Microbial activity was greater in soils added with herb residue vermicompost than chemical fertilizer

Meirong Lv, Jingjuan Li, Weixin Zhang, Bo Zhou, Jun Dai, Chi Zhang

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Soil Ecology Letters ›› 2020, Vol. 2 ›› Issue (3) : 209-219. DOI: 10.1007/s42832-020-0034-6
RESEARCH ARTICLE
RESEARCH ARTICLE

Microbial activity was greater in soils added with herb residue vermicompost than chemical fertilizer

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Abstract

Herb residue vermicompost is thought to have high agriculture value, while its effects on soil microbial activities have not been fully understood. Here, soil microbial biomass, respiration and enzyme activities in soil planted with maize were compared among treatments amended with herb residue vermicompost at rates of 25, 50, 75 and 100 g kg1, chemical NPK fertilizer and no fertilizer (the control). Our results showed that soil microbial biomass carbon, respiration, and alkaline phosphatase, urease, and invertase activities were greater in soil amended with herb residue vermicompost than the unfertilized control (P<0.05). Compared with chemical fertilizer, herb residue vermicompost increased soil urease and alkaline phosphatase activities at each application rate, promoted soil respiration and microbial biomass carbon at the application rates of 50, 75 and 100 g kg1, and increased soil inverse activity at the application rates of 75 and 100 g kg1. In conclusion, herb residue vermicompost supported greater soil microbial biomass, respiration and enzyme activities than conventional NPK fertilizer, and the effect was larger when higher rates of herb residue vermicompost were added.

Keywords

Soil / Herb residue vermicompost / Microbial biomass / Respiration / Enzyme activity

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Meirong Lv, Jingjuan Li, Weixin Zhang, Bo Zhou, Jun Dai, Chi Zhang. Microbial activity was greater in soils added with herb residue vermicompost than chemical fertilizer. Soil Ecology Letters, 2020, 2(3): 209‒219 https://doi.org/10.1007/s42832-020-0034-6

