Role of Plant Growth Promoting Rhizobacteria (PGPR) and Biochar to Soil Carbon Sequestration and Plant Performance in Climate Resilience —A Review
الموضوعات : Research On Crop Ecophysiologyامین فتحی 1 , Babak Modara 2 , AUDAY HAMID TAHA 3
1 - دکتری زراعت، واحد آیت الله آملی، دانشگاه آزاد اسلامی، آمل، ایران
2 - Ph.D. student of Agronomy, Yasuj Branch, Islamic Azad University, Yasuj, Iran.
3 - College of Agriculture, University of Kerbala, Kerbala, Iraq.
الکلمات المفتاحية: Keywords: Biochar, Carbon sequestration, Plant products, Growth-promoting bacteria,
ملخص المقالة :
Role of Plant Growth Promoting Rhizobacteria (PGPR) and Biochar to Soil Carbon Sequestration and Plant Performance in Climate Resilience —A Review AMIN FATHI1*, BABAK MODARA 2, AUDAY HAMID TAHA3 1- Department of Agronomy, Ayatollah Amoli Branch, Islamic Azad University, Amol, Iran. 2- Ph.D. student of Agronomy, Yasuj Branch, Islamic Azad University, Yasuj, Iran. 3- College of Agriculture, University of Kerbala, Kerbala, Iraq. * Corresponding author Email: dr.aminfathi@gmail.com Received: 25 March 2023 Accepted: 6 June 2023 ABSTRACT As the challenges associated with climate change continue to grow, focusing on sustainable and practical agricultural methods has become increasingly vital. One effective approach involves using biochar (BC) alongside PGPR, which is known to significantly boost plant performance and enhance carbon (C) sequestration. BC, created as a soil amendment, not only improves the physical and chemical characteristics of the soil but also aids in retaining moisture and preserving nutrients. By adding BC to the soil, a conducive environment for beneficial microorganisms can be established, thereby boosting their activity. This process can enhance the soil's capacity for C sequestration and improve its overall structure. Additionally, PGPR possesses unique abilities such as nitrogen fixation, phosphate solubilization, and hormone synthesis, which can enhance plant growth and performance, particularly in stressful conditions. These bacteria improve nutrient absorption and strengthen plants’ resilience to environmental stressors, producing higher yields and better quality produce. In light of climate change, combining BC and PGPR offers a strategic advantage for enhancing agricultural resilience against the challenges posed by shifting weather patterns. This strategy not only aids in boosting crop production but also contributes significantly to reducing greenhouse gas emissions (GHG) through increased soil C sequestration, supporting sustainable development and environmental conservation initiatives.
Anwar A., Younis M., Ullah I. 2020. Impact of urbanization and economic growth on CO2 emission: a case of far east Asian countries. International Journal of Environmental Research and Public Health, 17(7), 2531.
Bagheri M., Mirzaei Heydari M. 2020. Effect of Biofertilizers and Chemical Fertilizers on Phosphorus Uptake and Wheat Yield. Research On Crop Ecophysiology, 15(1), 13–19.
Banerjee A., Chen R., Meadows M. E., Sengupta D., Pathak S., Xia Z., Mal S. 2021. Tracking 21st century climate dynamics of the Third Pole: An analysis of topo-climate impacts on snow cover in the central Himalaya using Google Earth Engine. International Journal of Applied Earth Observation and Geoinformation, 103, 102490.
Bikbulatova S., Tahmasebi A., Zhang Z., Rish S. K., Yu J. 2018. Understanding water retention behavior and mechanism in bio-char. Fuel Processing Technology, 169, 101–111.
Bruun S., Clauson Kaas, S., Bobuľská L., Thomsen I. K. 2014. Carbon dioxide emissions from biochar in soil: role of clay, microorganisms and carbonates. European Journal of Soil Science, 65(1), 52–59.
Button D. K. 1993. Nutrient-limited microbial growth kinetics: overview and recent advances. Antonie van Leeuwenhoek, 63, 225–235.
Chen K., Peng J., Li J., Yang Q., Zhan X., Liu N., Han X. 2020. Stabilization of soil aggregate and organic matter under the application of three organic resources and biochar-based compound fertilizer. Journal of Soils and Sediments, 20, 3633–3643.
Chen Y., Sun K., Yang Y., Gao B., Zheng H. 2024. Effects of biochar on the accumulation of necromass-derived carbon, the physical protection and microbial mineralization of soil organic carbon. Critical Reviews in Environmental Science and Technology, 54(1), 39–67.
Cheng H., Hill P. W., Bastami M. S., Jones D. L. 2017. Biochar stimulates the decomposition of simple organic matter and suppresses the decomposition of complex organic matter in a sandy loam soil. GCB Bioenergy, 9(6), 1110–1121.
