Biocha Soil Amendment: Effect on Soil, Crop Performance, and Diseases Resistance


Ermias Misganaw Amare


Abstract


One of the main challenges facing developing countries is an ever-increasing gap between population growth and food supply. Diseases, insects, and weeds decrease the production of crops worldwide by 36%. Hence, control of crop pests contributes to increased crop production. Organic amendments to the soil have direct impacts on crop productivity and plant health as it enhances soil fertility, water, and nutrient retention and plant disease defense mechanisms. Biochar is an important organic amendment. It is produced by the pyrolysis process, whereby organic substances are broken down at higher temperatures in low oxygen conditions. Biohar improved soil nutrient availability and water retention capacity, and induced plant resistance against broad ranges of plant pathogenic organisms including fungi, nematodes, and bacteria. Biochar soil amendment also enhances root-associated microbes such as flavobacterium and arbuscular mycorrhizae. Biochar amendments can increase soil essential nutrients for crop productivity and suppress plant pathogens. Suppression of plant pathogens is attributed to the stimulation of beneficial soil microbes, providing nutrients, and inducing plant defense. The objectives of the review are to depict the importance of biochar soil amendment on crop performance, disease resistance, and soil properties.


Full Text:

PDF

References


Lucius Tamm, Barbara Thürig, Christian Bruns, Jacques G. Fuchs, Ulrich Köpke, Matias Laustela, Carlo Leifert, Nicole Mahlberg, Bruno Nietlispach, Christoph Schmidt, Felix Weber and Andreas Fliebach. 2010. Soil type, management history, and soil amendments influence the development of soil-borne (Rhizoctonia solani, Pythium ultimum) and air-borne (Phytophthora infestans, Hyaloperonospora parasitica) diseases. European Journal of Plant Pathology, 127: 465–481

Innerebner, G., Knapp, B., Vasara, T., Romantschuk, M. and Insam, H. 2006. Traceability of ammonia-oxidizing bacteria in compost-treated soils. Soil Biology and Biochemistry, 38: 1092–1100

Chu, H., Lin, X., Fujii, T., Morimoto, S., Yagi, K., Hu, J., et al. 2007. Soil microbial biomass, dehydrogenase activity, bacterial community structure in response to long-term fertilizer management, Soil Biology and Biochemistry, 39: 2971–297

Yigal Elad, Dalia Rav David, Yael Meller Harel, Menahem Borenshtein, Hananel Ben Kalifa, Avner Silber, and Ellen R. Graber. 2010. Induction of Systemic Resistance in Plants by Biochar, a Soil-Applied Carbon Sequestering Agent. The American Phytopathological Society, 100: 913 -921

Joung Du Shin, Sun-Il Lee, Woo-Kyun Park, Yong-Su Choi, Seung-Gil Hong and Sang-Won Park. 2014. Carbon Sequestration in Soil Cooperated with Organic Composts and Bio-Char during Corn (Zea mays) Cultivation, Journal of Agricultural Chemistry and Environment, 3: 151-155

European Biochar Certificate. 2012. Guidelines for a Sustainable Production of Biochar. European Biochar Foundation.(online , accessed April 2018) http:// www.europeanbiochar.org

Laird, D. A. 2008. The charcoal vision: a win-win-win scenario for simultaneously producing bioenergy, permanently sequestering carbon, while improving soil and water quality. Agronomy Journal, 100: 178-181

Ameloot, N., Graber, ER., Verheijen, FGA., and De Neve, S. 2013. Interactions between biochar stability and soil organisms: review and research needs. European Journal of Soil Sciences, 64: 379–390

International Biochar Initiative. 2017. (online accessed, April 2018) http: // www.biochar-international.org/biochar

Allaire SE, Lange SF, Auclair IK, Quinche M, Greffard L. 2015. Report: Analyses of biochar properties. CRMR-2015-SA-5. Centre de Recherche sur les Matériaux Renouvelables, Université Laval, Québec, Canada, 59

Max Kolton, Yael Meller Harel, Zohar Pasternak, Ellen R. Graber, Yigal Elad, and Eddie Cytryn. 2011. Impact of Biochar Application to Soil on the Root-Associated Bacterial Community Structure of Fully Developed Greenhouse Pepper Plants. Applied and Environmental Microbiology, 77: 4924–4930

