Pengaruh Bulai pada Perubahan Indeks Kadar Klorofil, Serapan Fosforus dan Boron pada Jagung Manis
Abstract
Maize production and quality are affected by infection with plant pathogens. One of the maize's essential and main diseases is downy mildew caused by Peronosclerospora spp. Downy mildew is a limiting factor in increasing production and can reduce production by 80-100%. It is because the affected plant cannot produce cobs. Pathogens obtain nutrients from the host cell, which can kill the cell and damage the surrounding tissues, resulting in visible downy mildew symptoms. Boron (B) plays a role in forming phloem, increasing the fruit's number, weight, bunch weight, and diameter. The primary function of B at the molecular level is the cross-linking of pectin in the plant cell wall. Ramnogalacturonan II (RG II) is a pectic polysaccharide that contributes to the mechanical strength and properties of the primary wall cross-linked by borate diesters. Phosphorus (P) controls the downsides in the greenhouse and field conditions. This study aims to measure changes in chlorophyll index, P and B uptakes in downy mildew affected plants. The field experiment used a group randomized design with six natural phosphate (FA) application treatments and four groups of borax doses as replicates. The results showed that the downy mildew decreased the chlorophyll index of the leaves at different levels of attack. The results of P concentration according to the position of healthy plant leaves were significantly different due to P treatment. In contrast to concentration B, there is no real difference. P and B uptake results in downy mildew-infested plants showed a significant difference only in P uptake in leaves with 1 FA treatment.
Keywords: boron, downy mildew, maize, phosphate
Downloads
References
Adhi SR, Widiantini F, Yulia E. 2019. Metode inokulasi buatan untuk menguji infeksi Peronosclerospora maydis penyebab penyakit bulai tanaman jagung. J Agro. 6(1):77–85. https://doi.org/10.15575/4409
Agrios GN. 2005. Plant Pathology. Ed ke-5. New York (UK): Academic Press.
Agustamia C, Widiastuti A, Sumardiyono C. 2017. Pengaruh stomata dan klorofil pada ketahanan beberapa varietas jagung terhadap penyakit bulai. Jurnal Perlindungan Tanam Indones. 20(2): 89. https://doi.org/10.22146/jpti.17703
Berger S, Sinha AK, Roitsch T. 2007. Plant physiology meets phytopathology: Plant primary metabolism and plant-pathogen interactions. J Exp Bot. 58(15–16): 4019–4026. https://doi.org/10.1093/jxb/erm298
Camacho-Cristóbal JJ, Navarro-Gochicoa MT, Rexach J, González-Fontes A, Herrera-Rodríguez MB. 2018. Plant response to boron deficiency and boron use efficiency in crop plants. Di dalam: Plant Micronutrient Use Efficiency: Molecular and Genomic Perspectives in Crop Plants. Elsevier. hlm 109–121. https://doi.org/10.1016/B978-0-12-812104-7.00007-1
Chaluvaraju G, Basavaraju P, Shetty NP, Deepak SA, Amruthesh KN, Shetty HS. 2004. Effect of some phosphorous-based compounds on control of pearl millet downy mildew disease. Crop Prot. 23(7): 595–600. https://doi.org/10.1016/j.cropro.2003.11.008
Cordeiro LFS, Cordeiro CFS, Ferrari S. 2022. Cotton yield and boron dynamics affected by cover crops and boron fertilization in a tropical sandy soil. F Crop Res. 284:1–8. https://doi.org/10.1016/j.fcr.2022.108575
Eviati, Sulaeman. 2009. Petunjuk teknis: Analisis kimia tanah, tanaman, air, dan pupuk. 2nd Ed. Prasetyo BH, Santoso D, Retno LW, Editors. Bogor (ID): Balai Penelitian Tanah.