Dijkstra P., Thomas S. C., Heinrich P. L., Koch G. W., Schwartz E., Hungate B. A. 2011. Effect of temperature on metabolic activity of intact microbial communities: evidence for altered metabolic pathway activity but not for increased maintenance respiration and reduced carbon use efficiency. Soil Biology and Biochemistry, 43(10), 2023–2031.
Domingues R. R., Sánchez-Monedero M. A., Spokas K. A., Melo L. C. A., Trugilho P. F., Valenciano M. N., Silva C. A. 2020. Enhancing cation exchange capacity of weathered soils using biochar: feedstock, pyrolysis conditions and addition rate. Agronomy, 10(6), 824.
Elzobair K. A., Stromberger M. E., Ippolito J. A., Lentz R. D. 2016. Contrasting effects of biochar versus manure on soil microbial communities and enzyme activities in an Aridisol. Chemosphere, 142, 145–152.
Ennis C. J., Evans A. G., Islam M., Ralebitso-Senior T. K., Senior E. 2012. Biochar: carbon sequestration, land remediation, and impacts on soil microbiology. Critical Reviews in Environmental Science and Technology, 42(22), 2311–2364.
Eyni H., Mirzaei Heydari M., Fathi A. 2023. Investigation of the application of urea fertilizer, mycorrhiza, and foliar application of humic acid on quantitative and qualitative properties of canola. Crop Science Research in Arid Regions, 4(2), 405–420.
Fahad S., Chavan S. B., Chichaghare A. R., Uthappa A. R., Kumar M., Kakade V., Pradhan A., Jinger D., Rawale G., Yadav D. K. 2022. Agroforestry systems for soil health improvement and maintenance. Sustainability, 14(22), 14877.
Fang Y., Singh B., Singh B. P., Krull E. 2014. Biochar carbon stability in four contrasting soils. European Journal of Soil Science, 65(1), 60–71.
Farrell M., Kuhn T. K., Macdonald L. M., Maddern T. M., Murphy D. V, Hall P. A., Singh B. P., Baumann K., Krull E. S., Baldock J. A. 2013. Microbial utilisation of biochar-derived carbon. Science of the Total Environment, 465, 288–297.
Fathi A, Mehdiniyaafra J. 2023. Plant Growth and Development in Relation to Phosphorus: A review. Bulletin of the University of Agricultural Sciences & Veterinary Medicine Cluj-Napoca. Agriculture, 80(1).
Fathi A, Barari Tari D., Fallah Amoli H., Niknejad Y. 2020. Study of energy consumption and greenhouse gas (GHG) emissions in corn production systems: influence of different tillage systems and use of fertilizer. Communications in Soil Science and Plant Analysis, 51(6), 769–778.
Fathi A. 2022. Role of nitrogen (N) in plant growth, photosynthesis pigments, and N use efficiency: a. Agrisost, 28, 1–8.
Fathi A., Shiade S. R. G., Ait-El-Mokhtar M., Rajput V. D. 2024a. Crop Photosynthesis under Climate Change. In Handbook of Photosynthesis (4th ed.). Taylor & Francis, Boca Raton, USA. pp 826. https://doi.org/10.1201/b22922
Fathi A., Shiade S. R. G., Ali B., Zeidali E. 2024b. Plant Growth, Development, and Photosynthesis in Cereals under Salt Stress. In Handbook of Photosynthesis (4th ed.). Taylor & Francis, Boca Raton, USA. pp 826. https://doi.org/10.1201/b22922
Fathi A., Shiade S. R. G., Kianersi F., Altaf M. A., Amiri E., Nabati E. 2024c. Photosynthesis in Cereals under Drought Stress. In Handbook of Photosynthesis (4th ed.). Taylor & Francis, Boca Raton, USA. pp 826. https://doi.org/10.1201/b22922
Fathi A., Shiade S. R. G., Parmoon G., Yaghoubian Y., Pirdashti H., Rajput V. D., Minkina T. (2024d). Bioremediation of heavy metals contaminated soils using nanotechnology. In Bio-organic Amendments for Heavy Metal Remediation (pp. 611-628). Elsevier.
Fathi A., Shiade S. R. G., Zahra N., Farooq M. 2024e. Photosynthesis in Plants under Cold Stress. In Handbook of Photosynthesis (4th ed.). Taylor & Francis, Boca Raton, USA. pp 826. https://doi.org/10.1201/b22922
Gamalero E., Glick B. R. 2015. Bacterial modulation of plant ethylene levels. Plant Physiology, 169(1), 13–22.
Gao W., Gao K., Guo Z., Liu Y., Jiang L., Liu C., Liu X., Wang G. 2021. Different responses of soil bacterial and fungal communities to 3 years of biochar amendment in an alkaline soybean soil. Frontiers in Microbiology, 12, 630418.