Yael Meller Harel, Yigal Elad, Dalia Rav-David, Menachem Borenstein, Ran Shulchani, Beni Lew and Ellen R. Graber, 2012. Biochar mediates systemic response of strawberry to foliar fungal pathogens. International Journal on Plant-Soil Relationships, 357: 245–257

Carmen George, Josef Kohler and Matthias C. Rillig. 2016. Biochars reduce infection rates of the root-lesion nematode Pratylenchus penetrans and associated biomass loss in carrot. Soil Biology and Biochemistry, 95: 11- 18

Amit K. Jaiswal, Yigal Elad, Ellen R. Graber and Omer Frenkel. 2014. Rhizoctonia solani suppression and plant growth promotion in cucumber as affected by biochar pyrolysis temperature, feedstock and concentration. Soil Biology and Biochemistry, 69: 110 – 118

kristiina Karhua, Tuomas Mattila , Irina Bergstrom and Kristiina Regina. 2011. Biochar addition to agricultural soil increased CH4 uptake and water holding capacity Results from a short-term pilot field study. Agriculture, Ecosystems and Environment 140: 309–313

Biederman, LA., and Harpole, WS. 2013. Biochar and its effects on plant productivity and nutrient cycling: a meta-analysis. Blackwell Publishing, Ltd, GCB Bioenergy, 5: 202–214

Chan, K. Y., Van Zwieten, L., Meszaros, I., Downie, A., and Joseph, S. 2008. Using poultry litter biochars as soil amendments. Australia Journal of Soil Research, 46: 437-444

Rovica Radin, Rosenani Abu Bakar, Che Fauziah Ishak, Siti Hajar Ahmad and Lim Chin Tson. 2017. Biochar compost mixture as amendment for improvement of polybag growing media and oil palm seedlings at main nursery stage, International Journal of Recycling of Organic Waste in Agriculture

Yamato, M., Okimori, Y., Wibowo, I.F., Anshori, S., and Ogawa, M. 2006. Effects of the application of charred bark of acacia mangium on the yield of maize, cowpea and peanut, and soil chemical properties in South Sumatra, Indonesia. Soil Science and Plant Nutrition 52: 489-495.

Warnock, D. D., Lehmann, J., Kuyper, T. W., and Rillig, M. C. 2007. Mycorrhizal responses to biochar in soil concepts and mechanisms. An International Journal on Plant-Soil Relationships, 300: 9-20

Hongyan Jin. 2010. Characterization of microbial life colonizing biochar and biochar-amended soils. A Ph.D dissertation, Cornell University

Bhattacharjya, S., Chandra, R., Pareek, N., and Raverkar, KP. 2016. Biochar and crop residue application to soil: effect on soil biochemical properties, nutrient availability and yield of rice (Oryza sativa L.) and wheat (Triticum aestivum L.). Archives of Agronomy and Soil Sciences, 62: 1095–1108

Yang Lu, Shuang Rao, Fei Huang, Yixia Cai, Guoping Wang and Kunzheng Cai. 2016. Effects of Biochar Amendment on Tomato Bacterial Wilt Resistance and Soil Microbial Amount and Activity. International Journal of Agronomy

Smith P, Haberl H, Popp A, Erb KH, Lauk C, Harper R, Tubiello FN, Pinto AD, Jafari M, Sohi S et al. 2013. How much land-based greenhouse gas mitigation can be achieved without compromising food security and environmental goals? Global Change Biology 19: 2285

Glaser, B., Lehmann, J., and Zech, W. 2002. Ameliorating physical and chemical properties of highly weathered soils in the tropics with charcoal. Biology and Fertility of Soils, 35: 219-230

Sarah Carter, Simon Shackley, Saran Sohi, Tan Boun Suy and Stephan Haefele. 2013. The Impact of Biochar Application on Soil Properties and Plant Growth of Pot Grown Lettuce and Cabbage. Agronomy, 3: 404-418

Abhay Kumar, Yigal Elad, Ludmila Tsechansky, Vikas Abrol, Beni Lew, Rivka Offenbach and Graber, E.R. 2017. Biochar potential in intensive cultivation of Capsicum annuum L. (sweet pepper): Crop yield and plant protection, Journal of Science and Food Agriculture, 98: 495–503.

