Abstract
The studies regarding interaction of biochar and fertilizer and their effect on soil microbial biomass and enzyme activity are scarce. This study centers at analysis of soil microbial biomass carbon (MBC), nitrogen (MBN), and phosphorous (MBP) over a period of 2 years under mash bean-wheat cropping system. Overall, six treatments were performed which included (1) B0F0: no biochar no fertilizer; (2) B1F0: 5 tons ha−1 (hectare) biochar with no fertilizer; (3) B2F0: 10 tons ha−1 biochar (B2F0) with no fertilizer; (4) B0F1: no biochar with recommended N:P:K fertilizer (i.e., 23:45:25 kg ha−1 respectively); (5) B1F1: 5 tons ha−1 biochar with recommended fertilizer; (6) B2F1: 10 tons ha−1 biochar with recommended fertilizer. Results elucidated increased soil MBC which increased with increasing biochar concentration. Enzyme activity and microbial biomass were higher initially but decreased in the second year of biochar amendment (both with and without fertilizer) which may be attributed to positive priming effect at the start of the experiment. MBN was observed lowest with fertilizer application but increased with biochar application alone. Seasonal variation in MBC was less in biochar-amended soils suggesting that biochar induced a less extreme environment for microbes throughout the season. The biochar treatment (i.e., B2F0) enhanced the soil microbial biomass, phosphorus, and phosphatase activities while biochar with fertilizer treatment (B2F1) improved urease, dehydrogenase, and alkaline phosphatase activity significantly (P > 0.05) in mash bean crop. In wheat however, this treatment decreased urease activity while dehydrogenase activity remained unchanged. A positive correlation was observed between MBN and dehydrogenase activity with soil organic carbon, dissolved organic carbon, and soil moisture content. These outcomes imply that bagasse biochar improves soil conditions for microbes thereby plummeting temporal variations in carbon dynamics.
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References
Alburquerque JA, Salazar P, Barron V, Torrent J, del Campillo MDC, Gallardo A, Villar R (2013) Enhanced wheat yield by biochar addition under different mineral fertilization levels. Agron Sust Develop 33:475–484
Alef K (1995) Dehydrogenase activity. In: Alef K, Nannipieri P (eds) Methods in applied soil microbiology and biochemistry. Academic Press Inc., San Diego, pp 228–230
Al-Wabel MI, Hussain Q, Usman AR, Ahmad M, Abduljabbar A, Sallam AS, Ok YS (2018) Impact of biochar properties on soil conditions and agricultural sustainability: a review. Land Degrad Develop 29(7):2124–2161
Anderson CR, Condron LM, Clough TJ, Fiers M, Stewart A, Hill RA, Sherlock RR (2011) Biochar induced soil microbial community change: implications for biogeochemical cycling of carbon, nitrogen and phosphorus. Pedobiologia 54(5–6):309–320
Asai H, Samson KB, Stephan MH, Songyikhangsuthor K, Homma K, Kiyono Y (2009) Biochar amendment techniques for upland rice production in northern Laos 1. Soil physical properties, leaf SPAD and grain yield. Field Crops Res 111:81–84
Azeem M, Riaz A, Chaudhry AN, Hayat R, Hussain Q, Tahir MI, Imran M (2015) A review: release of organic phosphorus through microbial phytase activity. Arch Agron Soil Sci 60(6):751–766
Bailey VL, Fansler SJ, Smith JL, Bolton H (2011) Reconciling apparent variability in effects of biochar amendment on soil enzyme activities by assay optimization. Soil Biol Biochem 43:296–301
Bhaduri D, Saha A, Desai D, Meena HN (2016) Restoration of carbon and microbial activity in salt-induced soil by application of peanut shell biochar during short-term incubation study. Chemosphere 148:86–98
Biederman LA, Harpole WS (2013) Biochar and its effects on plant productivity and nutrient cycling: a meta-analysis. GCB Bioenergy 5(2):202–214
Brake JD (1992) A practical guide for composting poultry litter. MAFES Bulletin 981. Mississippi State University, USA, June. Dept. of Poultry Science, p 265
Bremner JM, Mulvaney RL (1978) Urease activity in soils. In: Burns RG (ed) Soil enzymes. Academic Press, New York, pp 149–196
Brookes PC, Powlson DS, Jenkinson DS (1982) Measurement of microbial biomass phosphorus in soil. Soil Biol Biochem 14:319–329