References

[1]
Arancon, N.Q., Edwards, C.A., Bierman, P., 2006. Influences of vermicomposts on field strawberries, Part 2. Effects on soil microbiological and chemical properties. Bioresource Technology 97, 831–840
CrossRef Google scholar
[2]
Bååth, E., 2001. Estimation of fungal growth rates in soil using 14C-acetate incorporation into ergosterol. Soil Biology & Biochemistry 33, 2011–2018
CrossRef Google scholar
[3]
Carrión-Paladines, V., Fries, A., Gómez-Muñoz, B., García-Ruiz, R., 2016. Agrochemical characterization of vermicomposts produced from residues of Palo Santo (Bursera graveolens) essential oil extraction. Waste Management (New York, N.Y.) 58, 135–143
CrossRef Google scholar
[4]
Doan, T.T., Henry-des-Tureaux, T., Rumpel, C., Janeau, J.L., Jouquet, P., 2015. Impact of compost, vermicompost and biochar on soil fertility, maize yield and soil erosion in Northern Vietnam, a three year mesocosm experiment. Science of the Total Environment 514, 147–154
CrossRef Google scholar
[5]
Ferreras, L., Gomez, E., Toresani, S., Firpo, I., Rotondo, R., 2006. Effect of organic amendments on some physical, chemical and biological properties in a horticultural soil. Bioresource Technology 97, 635–640
CrossRef Google scholar
[6]
Ghosh, S., Goswami, A.J., Ghosh, G.K., Pramanik, P., 2018. Quantifying the relative role of phytase and phosphatase enzymes in phosphorus mineralization during vermicomposting of fibrous tea factory waste. Ecological Engineering 116, 97–103
CrossRef Google scholar
[7]
Goswami, L., Nath, A., Sutradhar, S., Bhattacharya, S.S., Kalamdhad, A., Vellingiri, K., Kim, K., 2017. Application of drum compost and vermicompost to improve soil health, growth, and yield parameters for tomato and cabbage plants. Journal of Environmental Management 200, 243–252
CrossRef Google scholar
[8]
Guo, F.Q., Dong, Y.P., Dong, L., Jing, Y., 2013. An innovative example of herb residues recycling by gasification in a fluidized bed. Waste Management (New York, N.Y.) 33, 825–832
CrossRef Google scholar
[9]
Heuck, C., Weig, A., Spohn, M., 2015. Soil microbial biomass C,N,P stoichiometry and microbial use of organic phosphorus. Soil Biology & Biochemistry 85, 119–129
CrossRef Google scholar
[10]
Jackson, M.L., 1958. Soil Chemical Analysis. Prentice-Hall, Inc., Englewood Cliffs, NJ.
[11]
Jalali, M., 2006. Kinetics of non-exchangeable potassium release and availability in some calcareous soils of western Iran. Geoderma 135, 63–71
CrossRef Google scholar
[12]
Jouquet, E.P., Bloquel, E., Doan, T.T., Ricoy, M., Orange, D., Rumpel, C., Duc, T.T., 2011. Do compost and vermicompost improve macronutrient retention and plant growth in degraded tropical soils? Compost Science & Utilization 19, 15–24
CrossRef Google scholar
[13]
Kalbitz, K., Solinger, S., Park, J.H., Michalzik, B., Matzner, E., 2000. Controls on the dynamics of dissolved organic matter in soils, A review. Soil Science 165, 277–304
CrossRef Google scholar
[14]
Lashermes, G., Nicolardot, B., Parnaudeau, V., Thuries, L., Chaussod, R., Guillotin, M.L., Lineres, M., Mary, B., Metzger, L., Morvan, T., Tricaud, A., Villette, C., Houot, S., 2009. Indicator of potential residual carbon in soils after exogenous organic matter application. European Journal of Soil Science 60, 297–310
CrossRef Google scholar
[15]
Lavelle, P., Melendez, G., Pashanasi, B., Schaefer, R., 1992. Nitrogen mineralization and reorganization in casts of the geophagous tropical earthworm Pontoscolex corethrurus (Glossoscolecidae). Biology and Fertility of Soils 14, 49–53
CrossRef Google scholar
[16]
Li, H., Cong, R., Ren, T., Li, X., Ma, C., Zheng, L., Zhang, Z., Lu, J., 2015. Yield response to N fertilizer and optimum N rate of winter oilseed rape under different soil indigenous N supplies. Field Crops Research 181, 52–59
CrossRef Google scholar
[17]
Li, J., Zhou, B., Zhang, C., Zhang, J., Xu, H., Yang, X., Chen, X., Dai, J., 2013. Effects of herb residue vermicompost on maize growth and soil fertility. Ying Yong Sheng Tai Xue Bao 24, 2651–2657 (In Chinese).
[18]
Li, Y., Rouland, C., Benedetti, M., Li, F., Pando, A., Lavelle, P., Dai, J., 2009. Microbial biomass, enzyme and mineralization activity in relation to soil organic C, N and P turnover influenced by acid metal stress. Soil Biology & Biochemistry 41, 969–977
CrossRef Google scholar
[19]
Lupwayi, N.Z., Clayton, G.W., O’Donovan, J.T., Grant, C.A., 2011. Soil microbial response to nitrogen rate and placement and barley seeding rate under no till. Agronomy Journal 103, 1064–1071
CrossRef Google scholar
[20]
Lupwayi, N.Z., Lafond, G.P., Ziadi, N., Grant, C.A., 2012. Soil microbial response to nitrogen fertilizer and tillage in barley and corn. Soil & Tillage Research 118, 139–146
CrossRef Google scholar
[21]
