Araştırma Makalesi
BibTex RIS Kaynak Göster

Ticari Mikrobiyal Gübre Sim Derma (Trichoderma harzianum, Kuen 1585) Uygulamasının Ispanakta Çimlenme, Gelişme ve Verim Üzerine Etkisi

Yıl 2018, Cilt: 5 Sayı: 4, 482 - 491, 18.10.2018
https://doi.org/10.30910/turkjans.471290

Öz

Bu çalışma, Trichoderma harzianum suşusu içeren bir
ticari mikrobiyal gübre olan Sim Derma
Ò’nın farklı
dozlarının (0, 5, 10, 15 ve 20 g.L-1) topraksız ortamda yetiştirilen
ıspanak (Spinacia oleracea L.)’ta
çimlenme, gelişim ve verim üzerine etkilerini araştırmak amacıyla
yürütülmüştür. Birinci aşamada, mikrobiyal gübre uygulanan ıspanak tohumları 20
ºC’de çimlenme ve çıkış testlerine tabi tutulmuştur. Araştırmanın ikinci
aşamasında, mikrobiyal gübrenin ıspanakta gelişim ve verim üzerine etkisini
ortaya koymak amacıyla hasat aşamasına gelmiş bitkilerde yaprak boyu, yaprak
eni, yaprak sayısı, yaprak alanı, bitki boyu, göreceli yaprak klorofil içeriği
(SPAD), suda çözünen kuru madde miktarı, gövde yaş ve kuru ağırlıkları, kök yaş
ve kuru ağırlıkları ve verim değerleri belirlenmiştir. Araştırma sonuçları,
mikrobiyal gübre uygulamalarının ıspanakta topraksız koşullarda bitki gelişimi
ve verimini olumlu olarak etkilediği ortaya koymuştur. Mevcut çalışmadan elde
edilen bulgular T. harzianum
uygulamalarının (10, 15 ve 20 g.L-1) kontrole göre ıspanakta
çimlenme ve çıkış oranı, bitki boyu, yaprak alanı, kök uzunluğu, kök yaş
ağırlığı, kök kuru ağırlığı, gövde yaş ağırlığı, gövde kuru ağırlığı, klorofil
içeriği (10 g.L-1 hariç) ve verimi arttırdığını göstermiştir. Genel
olarak 15 g.L-1 dozunun öne çıktığı görülmüştür.

