Domateste Kök Ur Nematodu Mücadelesinde Kitosanın Toprak ve Yaprak Uygulamaları
Author:
GÖZE ÖZDEMİR Fatma Gül1ORCID, ÖZEK Tuğçe2ORCID, NDAYIRAGIJE Jean Claude2ORCID, ÇEVİK Hacer2ORCID, KARACA İsmail2ORCID
Affiliation:
1. ısparta uygulamalı bilimler üniversitesi 2. ISPARTA UYGULAMALI BİLİMLER ÜNİVERSİTESİ
Abstract
In this research, the effect of soil, foliar and simultaneous soil+foliar applications of chitosan on gall and egg mass of root-knot nematode Meloidogyne incognita was investigated in tomato plants under controlled conditions (24±1°C, 60±5% RH). Fluopyram (0.16 ml/L) was used as positive control while only nematode-treated plants were considered as negative control. The study was set up in a randomized plot design with 5 replications for each application. The liquid suspension of chitosan diluted at 1% was used. In soil application, 5 ml was applied to each pot by using a graduated cylinder while in foliar application, the liquid suspension at 1% was applied using a portable hand sprayer until the solution was finished. The study was evaluated according to the 1-9 gall and egg mass index 60 days after inoculation of nematodes. The lowest gall (2.8) and egg mass (2.4) indexes were detected in the simultaneous soil+foliar application and took place in the same statistical group with the positive control nematicide. It was determined that the nematicidal effect of chitosan has increased in the case of combined soil and foliar applications. These results support the fact that chitosan applications are successful in the control of root-knot nematode.
Publisher
Isparta Uygulamali Bilimler Universitesi
Reference40 articles.
1. Abd El-Aziz, M. H., & Khalil, M. S. (2020). Antiviral and Antinematodal potentials of chitosan. Journal of Plant Science and Phytopathology, 4, 055-059. https://doi.org/10.29328/journal.jpsp.1001051 2. Alfy, H., Ghareeb, R. Y., Soltan, E., & Farag, D. A. (2020). Impact of chitosan nanoparticles as insecticide and nematicide against Spodoptera littoralis, Locusta migratoria, and Meloidogyne incognita. Plant Cell Biotechnology Molecular Biology, 21, 126-140. 3. Anitha, A., Sowmya, S., Kumar, P. S., Deepthi, S., Chennazhi, K. P., Ehrlich, H., Tsurkan, M., & Jayakumar, R. (2014). Chitin and chitosan in selected biomedical applications. Progress in polymer science, 39(9), 1644-1667. https://doi.org/10.1016/j.progpolymsci.2014.02.008 4. Ashraf, M. S., & Khan, T. A. (2010). Integrated approach for the management of Meloidogyne javanica on eggplant using oil cakes and biocontrol agents. Archives of Phytopathology and Plant Protection, 43(6), 609-614. https://doi.org/10.1080/03235400801972434 5. Bittelli, M., Flury, M., Campbell, G. S., & Nichols, E. J (2001). Reduction of transpiration through foliar application of chitosan. Agricultural and Forest Meteorology, 107, 167-175. https://doi.org/10.1016/S0168-1923(00)00242-2
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