Fredeen AL, Rao IM, Terry N. 1989. Influence of phosphorus nutrition on growth and carbon partitioning in Glycine max. Plant Physiol. 89: 225–230. https://doi.org/10.1104/pp.89.1.225
Gao P, Duan T, Christensen MJ, Nan Z, Liu Q, Meng F, Huang J. 2017. The occurrence of rust disease, and biochemical and physiological responses on Apocynum venetum plants grown at four soil water contents, following inoculation with Melampsora apocyni. Eur J Plant Pathol. 150(3): 549–563. https://doi.org/10.1007/s10658-017-1299-1
Görlach BM, Sagervanshi A, Henningsen JN, Pitann B, Mühling KH. 2021. Uptake, subcellular distribution, and translocation of foliar-applied phosphorus: Short-term effects on ion relations in deficient young maize plants. Plant Physiol Biochem. 166: 677–688. https://doi.org/10.1016/j.plaphy.2021.06.028
Guest DI. 1984. Modification of defence responses in tobacco and capsicum following treatment with Fosetyl-Al [Aluminium tris (o-ethyl phosphonate)]. Physiol Plant Pathol. 25: 125–159. https://doi.org/10.1016/0048-4059(84)90051-1
Gunes A, Soylemezoglu G, Inal A, Bagci EG, Coban S, Sahin O. 2006. Antioxidant and stomatal responses of grapevine (Vitis vinifera L.) to boron toxicity. Sci Hortic. 110(3): 279–284. https://doi.org/10.1016/j.scienta.2006.07.014
Huang PM, Li Y, Sumner ME. 2012. Hand Book of Soil Sciences: Resource Management and Environmental Impacts. Ed ke-2. New York (UK): CRC Press.
Jeschke WD, Kirkby E, Peuke AD, Pate JS, Hartung W. 1997. Effects of P deficiency on assimilation and transport of nitrate and phosphate in intact plants of castor bean (Ricinus communis L.). J Exp Bot. 48(306): 75–91. https://doi.org/10.1093/jxb/48.1.75
Ji Z, Liu Z, Han Y, Sun Y. 2022. Exogenous dopamine promotes photosynthesis and carbohydrate metabolism of downy mildew-infected cucumber. Sci Hortic. 295. https://doi.org/10.1016/j.scienta.2021.110842
Kaneko S, Ismi T, Matsunaga T. 1997. A boron-rhamnogalacturonan-II complex from bamboo shoot cell walls. Volume ke-44. https://doi.org/10.1016/S0031-9422(96)00539-0
Li M, Zhao Z, Zhang Z, Zhang W, Zhou J, Xu F, Liu X. 2017. Effect of boron deficiency on anatomical structure and chemical composition of petioles and photosynthesis of leaves in cotton (Gossypium hirsutum L.). Sci Rep. 7: 1–9. https://doi.org/10.1038/s41598-017-04655-z
Luan M, Tang RJ, Tang Y, Tian W, Hou C, Zhao F, Lan W, Luan S. 2017. Transport and homeostasis of potassium and phosphate: Limiting factors for sustainable crop production. J Exp Bot. 68(12): 3091–3105. https://doi.org/10.1093/jxb/erw444
Mandal K, Saravanan R, Maiti S. 2008. Effect of different levels of N, P and K on downy mildew (Peronospora plantaginis) and seed yield of isabgol (Plantago ovata). Crop Prot. 27: 988–995. https://doi.org/10.1016/j.cropro.2007.12.002
Marschner P. 2012. Mineral nutrition of higher plants. Ed ke-3. New York (UK): Academic Press.
Muis A, Suriani, Kalqutny SH, Nonci N. 2018. Penyakit Bulai pada Tanaman Jagung dan Upaya Pengendaliannya. Yogyakarta (ID): Deepublish.