Brookes PC, Landman A, Pruden G, Jenkinson DS (1985) Chloroform fumigation and the release of soil nitrogen: a rapid direct extraction method for measuring microbial biomass nitrogen in soil. Soil Biol Biochem 17:837–842
Brunauer S, Emmett P, Teller E (1938) Adsorption of gases in multimolecular layers. J Am Chem Soc 60:309–319
Bruun EW, Hauggaard-Nielsen H, Ibrahim N, Egsgaard Ambus HP, Jensen PA, Dam-Johansen K (2011) Influence of fast pyrolysis temperature on biochar labile fraction and short-term carbon loss in a loamy soil. Biomass Bioenergy 35:1182–1189
Butler JL, Williams MA, Bottomley PJ, Myrold DD (2003) Microbial community dynamics associated with rhizosphere carbon flow. Appl Environ Microbiol 60:6793–6800
Castaldi S, Riondino M, Baronti S, Esposito FR, Marzaioli R, Rutigliano FA, Vaccari FP, Miglietta F (2011) Impact of biochar application to a Mediterranean wheat crop on soil microbial activity and greenhouse gas fluxes. Chemosphere 85:1464–1471
Cayuela ML, Sánchez-Monedero MA, Roig A, Hanley K, Enders A, Lehmann J (2013) Biochar and denitrification in soils: when, how much and why does biochar reduce N2O emissions? Soil Res 15:26–28
Chan K, Van Zwieten L, Meszaros I, Downie A, Joseph S (2008) Using poultry litter biochars as soil amendments. Soil Res 46:437–444
Chen Y, Shinogi Y, Taira M (2010) Influence of biochar use on sugarcane growth, soil parameters, and groundwater quality. Soil Res 48:526–530
Deenik JL, McClellan T, Uehara G, Antal MJ, Campbell S (2010) Charcoal volatile matter content influences plant growth and soil nitrogen transformations. Soil Sci Soc Am J 74:1259–1270
Dempster N, Gleeson B, Solaiman M, Jones L, Murphy V (2012a) Decreased soil microbial biomass and nitrogen mineralization with eucalyptus biochar addition to a coarse textured soil. Plant Soil 354:311–324
Dempster N, Jones L, Murphy V (2012b) Organic nitrogen mineralization in two contrasting agro-ecosystems is unchanged by biochar addition. Soil Bio Bioch 48:47–50
Ding Y, Liu Y, Liu S, Li Z, Tan X, Huang X, Zeng G, Zhou L, Zheng B (2016) A review: biochar to improve soil fertility. Agron sust develop 36(2):36
Eivazi F, Tabatabai MA (1977) Phosphatases in soils. Soil Biol Biochem 9:167–172
Farrell M, Thomas K, Kuhn K, Lynne M, Macdonald TM, Maddern DV, Murphy PA, Bhupinder PS, Karen B, Evelyn S, Jeff AB (2013) Microbial utilization of biochar-derived carbon. Sci Tot Environ 465:288–297
Gardner CMK, Bell JP, Cooper JD, Dean TJ, Hodnett MG, Gardner N (1991) Soil water content, physical methods. Marcel Dekker, New York, pp 25–30
Gaskin JW, Speir RA, Harris K, Das KC, Lee RD, Morris LA (2010) Effect of peanut hull and pine chip biochar on soil nutrients, corn nutrient status, and yield. Agron J 102:623–633
Genesio L, Miglietta F, Lugato E, Baronti S, Pieri M, Vaccari FP (2012) Surface albedo following biochar application in durum wheat. Environ Res Lett 7:25–36
Girvan MS, Campbell CD, Killham K, Prosser JI, Glover LA (2005) Bacterial diversity promotes community stability and functional resilience after perturbation. Environ Microbiol 7:301–313
Glaser B, Lehmann J, Zech W (2002) Ameliorating physical and chemical properties of highly weathered soils in the tropics with charcoal-a review. Biol Fertl Soils 35:219–230
Grossman JM, O'Neill BE, Tsai SM, Liang B, Neves E, Lehmann J, Thies JE (2010) Amazonian anthrosols support similar microbial communities that differ distinctly from those extant in adjacent, unmodified soils of the same mineralogy. Microb Ecol 60:192–205
Guenet B, Leloup J, Raynaud X, Bardoux G, Abbadie L (2010) Negative priming matter mineralization in a smectite-rich soil. Environ Sci Technol 45:9611–9618
Gunther S (2009) Biochar 10, mother nature network. Plant Soil 8:236–242
Haefele MS, Konboon Y, Wongboon Amarante WS, Maarifat AA, Pfeiffer ME (2011) Effects and fate of biochar from rice residues in rice-based systems. Plant Soil 8:236–242
Ippolito JA, Laird DA, Busscher WJ (2012) Environmental benefits of biochar. J Environ Qual 41:967–972
Joergensen RG, Kubler H, Meyer B, Wolters V (1995) Microbial biomass phosphorus in soils of beech (Fagus sylvatica L.) forests. Biol Fert Soils 19:215–219