Kaynakça

  • Aksoy, U. 1999. Ekolojik Tarımdaki Gelişmeler. Ekolojik tarım. Ekolojik Tarım Organizasyonu Derneği, Emre Basımevi, İzmir, 35s.
  • Altintas, S., Bal, U. 2005. Trichoderma harzianum application increases cucumber (Cucumis sativus) yield in unheated greenhouse. Journal of Applied Horticulture, 7(1): 25-28.
  • Altomare, C., Norvell, W.A., Björkman, J., Harman, G.E. 1999. Solubilization of phosphates and micronutrients by the plant growth promoting and biocontrol fungus Trichoderma harzianum Rifai 1295-22. Applied Environmental Microbiology, 65(7): 2926-2933.
  • Anonim. 2004. Tarımda Kullanılan Organik, Organomineral, Özel, Mikrobiyal ve Enzim İçerikli Organik Gübreler ile Toprak Düzenleyicilerin Üretimi, İthalatı, İhracatı, Piyasaya Arzı ve Denetimine Dair Yönetmelik. Tarım ve Köyişleri Bakanlığı, Resmi Gazete No: 25452.
  • Asaduzzaman, M., Alam, M.J., Islam, M.M. 2010. Effect of Trichoderma on seed germination and seedling parameters of chili. Journal of Science Foundation, 8(1&2): 141-150.
  • Baker, R. 1989. Improved Trichoderma spp. for promoting crop productivity. Trends in Biotechnology, 7: 34-38.
  • Bal, U., Altintas, S. 2006. Effect of Trichoderma harzianum on the yield and fruit quality of tomato plants (Lycopersicon esculentum Mill.) grown in an unheated greenhouse. Australian Journal of Experimental Agriculture, 46(1): 131-136.
  • Bal, U., Altintas, S. 2008. Effects of Trichoderma harzianum on lettuce in protected cultivation. Journal of Central European Agriculture, 9(1): 63-70.
  • Bell JV 1996. Plant Growth Promotion by Trichoderma Species MSc., Lincoln University, Christchurch, Canterbury, New Zealand, 149s. Björkman, T., Blanchard, L.M., Harman, G.E. 1998. Growth enhancement of shrunken-2 (sh2) sweet corn by Trichoderma harzianum 1295-22: Effect of environmental stress. HortScience, 123(1): 35-40.
  • Brewer, M.T., Larkin, R.P. 2005. Efficacy of several potential biocontrol organisms against Rhizoctonia solani on potato. Crop Protection, 24: 939-950.
  • Buyer, J.S., Roberts, D.P., Russek-Cohen, E. 2002. Soil and plant effects on microbial community structure. Canadian Journal of Microbiology, 48: 955-964.
  • Cemeroğlu, B. 1992. Meyve ve sebze işleme endüstrisinde temel analiz metotları. Biltav Üniversite Kitapları Serisi, No:02-2, s. 381, Ankara.
  • Chang, Y.C., Baker, R., Kleifeld, O., Chet, I. 1986. Increased growth of plants in the presence of the biological control agent Trichoderma harzianum. Plant Disease, 70: 145-148.
  • Chen, S.K., Edwards, C.A., Subler, S. 2001. Effects of the fungicides benzomyl, captan and chlorothalonil on soil microbial activity and nitrogen dynamics in laboratory incubations. Soil Biology & Biochemistry, 33: 1971-1980.
  • Chitwood, J., Shi, A., Mou, B., Evans, M., Clark, J., Motes, D., Chen, P., Hensley, D. 2016. Population structure and association analysis of bolting, plant height, and leaf erectness in spinach. Hortscience, 51(5): 481-486. 2016.
  • Datnoff, L.E., Pernezny, K.L. 2001. Paenibacillus macerans and Trichoderma harzianum enhance transplant growth and suppress fusarium crown and root rot in Florida tomato production. 2001 Caribbean Division Meeting Abstracts, June 11-15, 2001 / La Habana, Cuba. Publication No. P-2002-0025-Cra.
  • Elad, Y., Kapat, A 1999. The role of Trichoderma harzianum protease in the biocontrol of Botrytis cinerea. Europian journal of Plant Pathology, 105: 177-189.
  • Hanson, L.E. 2000. Reduction of Verticillium wilts symptoms in cotton following seed treatment with Trichoderma virens. The Journal of Cotton Science, 4: 224-231.
  • Harman, G.E., Howell, C.R., Viterbo, A., Chet, I., Lorito, M. 2004. Trichoderma Species: Opportunistic, avirulent plant symbionts. Nature Reviews Microbiology, 2: 43-56.
  • Hexon, A.C., Lourdes, M.R., Carlos, C.P., Jose, L.B. 2009. Trichoderma virens, a plant beneficial fungus, enhances biomass production and promotes lateral root growth through an auxin-dependent mechanism in Arabidopsis. Plant Physiology, 149: 1579-1592.
  • Howell, C.R. 2003. Mechanisms employed by Trichoderma species in the biological control of plant diseases: The history and evolution of current concepts. Plant Disease, 87(1): 4-10.
  • Jamal Uddin, A.F.M., Hussain, M.S., Rahman, S., Ahmad, H., Roni, M.Z.K. 2017. Potential of Trichoderma as consistent plant growth stimulators of strawberry. International Journal of Business, Social and Scientific Research, 5(2): 155-158.
  • Kaveh, H., Jartoodeh, S.V., Aruee, H., Mazhabi, M. 2011. Would Trichoderma affect seed germination and seedling quality of two muskmelon cultivars, khatooni and qasri and increase their transplanting success? Journal of Biological & Environmental Sciences, 5(15): 169-175.
  • Kleifeld, O., Chet, I. 1992. Trichoderma harzianum interaction with plants and effects on growth response. Plant and Soil, 144: 267-272.
  • Kumar, N. 2017. Occurrence and distribution of tomato diseases and evaluation of bio-efficacy of Trichoderma harzianum on growth and yield components of tomato. Nigerian Journal of Agriculture, Food and Environment, 13(2): 37-44.