Ghadirnezhad Shiade S. R., Fathi A., Kardoni F., Pandey R., Pessarakli M. 2024b. Nitrogen contribution in plants: recent agronomic approaches to improve nitrogen use efficiency. Journal of Plant Nutrition, 47(2), 314–331.
Ghadirnezhad Shiade S. R., Fathi A., Minkina T., Wong M. H., Rajput V. D. 2023a. Biochar application in agroecosystems: a review of potential benefits and limitations. Environment, Development and Sustainability, 0123456789. doi: 10.1007/s10668-023-03470-z
Ghadirnezhad Shiade S. R., Fathi A., Taghavi Ghasemkheili F., Amiri E., Pessarakli M. 2023b. Plants’ responses under drought stress conditions: Effects of strategic management approaches—a review. Journal of Plant Nutrition, 46(9), 2198–2230. doi: 10.1080/01904167.2022.2105720
Ghadirnezhad Shiade S. R., Rahimi R., Zand-Silakhoor A., Fathi A., Fazeli A., Radicetti E., Mancinelli R. 2024a. Enhancing Seed Germination Under Abiotic Stress: Exploring the Potential of Nano-Fertilization. Journal of Soil Science and Plant Nutrition, 1–23.
Ghosh D., Maiti S. K. 2023. Invasive weed based biochar facilitated the restoration of coal mine degraded land by modulating the enzyme activity and carbon sequestration. Restoration Ecology, 31(3), e13744.
Gross A., Bromm T., Glaser B. 2021. Soil organic carbon sequestration after biochar application: A global meta-analysis. Agronomy, 11(12), 2474.
Hafeez A., Ali B., Javed M. A., Saleem A., Fatima M., Fathi A., Afridi M. S., Aydin V., Oral M. A., Soudy F. A. 2023. Plant breeding for harmony between sustainable agriculture, the environment, and global food security: an era of genomics assisted breeding. Planta, 258(5), 97.
Han L., Sun K., Yang Y., Xia X., Li F., Yang Z., Xing B. 2020. Biochar’s stability and effect on the content, composition and turnover of soil organic carbon. Geoderma, 364, 114184.
He X., Xie H., Gao D., Khashi U. Rahman M., Zhou X., Wu F. 2021. Biochar and intercropping with potato–onion enhanced the growth and yield advantages of tomato by regulating the soil properties, nutrient uptake, and soil microbial community. Frontiers in Microbiology, 12, 695447.
Hobbie J. E., Hobbie, E. A. 2012. Amino acid cycling in plankton and soil microbes studied with radioisotopes: measured amino acids in soil do not reflect bioavailability. Biogeochemistry, 107, 339–360.
Hu F., Liu J., Xu C., Du W., Yang Z., Liu X., Liu, G., Zhao S. 2018. Soil internal forces contribute more than raindrop impact force to rainfall splash erosion. Geoderma, 330, 91–98.
Jung S., Park Y.-K., Kwon E. E. 2019. Strategic use of biochar for CO2 capture and sequestration. Journal of CO2 Utilization, 32, 128–139.
Keith A., Singh B., Singh B. P. 2011. Interactive priming of biochar and labile organic matter mineralization in a smectite-rich soil. Environmental Science & Technology, 45(22), 9611–9618.
Khadem A., Raiesi F., Besharati H., Khalaj M. A. 2021. The effects of biochar on soil nutrients status, microbial activity and carbon sequestration potential in two calcareous soils. Biochar, 3, 105–116.
Leng L., Xu X., Wei L., Fan L., Huang H., Li J., Lu Q., Li J., Zhou W. 2019. Biochar stability assessment by incubation and modelling: Methods, drawbacks and recommendations. Science of the Total Environment, 664, 11–23.
Li S., Chen G. 2018. Thermogravimetric, thermochemical, and infrared spectral characterization of feedstocks and biochar derived at different pyrolysis temperatures. Waste Management, 78, 198–207.
Li S., Tasnady D. 2023. Biochar for soil carbon sequestration: Current knowledge, mechanisms, and future perspectives. C, 9(3), 67.
Li Y., Li Y., Chang S. X., Yang Y., Fu S., Jiang P., Luo Y., Yang M., Chen Z., Hu S. 2018. Biochar reduces soil heterotrophic respiration in a subtropical plantation through increasing soil organic carbon recalcitrancy and decreasing carbon-degrading microbial activity. Soil Biology and Biochemistry, 122, 173–185.
Liao W., Thomas S. C. 2019. Biochar particle size and post-pyrolysis mechanical processing affect soil pH, water retention capacity, and plant performance. Soil Systems, 3(1), 14.
Lorenz K., Lal R. 2014. Biochar application to soil for climate change mitigation by soil organic carbon sequestration. Journal of Plant Nutrition and Soil Science, 177(5), 651–670.