Kammann CI, Linsel S, Gößling JW, Koyro HW (2011) Influence of biochar on drought tolerance of Chenopodium quinoa wild and on soil-plant relations. Plant Soil 345:195–210
Kamran MA, Jiang J, Li JY, Shi RY, Mehmood K, Abdulaha-Al Baquy M, Xu RK (2018) Amelioration of soil acidity, Olsen-P, and phosphatase activity by manure-and peat-derived biochars in different acidic soils. Arab J Geosci 11(11):272
Kandeler E, Gerber H (1988) Short-term assay of soil urease activity using colorimetric determination of ammonium. Plant Soil 6:68–72
Keith A, Singh B, Singh BP (2011) Interactive priming of biochar and labile organic matter mineralization in a smectite-rich soil. Environ Sci Technol 45:9611–9618
Khodadad CLM, Zimmerman AR, Green SJ, Uthandi S, Foster JS (2011) Taxa specific changes in soil microbial community composition induced by pyrogenic carbon amendments. Soil Biol Biochem 43:385–392
Kuzyakov Y, Subbotina I, Chen HQ (2009) Black carbon decomposition and incorporation into microbial biomass estimated by 14C labeling. Soil Biol Biochem 41:210–219
Laird DA, Fleming P, Davis DD, Horton R, Wang B, Karlen DL (2010) Impact of biochar amendments on the quality of a typical Midwestern agricultural soil. Geoderma 158:443–449
Lammirato C, Miltner A, Kaestner M (2011) Effects of wood char and activated carbon on the hydrolysis of cellobiose by β-glucosidase from Aspergillus niger. Soil Biol Biochem 43:1936–1942
Lehmann J, Joseph S (2009) Biochar for environmental management: an introduction. Biochar for environmental management: Sci Technol Earthscan, London, UK, pp 1–12
Lehmann J, Rillig M, Thies J, Masiello CA, Hockaday WC, Crowley DE (2011) Biochar effects on soil biota. Soil Biol Biochem 43:1812–1836
Liptzin D, Silver WL (2009) Effects of carbon additions on iron reduction and phosphorus availability in a humid tropical forest soil. Soil Biol Biochem 41(8):1696–1702
Liu W, Lu HH, Wu W, Wei QK, Chen YX, Thies JE (2008) Transgenic BT rice does not affect enzyme activities and microbial composition in the rhizosphere during crop development. Soil Biol Biochem 40:475–486
Luo Y, Durenkamp M, De Nobili M, Lin Q, Devonshire BJ, Brookes PC (2013) Microbial biomass growth, following incorporation of biochars produced at 350°C or 700°C, in a silty-clay loam soil of high and low pH. Soil Biol Biochem 57:513–523
Maestrini B, Nannipieri P, Abiven S (2015) A meta-analysis on pyrogenic organic matter induced priming effect. GCB Bioenergy 7:577–590
Major J, Rondon M, Molina D, Riha SJ, Lehmann J (2010) Maize yield and nutrition during 4 years after biochar application to a Colombian savanna Oxisol. Plant Soil 333:117–128
Makoi J, Ndakidemi PA (2008) Selected soil enzymes: examples of their potential roles in the ecosystem. Afr J Biotechnol 7:181–191
Marx MC, Wood M, Jarvis SC (2001) A microplate fluorimetric assay for the study of enzyme diversity in soils. Soil Biol Biochem 33:1633–1640
Masto RE, Kumar S, Rout TK, Sarkar P, George J, Ram LC (2013) Biochar from water hyacinth (Eichornia crassipes) and its impact on soil biological activity. Catena 111:64–71
Nannipieri P, Giagnoni L, Renella G, Puglisi E, Ceccanti B, Masciandaro G, Fornasier F, Moscatelli MC, Marinari S (2012) Soil enzymology: classical and molecular approaches. Biol Fertil Soils 48:743–762
Nelson DW, Sommers LE (1982) Total carbon, organic carbon and organic matter. In: Page AL, Miller RH, Keeney DR (eds) Methods of soil analysis, Part 2 Chemical and microbiological properties. Agronomy monograph 9. Am. Society of Agronomy and Soil Science Society of America, Madison, Wisconsin, USA, pp 539–594
Ogawa M, Okimori Y (2010) Pioneering works in biochar research, Japan. Soil Res 48:489–500
O'Neill B, Grossman J, Tsai MT, Gomes JE, Lehmann J, Peterson J, Neves E, Thies JE (2009) Bacterial community composition in Brazilian Anthrosols and adjacent soils characterized using culturing and molecular identification. Microb Ecol 58:23–35
Palanisamy M, Iniyakumar M, Elaiyaraju P, Uthandi SM, Sivasubramanian V (2017) Effect of application of algal biochar on soil enzymes. J Algal Biomass Utln 8(4):1–9
Pan G, Lin Z, Li L, Zhang A, Zheng J, Zhang X (2011) Perspective on biomass carbon industrialization of organic waste from agriculture and rural areas in China. J Agric Sci Technol 13:75–82