  • Li, R-X., Cai, F., Pang, G., Shen, Q-R., Li, R., Chen, W. 2015. Solubilisation of phosphate and micronutrients by Trichoderma harzianum and ıts relationship with the promotion of tomato plant growth. PLoS ONE, 10(6): e0130081.
  • Lo, C.T., Lin, C.Y. 2002. Screening strains of Trichoderma spp. for plant growth enhancement in Taiwan. Plant Pathology Bulletin, 11: 215-220. Mastouri, F., Bjorkman, T., Harman, G.E. 2010. Seed treatment with Trichoderma harzianum alleviates biotic, abiotic, and physio-logical stresses in germinating seeds and seedlings. Phytopathology, 100: 1213-1221.
  • McGovern, R.J., Datnoff, L.E., Tripp, L. 1992. Effect of mixed infection and irrigation method on colonization of tomato roots by Trichoderma harzianum and Glomus intraradices. Proceedings of the Florida State Horticultural Society, 105: 361-363.
  • Midmore, D.J. 1993. Agronomic modification of resource use and intercrop productivity. Field Crops Research, 34: 357-380.
  • Monte, E. 2001. Understanding Trichoderma between biotechnology and microbial ecology. International Microbiology, 4: 1-4.
  • Montealegre, J., Herrera, R., Velásquez, J., Silva, P., Besoain, X., Pérez, L. 2005. Biocontrol of root and crown rot in tomatoes under greenhouse conditions using Trichoderma harzianum and Paenibacillus lentimorbus. Additional effect of solarization. Electronic Journal of Biotechnology, 8(3): 249-257.
  • Nieto-Jacobo, M.F., Steyaert, J.M., Salazar-Badillo, F.B., Nguyen, D.V., Rostás, M., Braithwaite, M., Mendoza-Mendoza, A. 2017. Environmental growth conditions of Trichoderma spp. affects indole acetic acid derivatives, volatile organic compounds, and plant growth promotion. Frontiers in Plant Science, 8: 102.
  • Nzanza, B., Marais, D., Soundy, P. 2011. Tomato (Solanum lycopersicum L.) seedling growth and development as influenced by Trichoderma harzianum and arbuscular mycorrhizal fungi. African Journal of Microbiology Research, 5(4): 425-431.
  • Ousley, M.A., Lynch, J.M., Whipps, J.M., 2004. Potential of Trichoderma spp. as consistent plant growth. Biology and Fertility of Soils, 17(2): 85-90.
  • Ozbay, N., Newman, S.E. 2004. Effect of T. harzianum strains to colonize tomato roots and improve transplant growth. Pakistan Journal of Biological Sciences, 7: 253-257.
  • Ozbay, N., Newman, S.E., Brown, W.M. 2004. Evaluation of Trichoderma harzianum strains to control crown and root rot of greenhouse fresh market tomatoes. Acta Horticulturae, 635: 79-85.
  • Özbay, N., Emrebaş, N., Akıncı, S. 2010. Topraksız ortamda roka ve tere yetiştiriciliğinde mikrobiyal gübre (Trichoderma harzianum, KUEN 1585) uygulamasının bitki gelişimi ve verimi üzerine etkileri. 5. Ulusal Gübre ve Bitki Besleme Kongresi 15-17 Eylül 2010, İzmir.
  • Özkale, E. 2017. Tarımsal üretimde yararlanılan Trichoderma ürünleri ve metabolitleri. International Journal of Secondary Metabolite, 4(2): 123-136.
  • Põldma, P., Albrecht, A., Merivee, A. 2002. Influence of Fungus Trichoderma viride on the yield of cucumber in greenhouse conditions. Proceedings of the Conference on Scientific Aspects of Organic Farming Jelgava, Latvia 21-22 March 2002, 176-180.
  • Põldma, P., Vabrit, S., Merivee., A., Suigusaar, K. 2008. Influence of Trichoderma viride-inoculated growing substrate on the growth and yield of lettuce (Lactuca sativa L.). Acta Horticulturae, 779: 85-90.
  • Rabeendran, N., Moot, D.J., Jones, E.E., Stewart, A., 2000. Inconsistent growth promotion of cabbage and lettuce from Trichoderma isolates. New Zealand Plant Protection, 53: 143-146.
  • Reddy, B.N., Saritha, K., Hindumathi, A. 2017. Potential use of Trichoderma species as promising plant growth stimulator in tomato (Lycopersicum esculantum L.). (Microbial Biotechnology: Technological Challenges and Developmental Trends, Apple Academic Press, Canada: Ed. Bhukya, B., Tangutur, A.D.), 185-198.
  • Sönmez, İ, Kaplan, M., Sönmez, S. 2008. Kimyasal gübrelerin çevre kirliliği üzerine etkileri ve çözüm önerileri. Batı Akdeniz Tarımsal Araştırma Enstitüsü Derim Dergisi, 25(2): 24-34.
  • Sundaramoorthy, S., Balabaskar, P. 2013. Biocontrol efficacy of Trichoderma spp. against wilt of tomato caused by Fusarium oxysporum f. sp. lycopersici. Journal of Applied Biotechnology, 1(3): 36-40.
  • Tran, T.T. 1998. Antagonistic effectiveness of Trichoderma against plant fungal pathogens. Plant Protection, 4: 35-38.
  • Vessey, J.K. 2003. Plant growth promoting rhizobacteria as bio fertilizers. Plant and Soil, 255: 571-586.
  • Yedidia , I., Benhamou, N., Chet, I. 1999. Induction of defense response in cucumber plants (Cucumis sativus L.) by the biocontrol agent Trichoderma harzianum. Applied and Environmental Microbiology, 65: 1061-1070.
  • Yedidia, I., Srivastva, A.K., Kapulnik, Y., Chet, I. 2001. Effect of Trichoderma harzianum on microelement concentrations andincreased growth of cucumber plants. Plant Soil, 235: 235-242.
  • Zengin, M. 2007. Organik Tarım. Hasad Yayıncılık Limitet Şirketi, İstanbul 136s.