Maji, D., Misra, P., Singh, S., Kalra, A., 2017. Humic acid rich vermicompost promotes plant growth by improving microbial community structure of soil as well as root nodulation and mycorrhizal colonization in the roots of Pisum sativum. Applied Soil Ecology 110, 97–108
CrossRef Google scholar
[22]
Mizuta, K., Taguchi, S., Sato, S., 2015. Soil aggregate formation and stability induced by starch and cellulose. Soil Biology & Biochemistry 87, 90–96
CrossRef Google scholar
[23]
Mungai, N.W., Motavalli, P.P., Kremer, R.J., Nelson, K.A., 2005. Spatial variation of soil enzyme activities and microbial functional diversity in temperate alley cropping systems. Biology and Fertility of Soils 42, 129–136
CrossRef Google scholar
[24]
Ngo, P., Rumpel, C., Doan, T., Jouquet, P., 2012. The effect of earthworms on carbon storage and soil organic matter composition in tropical soil amended with compost and vermicompost. Soil Biology & Biochemistry 50, 214–220
CrossRef Google scholar
[25]
Paradelo, R., Moldes, A.B., Barral, M.T., 2009. Amelioration of the physical properties of slate processing fines using grape marc compost and vermicompost. Soil Science Society of America Journal 73, 1251–1260
CrossRef Google scholar
[26]
Parthasarathi, K., Balamurugan, M., Ranganathan, L.S., 2008. Influence of vermicompost on the physico-chemical and biological properties in different types of soil along with yield and quality of the pulse crop-black gram. Journal of Environmental Health Science & Engineering 5, 51–58.
[27]
Powlson, D.S., Prookes, P.C., Christensen, B.T., 1987. Measurement of soil microbial biomass provides an early indication of changes in total soil organic matter due to straw incorporation. Soil Biology & Biochemistry 19, 159–164
CrossRef Google scholar
[28]
Pramanik, P., Ghosh, G.K., Chung, Y.R., 2010. Changes in nutrient content, enzymatic activities and microbial properties of lateritic soil due to application of different vermicomposts, A comparative study of ergosterol and chitin to determine fungal biomass in soil. Soil Use and Management 26, 508–515
CrossRef Google scholar
[29]
Pramanik, P., Ghosh, G.K., Ghosal, P.K., Banik, P., 2007. Changes in organic- C, N, P and K and enzyme activities in vermicompost of biodegradable organic wastes under liming and microbial inoculants. Bioresource Technology 98, 2485–2494
CrossRef Google scholar
[30]
Raynaud, X., Lata, J.C., Leadley, P.W., 2006. Soil microbial loop and nutrient uptake by plants, a test using a coupled C,N model of plant–microbial interactions. Plant and Soil 287, 95–116
CrossRef Google scholar
[31]
Romero, E., Fernández-Bayo, J., Díaz, J.M.C., Nogales, R., 2010. Enzyme activities and diuron persistence in soil amended with vermicompost derived from spent grape marc and treated with urea. Applied Soil Ecology 44, 198–204
CrossRef Google scholar
[32]
Rousk, J., Bååth, E., 2011. Growth of saprotrophic fungi and bacteria in soil. FEMS Microbiology Ecology 78, 17–30
CrossRef Google scholar
[33]
Roy, S., Arunachalam, K., Dutta, B.K., Arunachalam, A., 2010. Effect of organic amendments of soil on growth and productivity of three common crops viz Zea mays, Phaseolus vulgaris and Abelmoschus esculentus. Applied Soil Ecology 45, 78–84
CrossRef Google scholar
[34]
Sakamoto, K., Oba, Y., 1994. Effect of fungal to bacterial biomass ratio on the relationship between CO2 evolution and total soil microbial biomass. Biology and Fertility of Soils 17, 39–44
CrossRef Google scholar
[35]
Satchell, J.E., Martin, K., 1984. Phosphatase activity in earthworm faeces. Soil Biology & Biochemistry 16, 191–194
CrossRef Google scholar
[36]
Scalise, A., Tortorella, D., Pristeri, A., Petrovičová, B., Gelsomino, A., Lindström, K., Monti, M., 2015. Legume-barley intercropping stimulates soil N supply and crop yield in the succeeding durum wheat in a rotation under rain fed conditions. Soil Biology & Biochemistry 89, 150–161
CrossRef Google scholar
[37]
Sharma, K., Garg, V.K., 2018. Chapter 17 – Solid-State Fermentation for Vermicomposting, A Step Toward Sustainable and Healthy Soil. In: Pandey, A., Larroche, C., Soccol C.R., eds. Current Developments in Biotechnology and Bioengineering: Current Advances in Solid-State Fermentation pp. 373–413.
[38]
Singh, D., Suthar, S., 2012. Vermicomposting of herbal pharmaceutical industry waste, Earthworm growth, plant-available nutrient and microbial quality of end materials. Bioresource Technology 112, 179–185
CrossRef Google scholar
[39]
Singh, H., Reddy, S., 2011. Effect of inoculation with phosphate solubilizing fungus on growth and nutrient uptake of wheat and maize plants fertilized with rock phosphate in alkaline soils. European Journal of Soil Biology 47, 30–34
CrossRef Google scholar
[40]