Lehmann, J., Pereira da Silva, J., Jr., Steiner, C., Nehls, T., Zec, W. and Glaser, B. 2003. Nutrient availability and leaching in an archaeological anthrosol and a ferralsol of the Central Amazon basin: fertilizer, manure and charcoal amendments. International Journal of Plant Soil Relationships, 249: 343-357

Novak, J. M., Busscher, W. J., Laird, D. L., Ahmedna, M., Watts, D. W. and Niandou, M. A. S. 2009. Impact of biochar amendment on fertility of a southeastern coastal plain soil, Soil Sciences, 174: 105-112

De Luca, T. H., MacKenzie, M. D., and Gundale, M. J. 2009. Biochar effects on soil nutrient transformations. PP 251-270. Biochar for Environmental Management. Earth scan, London

Warnock, D. D., Lehmann, J., Kuyper, T. W., and Rillig, M. C. 2007. Mycorrhizal responses to biochar in soil concepts and mechanisms. International Journal on Plant-Soil Relationships, 300: 9-20

Bernadette, J. F., and J. P. Bowman. 2006. The genus Flavobacterium.PP. 481–531, The prokaryotes: a handbook on the biology of bacteria, 3rd ed., V. 7. Springer, NY

Inbar, E., Green, S. J., Hadar, Y. and Minz, D. 2005. Competing factors of compost concentration and proximity to root affect the distribution of streptomycetes. Microbial Ecology, 50:73–81

Noble, R., and Coventry, E. 2005. Suppression of soil-borne plant diseases with compost. Biocontrol Sciences and Technology, 15: 3-20

Matsubara, Y., Hasegawa, N. and Fukui, H. 2002. Incidence of fusarium root rot in asparagus seedlings infected with arbuscular mycorrhizal fungus as affected by several soil amendments. Japanese Society for Horticultural Science, 71: 370-374.

Yamato, M., Okimori, Y., Wibowo, I.F., Anshori, S., Ogawa, M, 2006. Effects of the application of charred bark of acacia mangium on the yield of maize, cowpea and peanut, and soil chemical properties in South Sumatra, Indonesia. Soil Science and Plant Nutrition 52: 489-495.

Alexander, B. J. R., and A. Stewart. 2001. Glasshouse screening for biological control agents of Phytophthora cactorum on apple. N. Z. J. Crop Hortic. Sci. 29:159–169

Gunasinghe, W. K. R. N., and A. M. Karunaratne. 2009. Interactions of Colletotrichum musae and Lasiodiplodia theobromae and their biocontrol by Pantoea agglomerans and Flavobacterium sp. in expression of crown rot of “Embul” banana. Biocontrol 54:587–596

Adnan Akhter , Karin Hage-Ahmed , Gerhard Soja and Siegrid Steinkellner. 2016. Potential of Fusarium wilt-inducing chlamydospores, in vitro behaviour in root exudates and physiology of tomato in biochar and compost amended soil. International Journal of Plant Soil Relationships, 406: 425–440

Natalia Rogovska, David Laird, Leonor Leandro and Deborah Aller. 2017. Biochar effect on severity of soybean root disease caused by Fusarium virguliforme, International Journal of Plant Soil Relationships 413:111–126

Frenkel, O., Jaiswal, AK., Elad, Y., Lew, B., Kammann, C., and Graber, ER. 2017. The effect of biochar on plant diseases: what should we learn while designing biochar substrate? Journal of Environmental Engineering and Landscape Management, 25: 105–113

Dale R.Walters, Jaan Ratsep and Neil D. Havis. 2013. Controlling crop diseases using induced resistance: challenges for the future. Journal of Experimental Botany, 64: 1263–1280

Goellner, K.,and Conrath, U. 2008. Priming: it’s all the world to induced resistance. European Journal of Plant Pathology, 121: 233–242

Vallad, G. E., and Goodman, R. M. 2004. Systemic acquired resistance and induced systemic resistance in conventional agriculture. Crop Sciences, 44: 1920-1934

Walters, DR., and Fountaine, JM. 2009. Practical application of induced resistance to plant diseases: an appraisal of effectiveness under field conditions. Journal of Agricultural Science, 147: 523–535