Effect of a Commercial Microbial Fertilizer Sim Derma (Trichoderma harzianum, Kuen 1585) on Germination, Growth and Yield of Spinach

Yıl 2018, Cilt: 5 Sayı: 4, 482 - 491, 18.10.2018
https://doi.org/10.30910/turkjans.471290

Öz

This study was carried out to investigate
effects of a commercial microbial fertilizer Sim Derma
Ò containing Trichoderma harzianum (0, 5, 10, 15, and
20 g.L-1) on germination, growth and yield of spinach (Spinacia oleracea L.) grown in soilless
mixture. In the first stage of the research, spinach seeds applied with
microbial fertilizer were subjected to germination and emergence tests at 20
°C. In the second stage of the research (at harvest), leaf length, leaf width,
number of leaves, leaf area, plant height, leaf relative chlorophyll content
(SPAD), water soluble solids content, leaf fresh and dry weights, root fresh
and dry weights, and yield values were determined to reveal the effects
microbial fertilizer on the growth and yield of spinach. Overall results showed that microbial
fertilizer positively
affected plant growth and yield of spinach
grown in soilless
mixture. The results of the current study showed that T. harzianum applications (10, 15 ve 20 g.L-1) increased
germination and emergence percentages, plant height, leaf area, root length,
root fresh weight, root dry weight, stem fresh weight, stem dry weight,
chlorophyll content (except for10 g.L-1), and yield of spinach in
respect to the control.
In general, 15 g.L-1 dose was prominent.