Srivastava, P.K., Gupta, M., Upadhyay, R.K., Sharma, S., Shikha, Singh, N., Tewari, S.K., Singh B., 2012. Effects of combined application of vermicompost and mineral fertilizer on the growth of Allium cepa L. and soil fertility. Journal of Plant Nutrition and Soil Science 175, 101–107
CrossRef Google scholar
[41]
Tejada, M., Benitez, C., 2011. Organic amendment based on vermicompost and compost, Differences on soil properties and maize yield. Waste Management & Research 29, 1185–1196
CrossRef Google scholar
[42]
Tejada, M., García-Martínez, A.M., Parrado, J., 2009. Effects of a vermicompost composted with beet vinasse on soil properties, soil losses and soil restoration. Catena 77, 238–247
CrossRef Google scholar
[43]
Tejada, M., Gómez, I., Hernández, T., García, C., 2010. Utilization of vermicomposts in soil restoration, Effects on soil biological properties. Soil Science Society of America Journal 74, 525–532
CrossRef Google scholar
[44]
Thirukkumaran, C.M., Parkinson, D., 2000. Microbial respiration, biomass, metabolic quotient and litter decomposition in a lodgepole pine forest floor amended with nitrogen and phosphorous fertilizers. Soil Biology & Biochemistry 32, 59–66
CrossRef Google scholar
[45]
Uz, I., Sonmez, S., Tavali, I.E., Citak, S., Uras, D.S., Citak, S., 2016. Effect of vermicompost on chemical and biological properties of an alkaline soil with high lime content during celery (Apium graveolens L. var. dulce Mill.) production. Notulae Botanicae Horti Agrobotanici Cluj-Napoca 44, 280–290
CrossRef Google scholar
[46]
Verma, R.K., Verma, R.S., Rahman, L.U., Yadav, A., Patra, D.D., Kalra, A., 2014. Utilization of distillation waste based vermicompost and other organic and inorganic fertilizers on improving production potential in geranium and soil health. Communications in Soil Science and Plant Analysis 45, 141–152
CrossRef Google scholar
[47]
Villar, I., Alves, D., Mato, S., 2017. Product quality and microbial dynamics during vermicomposting and maturation of compost from pig manure. Waste Management (New York, N.Y.) 69, 498–507
CrossRef Google scholar
[48]
Walkley, A.J., Black, C.A., 1934. An estimation of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science 37, 29–38
CrossRef Google scholar
[49]
Wang, P., Zhan, S., Yu, H., Xue, X., Hong, N., 2010. The effects of temperature and catalysts on the pyrolysis of industrial wastes (herb residue). Bioresource Technology 101, 3236–3241
CrossRef Google scholar
[50]
Wang, Y., Xu, Y., Li, D., Tang, B., Man, S., Jia, Y., Xu, H., 2018. Vermicompost and biochar as bio-conditioners to immobilize heavy metal and improve soil fertility on cadmium contaminated soil under acid rain stress. Science of the Total Environment 621, 1057–1065
CrossRef Google scholar
[51]
Xu, X., Xie, J., Hou, Y., He, P., Pampolino, M.F., Zhao, S., Qiu, S., Johnston, A.M., Zhou, W., 2015. Estimating nutrient uptake requirements for rice in China. Field Crops Research 180, 37–45
CrossRef Google scholar
[52]
Yang, L., Zhao, F., Chang, Q., Li, T., Li, F., 2015. Effects of vermicomposts on tomato yield and quality and soil fertility in greenhouse under different soil water regimes. Agricultural Water Management 160, 98–105
CrossRef Google scholar
[53]
Zeng, X., Shao, R., Wang, F., Dong, P., Yu, J., Xu, G., 2016. Industrial demonstration plant for the gasification of herb residue by fluidized bed two-stage process. Bioresource Technology 206, 93–98
CrossRef Google scholar
[54]
Zhou, H., Zhang, D., Wang, P., Liu, X., Chenga, K., Lia, L., Zheng, J., Zhang, X., Zheng, J., Crowley, D., Zwieten, L., Pan, G., 2017. Changes in microbial biomass and the metabolic quotient with biochar addition to agricultural soils: A Meta-analysis. Agriculture, Ecosystems & Environment 239, 80–89
CrossRef Google scholar
[55]
Zhu, Z., Ge, T., Luo, Y., Liu, S., Xu, X., Tong, C., Shibistova, O., Guggenberger, G., Wu, J., 2018. Microbial stoichiometric flexibility regulates rice straw mineralization and its priming effect in paddy soil. Soil Biology & Biochemistry 121, 67–76
CrossRef Google scholar
[56]
Zuo, Y., Zhang, J., Zhao, R., Dai, H., Zhang, Z., 2018. Application of vermicompost improves strawberry growth and quality through increased photosynthesis rate, free radical scavenging and soil enzymatic activity. Scientia Horticulturae 233, 132–140
CrossRef Google scholar

Acknowledgments

This work was supported by the Natural Science Foundation of Shandong Province, China (ZR201801300002; ZR2016DM17; ZR2018ZB0523; ZR2019PD004), the Natural Science Foundation of China (31700447 and 41201305), Science and Technology Fundamental Resources Investigation Program of China (2018FY100300), National Key Research and Development Program of China (2016YFD0201301 and 2016YFD0201200).

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