Pieterse, C. M. J. and Van loon, L. C. 2007. Signaling cascades involved in induced resistance PP.65-88. In Induced Resistance for Plant Defence : A Sustainable Approach to Crop Protection. Oxford, UK: Blackwell Publishing

Max Kolton, Ellen R. Graber, Ludmila Tsehansky, Yigal Elad and Eddie Cytryn. 2017. Biochar-stimulated plant performance is strongly linked to microbial diversity and metabolic potential in rhizosphere, New Phytologist. 213: 1393–1404

Kamau, S., Karanja, N. K., Ayuke, F. O., and Lehmann, J. 2019. Short-term influence of biochar and fertilizer-biochar blends on soil nutrients, fauna and maize growth. Biol. Fertil. Soils 55:661-673.

Rawat, J., Saxena, J., and Sanwal, P. 2019. Biochar: A sustainable approach for improving plant growth and soil properties. Pages 1-17 in: Biochar−An Imperative Amendment for Soil and the Environment. IntechOpen, London, U.K.

Bonanomi, G., Ippolito, F., and Scala, F. 2015. A” black” future for plant pathology? Biochar as a new soil amendment for controlling plant diseases. J. Plant Pathol

Graber, E. R., and Elad, Y. 2013. Biochar impact on plant resistance to disease. Pages 41-68 in: Biochar and Soil Biota. N. Ladygina and F. Rineau, Press, Boca Raton,

Choudhary, D. K., Nabi, S. U., Dar, M. S., and Khan, K. A. 2018. Ralstonia solanacearum: A wide spread and global bacterial plant wilt pathogen, International Journal of. Pharmacogn. Phytochem. 7:85-90.

Elmer, W. H. 2016. Effect of leaf mold mulch, biochar, and earthworms on mycorrhizal colonization and yield of asparagus affected by Fusarium crown and root rot. Plant Disease. 100:2507-2512.

Mehari, Z. H., Elad, Y., Rav-David, D., Graber, E. R., and Harel, Y. M. 2015.Induced systemic resistance in tomato (Solanum lycopersicum) against Botrytis cinerea by biochar amendment involves jasmonic acid signaling. Plant Soil 395:31-44.

Muthusamy, M., Uma, S., Suthanthiram, B., Saraswathi, M. S., and Chandrasekar, A. 2019. Genome-wide identification of novel, long non-coding RNAs responsive to Mycosphaerella eumusae and Pratylenchus coffeae infections and their differential expression patterns in disease-resistant and sensitive banana cultivars. Plant Biotechnol. Rep. 13:73-83.

Rahman, L., Whitelaw-Weckert, M. A., and Orchard, B. 2014. Impact of organic soil amendments, including poultry-litter biochar, on nematodes in a Riverina, New South Wales, vineyard. Soil Res. 52:604-619.

Tawheed Mohammed, Elhessin Shareef, and Baowei Zhao. 2017. The Fundamentals of Biochar as a Soil Amendment Tool and Management in Agriculture Scope: An Overview for Farmers and Gardeners. Journal of Agricultural Chemistry and Environment, Vol.6 No.1 2017 image

JatavH.S., Rajput,VD.,Minkina T., Singh S.K., Chejara S., Gorovtsov A., Barakhov A., Bauer T., Sushkova S., Mandzhieva S.,et al,. 2021.Sustainable Approach and State Use of Biochar and Its Possible Consequences, Sustainability, 13, 10362

B.-V. Cioruța and M. Coman, “Ensuring sustainable agriculture by analyzing the European Union and Romanian legislation on soil resources protection,” International Journal on Food, Agriculture and Natural Resources, vol. 3, no. 2, pp. 1–4, Aug. 2022, doi: https://doi.org/10.46676/ij-fanres.v3i2.65.




DOI: https://doi.org/10.46676/ij-fanres.v4i4.204

Refbacks

  • There are currently no refbacks.


E-ISSN : 2722-4066

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.

slot online

slot88

slot88

slot777

slot gacor

slot dana

slot gacor

slot qris

slot qris

slot thailand

slot thailand

slot88 terpercaya

slot88 resmi

geo138

slot gacor

https://theamericanmadepodcast.com/