Kaynakça

  • Aksoy, U. 1999. Ekolojik Tarımdaki Gelişmeler. Ekolojik tarım. Ekolojik Tarım Organizasyonu Derneği, Emre Basımevi, İzmir, 35s.
  • Altintas, S., Bal, U. 2005. Trichoderma harzianum application increases cucumber (Cucumis sativus) yield in unheated greenhouse. Journal of Applied Horticulture, 7(1): 25-28.
  • Altomare, C., Norvell, W.A., Björkman, J., Harman, G.E. 1999. Solubilization of phosphates and micronutrients by the plant growth promoting and biocontrol fungus Trichoderma harzianum Rifai 1295-22. Applied Environmental Microbiology, 65(7): 2926-2933.
  • Anonim. 2004. Tarımda Kullanılan Organik, Organomineral, Özel, Mikrobiyal ve Enzim İçerikli Organik Gübreler ile Toprak Düzenleyicilerin Üretimi, İthalatı, İhracatı, Piyasaya Arzı ve Denetimine Dair Yönetmelik. Tarım ve Köyişleri Bakanlığı, Resmi Gazete No: 25452.
  • Asaduzzaman, M., Alam, M.J., Islam, M.M. 2010. Effect of Trichoderma on seed germination and seedling parameters of chili. Journal of Science Foundation, 8(1&2): 141-150.
  • Baker, R. 1989. Improved Trichoderma spp. for promoting crop productivity. Trends in Biotechnology, 7: 34-38.
  • Bal, U., Altintas, S. 2006. Effect of Trichoderma harzianum on the yield and fruit quality of tomato plants (Lycopersicon esculentum Mill.) grown in an unheated greenhouse. Australian Journal of Experimental Agriculture, 46(1): 131-136.
  • Bal, U., Altintas, S. 2008. Effects of Trichoderma harzianum on lettuce in protected cultivation. Journal of Central European Agriculture, 9(1): 63-70.
  • Bell JV 1996. Plant Growth Promotion by Trichoderma Species MSc., Lincoln University, Christchurch, Canterbury, New Zealand, 149s. Björkman, T., Blanchard, L.M., Harman, G.E. 1998. Growth enhancement of shrunken-2 (sh2) sweet corn by Trichoderma harzianum 1295-22: Effect of environmental stress. HortScience, 123(1): 35-40.
  • Brewer, M.T., Larkin, R.P. 2005. Efficacy of several potential biocontrol organisms against Rhizoctonia solani on potato. Crop Protection, 24: 939-950.
  • Buyer, J.S., Roberts, D.P., Russek-Cohen, E. 2002. Soil and plant effects on microbial community structure. Canadian Journal of Microbiology, 48: 955-964.
  • Cemeroğlu, B. 1992. Meyve ve sebze işleme endüstrisinde temel analiz metotları. Biltav Üniversite Kitapları Serisi, No:02-2, s. 381, Ankara.
  • Chang, Y.C., Baker, R., Kleifeld, O., Chet, I. 1986. Increased growth of plants in the presence of the biological control agent Trichoderma harzianum. Plant Disease, 70: 145-148.
  • Chen, S.K., Edwards, C.A., Subler, S. 2001. Effects of the fungicides benzomyl, captan and chlorothalonil on soil microbial activity and nitrogen dynamics in laboratory incubations. Soil Biology & Biochemistry, 33: 1971-1980.
  • Chitwood, J., Shi, A., Mou, B., Evans, M., Clark, J., Motes, D., Chen, P., Hensley, D. 2016. Population structure and association analysis of bolting, plant height, and leaf erectness in spinach. Hortscience, 51(5): 481-486. 2016.
  • Datnoff, L.E., Pernezny, K.L. 2001. Paenibacillus macerans and Trichoderma harzianum enhance transplant growth and suppress fusarium crown and root rot in Florida tomato production. 2001 Caribbean Division Meeting Abstracts, June 11-15, 2001 / La Habana, Cuba. Publication No. P-2002-0025-Cra.
  • Elad, Y., Kapat, A 1999. The role of Trichoderma harzianum protease in the biocontrol of Botrytis cinerea. Europian journal of Plant Pathology, 105: 177-189.
  • Hanson, L.E. 2000. Reduction of Verticillium wilts symptoms in cotton following seed treatment with Trichoderma virens. The Journal of Cotton Science, 4: 224-231.
