, 9(6): 288.
- Oda, M., Tsuji, K., & Sasaki, H. (1993). Effect of hypocotyl morphology on survival rate and growth of cucumber seedlings grafted on Cucurbita spp. Japon Agricultural Research Quarterly, 26: 259-263.
- Papadaki, A.M., Bletsos, F.A., Menexes, G., İsmail, A.M., & Lagopodi, A.L. (2017). Effectiveness of six rootstocks for Fusarium wilt control in cucumber and their influence on growth yield and fruit quality characteristics. Journal of Plant Pathology, 99(3): 643-650.
- Perez Hernandez, A., Rocha, L.O., Porcel-Rodriguez, E., Summerell, B.A., Liew, E.C., & Gomez-Vazquez, J.M. (2020). Pathogenic, morphological and phylogenetic characterization of Fusarium solani f. sp. cucurbitae isolates from cucurbits in Almeria Province, Spain. Plant Disease, 104(5): 1465-1476.
- Pitrat, M., Risser, G., Epinat, C., Ferrière, C., Ricard, M., Olivier, C., Ruffinato, A., Lecog, H., Blancard, D., Bertrand, F., Nicot, A., Glandard, A., Molot, P.M. & Mas, P. (1991). Techniques d’inoculation artificielle du melon avec différents agents pathogènes pour la sélection de variétes résistantes. Informal technical Bulletin edited by INRA, Station d’Amélioration des Plantes maraîchères and Station de Pathologie végétale, Montfavet, France, p 8.
- Rouphael, Y., Cardarelli, M., & Colla, G. (2008). Yield, mineral composition, water relations, and water use efficiency of grafted mini-watermelon plants under deficit irrigation. HortScience, 43(3): 730-736.
- Reyad, N.E.H.A., El-Sayed, S.F., & Azoz, S.N. (2021). Evaluation of grafting using cucurbit interspesific hybrids to control Fusarium wilt in cucumber. Plant Cell Biotechnology. and Molecular. Biology 22(37&38): 50-63.
- Salehi-Mohammadi, R., Khasi, A., Lee, S. G., Huh, Y. C., Lee, J. M., & Delshad, M. (2009). Assessing survival and growth performance of Iranian melon to grafting onto Cucurbita rootstocks. Korean Journal of Horticulture Science and Technology, 27(1): 1-6.
- Sallaku, G., Sanden, H., Babaj, I., Kaciu, S., Balliu, A., & Rewald, B. (2019). Specific nutrient absorption rates of transplanted cucumber seedlings are highly related to RGR and influenced by grafting method, AMF inoculation and salinity. Scientia Horticulturae, 243: 177-188.
- Savvas, D., Ntatsi, G., Rodopoulou, M., & Goumenaki, F. (2013). Nutrient uptake concentrations in a cucumber crop grown in a closed hydroponic system under Mediterranean climatic conditions as influenced by irrigation schedule. In International Symposium on Growing Media and Soilless Cultivation 1034 (pp. 545-552).
- Schwarz, D., Rouphael, Y., Colla, G., & Venema, J. H. (2010). Grafting as a tool to improve tolerance of vegetables to abiotic stresses: Thermal stress, water stress and organic pollutants. Scientia Horticulturae, 127(2): 162-171.
- Shi, L., Du, N., Yuan, Y., Shu, S., Sun, J., & Guo, S. (2016). Vinegar residue compost as a growth substrate enhances cucumber resistance against the Fusarium wilt pathogen Fusarium oxysporum by regulating physiological and biochemical responses. Environmental Science and Pollution Research, 23: 18277-18287.
- Tamilselvi, N. A., & Pugalendhi, L. (2017). Graft compatibility and anatomical studies of bitter gourd (Momordica charantia L.) scions with cucurbitaceous rootstocks. International Journal of Current Microbiology and Applied Sciences, 6(2): 1801-1810.
- Tawnsend, G.R., & Heuberger, J.W. (1943). Methods for estimating losses caused by diseases in fungicide experiments. Plant Disease Reporter, 27: 340-343.
- Traka-Mavrona, E., Koutsika-Sotiriou, M., & Pritsa, T. (2000). Response of squash (Cucurbita spp.) as rootstock for melon (Cucumis melo L.). Scientia Horticulturae, 83(3-4): 353-362.
- Üre, H.S., & Aktaş, H. (2019). Farklı anaçlar üzerine aşılamanın hıyarlarda bitki büyümesi, verim ve kalite üzerine etkileri. Türk Bilim ve Mühendislik Dergisi, 1(1): 17-22 (in Turkish).
- Velkov, N., & Pevicharova, G. (2016). Effects of cucumber grafting on yield and fruit sensory characteristics. Zemdirbyste-Agriculture, 103: 405-410.
- Wang, H., Shuijiang, R., Lianping, W., & Zhongmin, F. (2004). Study on the control of fusarium wilt and phytophthora blight in cucumber by grafting. Acta Agriculturae Zhejiangensis, 16(5): 336-339.
- Zaki, M. H., Abd-el Raman, T. G., & Ayoub, F. H. (2018). Graftig Technique Onto Cucurbit Rootstocks For Control Soil Born Diseases And Enhance The Productive Behavior For melon (Cucumis melo) in Egypt. Menoufia Journal of Plant Production, 3(1): 63-84.
- Zink, F.W., & Gubler, W.D. (1985). Inheritance of Resistance in Muskmelon to Fusarium wilt. Journal of American Society. Horticultural Science, 110(5): 600-604.