Pietikäinen J, Kiikkilä O, Fritze H (2000) Charcoal as a habitat for microbes and its effects on the microbial community of the underlying humus. Oikos 89:231–242
Rhoades JD (1996) Salinity, electrical conductivity and total dissolved solids. In: D.L. Sparks. Methods of soil analysis part 3. Soil Sci. Soc. America. No. 5. Madison, Wisconsin, USA., p. 417–435
Saito M, Muramoto T (2002) Inoculation with arbuscular mycorrhizal fungi: the status quo in Japan and the future prospects. Plant Soil 244:273–279
Shafiq M, Rashid A, Mangrio AG (2005) Agricultural potential soil resources of the Pothwar Plateau. Soil Environ 24:109–119
Sohi SP (2012) Carbon storage with benefits. Science 338:1034–1035
Sohi S, Krull E, Lopez-Capel E, Bol R (2010) A review of biochar and its use and function in soil. Adv Agr 105:47–82
Spokas KA, Novak JM, Stewart CE, Cantrell KB, Uchimiya M, DuSaire MG (2011) Qualitative analysis of volatile organic compounds on biochar. Chemosphere 85:869–882
Steel RGD, Torrie JH (1997) Principles and procedures of statistics, a biometric approach. McGraw Hill Book Co. Inc. New York, USA, pp 178–182
Steinbeiss S, Gleixner G, Antonietti M (2009) Effect of biochar amendment on soil carbon balance and soil microbial activity. Soil Biol Biochem 41:1301–1310
Steiner C, Teixeira WG, Lehmann J, Zech W (2007) Long term effects of manure, charcoal and mineral fertilization on crop production and fertility on a highly weathered Central Amazonian upland soil. Plant Soil 291:275–290
Taghizadeh-Toosi A, Clough TJ, Sherlock RR, Condron LM (2012) Biochar adsorbed ammonia is bioavailable. Plant Soil 350:57–69
Thomas GW (1996) Soil pH and soil acidity. In: Sparks DL (eds) Methods of soil analysis part 3. Soil Sci. Soc. America, No.5, Madison, Wisconsin, USA, pp 475–490
Van Zwieten L, Kimber S, Morris S, Chan KY, Downie A, Rust J, Joseph S, Cowie A (2010) Effects of biochar from slow pyrolysis of paper mill waste on agronomic performance and soil fertility. Plant Soil 327:235–246
Van-Schouwenberg JCH, Walinge I (1973) Methods of analysis for plant material. Agric Univ Wageningen, Netherlands, pp 25–30
Warnock DD, Lehmann J, Kuyper TW, Rillig MC (2007) Mycorrhizal responses to biochar in soil concepts and mechanisms. Plant Soil 300:9–20
Wu J, Joergensen RG, Pommerening B, Chaussod R, Brooks PC (1990) Measurement of soil microbial biomass by fumigation-extraction an automated procedure. Soil Biol Biochem 22:1167–1169
Wu F, Jia Z, Wang S, Chang SX, Startsev A (2012) Contrasting effects of wheat straw and its biochar on greenhouse gas emissions and enzyme activities in a Chernozemic soil. Biol Fertil Soils 49:555–565
Zavalloni C, Alberti G, Biasiol S, Vedove GD, Fornasier F (2011) Microbial mineralization of biochar and wheat straw mixture in soil: a short term study. Appl Soil Ecol 50:45–51
Zhang YL, Chen LJ, Zhang YG, Wu ZJ, Ma XZ, Yang XZ (2016) Examining the effects of biochar application on soil phosphorus levels and phosphatase activities with visible and fluorescence spectroscopy. Guang pu xue yu guang pu fen xi= Guang pu 36(7):2325–2329
Zimmerman A, Gao B, Ahn MY (2011) Positive and negative mineralization priming effects among a variety of biochar-amended soils. Soil Biol Biochem 43:1169–1179
Acknowledgments
The research was done on PMAS-AAUR Research farm and also acknowledges the Department of Soil Science and SWC.
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This study received financial support from the Higher Education Commission of Pakistan.
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This article is part of the Topical Collection on Implications of Biochar Application to Soil Environment under Arid Conditions
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Azeem, M., Hayat, R., Hussain, Q. et al. Effects of biochar and NPK on soil microbial biomass and enzyme activity during 2 years of application in the arid region. Arab J Geosci 12, 311 (2019). https://doi.org/10.1007/s12517-019-4482-1
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DOI: https://doi.org/10.1007/s12517-019-4482-1
Keywords
- Biochar
- Soil microbial biomass
- Enzyme
- Mash bean-wheat
- NPK