  • Harman, G.E., Howell, C.R., Viterbo, A., Chet, I., Lorito, M. 2004. Trichoderma Species: Opportunistic, avirulent plant symbionts. Nature Reviews Microbiology, 2: 43-56.
  • Hexon, A.C., Lourdes, M.R., Carlos, C.P., Jose, L.B. 2009. Trichoderma virens, a plant beneficial fungus, enhances biomass production and promotes lateral root growth through an auxin-dependent mechanism in Arabidopsis. Plant Physiology, 149: 1579-1592.
  • Howell, C.R. 2003. Mechanisms employed by Trichoderma species in the biological control of plant diseases: The history and evolution of current concepts. Plant Disease, 87(1): 4-10.
  • Jamal Uddin, A.F.M., Hussain, M.S., Rahman, S., Ahmad, H., Roni, M.Z.K. 2017. Potential of Trichoderma as consistent plant growth stimulators of strawberry. International Journal of Business, Social and Scientific Research, 5(2): 155-158.
  • Kaveh, H., Jartoodeh, S.V., Aruee, H., Mazhabi, M. 2011. Would Trichoderma affect seed germination and seedling quality of two muskmelon cultivars, khatooni and qasri and increase their transplanting success? Journal of Biological & Environmental Sciences, 5(15): 169-175.
  • Kleifeld, O., Chet, I. 1992. Trichoderma harzianum interaction with plants and effects on growth response. Plant and Soil, 144: 267-272.
  • Kumar, N. 2017. Occurrence and distribution of tomato diseases and evaluation of bio-efficacy of Trichoderma harzianum on growth and yield components of tomato. Nigerian Journal of Agriculture, Food and Environment, 13(2): 37-44.
  • Li, R-X., Cai, F., Pang, G., Shen, Q-R., Li, R., Chen, W. 2015. Solubilisation of phosphate and micronutrients by Trichoderma harzianum and ıts relationship with the promotion of tomato plant growth. PLoS ONE, 10(6): e0130081.
  • Lo, C.T., Lin, C.Y. 2002. Screening strains of Trichoderma spp. for plant growth enhancement in Taiwan. Plant Pathology Bulletin, 11: 215-220. Mastouri, F., Bjorkman, T., Harman, G.E. 2010. Seed treatment with Trichoderma harzianum alleviates biotic, abiotic, and physio-logical stresses in germinating seeds and seedlings. Phytopathology, 100: 1213-1221.
  • McGovern, R.J., Datnoff, L.E., Tripp, L. 1992. Effect of mixed infection and irrigation method on colonization of tomato roots by Trichoderma harzianum and Glomus intraradices. Proceedings of the Florida State Horticultural Society, 105: 361-363.
  • Midmore, D.J. 1993. Agronomic modification of resource use and intercrop productivity. Field Crops Research, 34: 357-380.
  • Monte, E. 2001. Understanding Trichoderma between biotechnology and microbial ecology. International Microbiology, 4: 1-4.
  • Montealegre, J., Herrera, R., Velásquez, J., Silva, P., Besoain, X., Pérez, L. 2005. Biocontrol of root and crown rot in tomatoes under greenhouse conditions using Trichoderma harzianum and Paenibacillus lentimorbus. Additional effect of solarization. Electronic Journal of Biotechnology, 8(3): 249-257.
  • Nieto-Jacobo, M.F., Steyaert, J.M., Salazar-Badillo, F.B., Nguyen, D.V., Rostás, M., Braithwaite, M., Mendoza-Mendoza, A. 2017. Environmental growth conditions of Trichoderma spp. affects indole acetic acid derivatives, volatile organic compounds, and plant growth promotion. Frontiers in Plant Science, 8: 102.
  • Nzanza, B., Marais, D., Soundy, P. 2011. Tomato (Solanum lycopersicum L.) seedling growth and development as influenced by Trichoderma harzianum and arbuscular mycorrhizal fungi. African Journal of Microbiology Research, 5(4): 425-431.