Naeem M, Ansari AA, Gill SS. 2017. Essential Plant Nutrients: Uptake, Use Efficiency, and Management. Springer International Publishing. https://doi.org/10.1007/978-3-319-58841-4
O’Neill MA, Ishii T, Albersheim P, Darvill AG. 2004. Rhamnogalacturonan II: Structure and function of a borate cross-linked cell wall pectic polysaccharide. Annu Rev Plant Biol. 55: 109–139. https://doi.org/10.1146/annurev.arplant.55.031903.141750
Panicker S, Gangadharan K. 1999. Controlling downy mildew of maize caused by Peronosclerospora sorghi by foliar sprays of phosphonic acid compounds. Crop Prot. 18: 115–118. https://doi.org/10.1016/S0261-2194(98)00101-X
Prokopová J, Špundová M, Sedlářová M, Husičková A, Novotný R, Doležal K, Nauš J, Lebeda A. 2010. Photosynthetic responses of lettuce to downy mildew infection and cytokinin treatment. Plant Physiol Biochem. 48: 716–723. https://doi.org/10.1016/j.plaphy.2010.04.003
Purwanto SD, Nirwanto H, Wiyatiningsih S. 2016. Model epidemi penyakit tanaman: Hubungan faktor lingkungan terhadap laju infeksi dan pola sebaran penyakit bulai (Peronosclerospora maydis) pada tanaman jagung di Kabupaten Jombang. Plumula. 5(2): 138–152.
Scorei R. 2012. Is boron a prebiotic element? A mini-review of the essentiality of boron for the appearance of life on earth. Orig Life Evol Biosph. 42(1): 3–17. https://doi.org/10.1007/s11084-012-9269-2
Shireen F, Nawaz MA, Xiong M, Ahmad A, Sohail H, Chen Z, Abouseif Y, Huang Y, Bie Z. 2020. Pumpkin rootstock improves the growth and development of watermelon by enhancing uptake and transport of boron and regulating the gene expression. Plant Physiol Biochem. 154: 204–218. https://doi.org/10.1016/j.plaphy.2020.06.003
Smith TE, Grattan SR, Grieve CM, Poss JA, Suarez DL. 2010. Salinity’s influence on boron toxicity in broccoli: II. Impacts on boron uptake, uptake mechanisms and tissue ion relations. Agric Water Manag. 97: 783–791. https://doi.org/10.1016/j.agwat.2010.01.015
Tewari RK, Kumar P, Sharma PN. 2010. Morphology and oxidative physiology of boron-deficient mulberry plants. Tree Physiol. 30(1): 68–77. https://doi.org/10.1093/treephys/tpp093
Uluisik I, Karakaya HC, Koc A. 2018. The importance of boron in biological systems. J Trace Elem Med Biol. 45: 156–162. https://doi.org/10.1016/j.jtemb.2017.10.008
Vanlauwe B, Diels J, Sanginga N, Carsky RJ, Deckers J, Merckx R. 2000. Utilization of rock phosphate by crops on a representative toposequence in the Northern Guinea savanna zone of Nigeria: Response by maize to previous herbaceous legume cropping and rock phosphate treatments. Soil Biol Biochem. 32: 2079–2090. https://doi.org/10.1016/S0038-0717(00)00150-4
Wu X, Lu X, Riaz M, Yan L, Jiang C. 2019. Boron toxicity induced specific changes of cell ultrastructure and architecture of components in leaf center and tip of trifoliate orange [Poncirus trifoliata (L.) Raf.]. J Environ Manage. 246: 426–433. https://doi.org/10.1016/j.jenvman.2019.05.148
Yildirim K. 2017. Transcriptomic and hormonal control of boron uptake, accumulation and toxicity tolerance in poplar. Environ Exp Bot. 141: 60–73. https://doi.org/10.1016/j.envexpbot.2017.07.004
Zhao D, Oosterhuis DM. 2002. Cotton carbon exchange, nonstructural carbohydrates, and boron distribution in tissues during development of boron deficiency. F Crop Res. 78: 75–87. https://doi.org/10.1016/S0378-4290(02)00095-3
Zheng Y, Wu J, Peng X, Zhang Y. 2019. Field-grown Moringa oleifera response to boron fertilization: Yield component, chemical composition of seed-oil and physiology. Ind Crops Prod. 138. https://doi.org/10.1016/j.indcrop.2019.06.012
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
This journal is published under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License. Authors who publish with this journal agree to the following terms: Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution-NonCommercial 4.0 International License. Attribution — You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use. NonCommercial — You may not use the material for commercial purposes.