  • Ousley, M.A., Lynch, J.M., Whipps, J.M., 2004. Potential of Trichoderma spp. as consistent plant growth. Biology and Fertility of Soils, 17(2): 85-90.
  • Ozbay, N., Newman, S.E. 2004. Effect of T. harzianum strains to colonize tomato roots and improve transplant growth. Pakistan Journal of Biological Sciences, 7: 253-257.
  • Ozbay, N., Newman, S.E., Brown, W.M. 2004. Evaluation of Trichoderma harzianum strains to control crown and root rot of greenhouse fresh market tomatoes. Acta Horticulturae, 635: 79-85.
  • Özbay, N., Emrebaş, N., Akıncı, S. 2010. Topraksız ortamda roka ve tere yetiştiriciliğinde mikrobiyal gübre (Trichoderma harzianum, KUEN 1585) uygulamasının bitki gelişimi ve verimi üzerine etkileri. 5. Ulusal Gübre ve Bitki Besleme Kongresi 15-17 Eylül 2010, İzmir.
  • Özkale, E. 2017. Tarımsal üretimde yararlanılan Trichoderma ürünleri ve metabolitleri. International Journal of Secondary Metabolite, 4(2): 123-136.
  • Põldma, P., Albrecht, A., Merivee, A. 2002. Influence of Fungus Trichoderma viride on the yield of cucumber in greenhouse conditions. Proceedings of the Conference on Scientific Aspects of Organic Farming Jelgava, Latvia 21-22 March 2002, 176-180.
  • Põldma, P., Vabrit, S., Merivee., A., Suigusaar, K. 2008. Influence of Trichoderma viride-inoculated growing substrate on the growth and yield of lettuce (Lactuca sativa L.). Acta Horticulturae, 779: 85-90.
  • Rabeendran, N., Moot, D.J., Jones, E.E., Stewart, A., 2000. Inconsistent growth promotion of cabbage and lettuce from Trichoderma isolates. New Zealand Plant Protection, 53: 143-146.
  • Reddy, B.N., Saritha, K., Hindumathi, A. 2017. Potential use of Trichoderma species as promising plant growth stimulator in tomato (Lycopersicum esculantum L.). (Microbial Biotechnology: Technological Challenges and Developmental Trends, Apple Academic Press, Canada: Ed. Bhukya, B., Tangutur, A.D.), 185-198.
  • Sönmez, İ, Kaplan, M., Sönmez, S. 2008. Kimyasal gübrelerin çevre kirliliği üzerine etkileri ve çözüm önerileri. Batı Akdeniz Tarımsal Araştırma Enstitüsü Derim Dergisi, 25(2): 24-34.
  • Sundaramoorthy, S., Balabaskar, P. 2013. Biocontrol efficacy of Trichoderma spp. against wilt of tomato caused by Fusarium oxysporum f. sp. lycopersici. Journal of Applied Biotechnology, 1(3): 36-40.
  • Tran, T.T. 1998. Antagonistic effectiveness of Trichoderma against plant fungal pathogens. Plant Protection, 4: 35-38.
  • Vessey, J.K. 2003. Plant growth promoting rhizobacteria as bio fertilizers. Plant and Soil, 255: 571-586.
  • Yedidia , I., Benhamou, N., Chet, I. 1999. Induction of defense response in cucumber plants (Cucumis sativus L.) by the biocontrol agent Trichoderma harzianum. Applied and Environmental Microbiology, 65: 1061-1070.
  • Yedidia, I., Srivastva, A.K., Kapulnik, Y., Chet, I. 2001. Effect of Trichoderma harzianum on microelement concentrations andincreased growth of cucumber plants. Plant Soil, 235: 235-242.
  • Zengin, M. 2007. Organik Tarım. Hasad Yayıncılık Limitet Şirketi, İstanbul 136s.
Toplam 49 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Bölüm Araştırma Makaleleri
Yazarlar

Nusret Özbay

Muharrem Ergun Bu kişi benim

Ali Rıza Demirkıran Bu kişi benim

Yayımlanma Tarihi 18 Ekim 2018
Gönderilme Tarihi 31 Mayıs 2018
Yayımlandığı Sayı Yıl 2018 Cilt: 5 Sayı: 4

Kaynak Göster

APA Özbay, N., Ergun, M., & Demirkıran, A. R. (2018). Ticari Mikrobiyal Gübre Sim Derma (Trichoderma harzianum, Kuen 1585) Uygulamasının Ispanakta Çimlenme, Gelişme ve Verim Üzerine Etkisi. Türk Tarım Ve Doğa Bilimleri Dergisi, 5(4), 482-491. https://doi.org/10.30910/turkjans.471290