Luo Q., O’Leary G., Cleverly J., Eamus D. 2018. Effectiveness of time of sowing and cultivar choice for managing climate change: wheat crop phenology and water use efficiency. International Journal of Biometeorology, 62, 1049–1061.
Ma S., Wang X., Wang S., Feng K. 2022. Effects of temperature on physicochemical properties of rice straw biochar and its passivation ability to Cu2+ in soil. Journal of Soils and Sediments, 22(5), 1418–1430.
Manzoni S., Porporato A. 2009. Soil carbon and nitrogen mineralization: Theory and models across scales. Soil Biology and Biochemistry, 41(7), 1355–1379.
Mirzaei Heydari M, Babaei Z. 2022. The effect of plant growth promoting bacteria inoculated in soil and different rates of phosphorous fertilizer on growth and yield of autumn wheat. Iranian Journal of Soil and Water Research, 53(10), 2247–2259.
Mirzaei Heydari M, Brook R. M., Jones D. L. 2024. Barley Growth and Phosphorus Uptake in Response to Inoculation with Arbuscular Mycorrhizal Fungi and Phosphorus Solubilizing Bacteria. Communications in Soil Science and Plant Analysis, 55(6), 846–861.
Mirzaei Heydari M, Fathi A., Atashpikar R. 2024. The effect of chemical and biofertilizer on the nutrient concentration of root, shoot and seed of bean (Phaseolus vulgaris L.) under drought stress. Crop Science Research in Arid Regions, 5(3), 539–554.
Mirzaei A., Naseri R., Torab Miri S. M., Soleymani Fard A., Fathi A. 2018. Reaspose of Yield and Yield Components of Chickpea (Cicer arietinum L.) Cultivars to the Application of Plant Growth Promoting RhizohBacteria and Nitrogen Chemical Fertilizer under Rainfed Conditions. Journal of Crop Ecophysiology, 11(44(4)), 775–790. Retrieved from https://jcep.tabriz.iau.ir/article_539518.html
Mukherjee A., Zimmerman A. R., Harris, W. 2011. Surface chemistry variations among a series of laboratory-produced biochars. Geoderma, 163(3–4), 247–255.
Najim Abdul Reda M., Mirzaei Heydari M. 2024. Evaluation the effect of mycorrhizal inoculation and different amounts of sheep manure on the quantitative and qualitative yield of mung bean cultivars. Iranian Journal of Soil and Water Research.
Naseri R., Soleymani F. A., Mirzaeir A., Darabi F., Fathi A. 2020. The effect of Plant Growth Promoting Rhizohacteria on activities of antioxidative enzymes, physiological characteristics and root growth of four chickpea (Cicer arietinum L.) cultivars under dry land conditions of Ilam privince. Iranian Journal Pulses Research, 10(2), 62–76.
Nguyen B. T., Koide R. T., Dell C., Drohan P., Skinner H., Adler P. R., Nord A. 2014. Turnover of soil carbon following addition of switchgrass‐derived biochar to four soils. Soil Science Society of America Journal, 78(2), 531–537.
Nguyen T. T. N., Xu C.-Y., Tahmasbian I., Che R., Xu Z., Zhou X., Wallace H. M., Bai S. H. 2017. Effects of biochar on soil available inorganic nitrogen: a review and meta-analysis. Geoderma, 288, 79–96.
Palviainen M., Berninger F., Bruckman, V. J., Köster K., de Assumpção C. R. M., Aaltonen H., Makita N., Mishra A., Kulmala L., Adamczyk B. 2018. Effects of biochar on carbon and nitrogen fluxes in boreal forest soil. Plant and Soil, 425, 71–85.
Pituello C., Dal Ferro N., Francioso O., Simonetti G., Berti A., Piccoli I., Pisi A., Morari F. 2018. Effects of biochar on the dynamics of aggregate stability in clay and sandy loam soils. European Journal of Soil Science, 69(5), 827–842.
Razzaghi F., Obour P. B., Arthur, E. 2020. Does biochar improve soil water retention? A systematic review and meta-analysis. Geoderma, 361, 114055.
Ren H., Lv C., Fernández-García V., Huang B., Yao J., Ding W. 2021. Biochar and PGPR amendments influence soil enzyme activities and nutrient concentrations in a eucalyptus seedling plantation. Biomass Conversion and Biorefinery, 11, 1865–1874.
Robinson C. 2008. Heterotrophic bacterial respiration. In Microbial ecology of the oceans (pp. 299–334). Wiley.
Rogovska N., Laird D. A., Rathke S. J., Karlen D. L. 2014. Biochar impact on Midwestern Mollisols and maize nutrient availability. Geoderma, 230, 340–347.
Schimel J. P., Weintraub M. N. 2003. The implications of exoenzyme activity on microbial carbon and nitrogen limitation in soil: a theoretical model. Soil Biology and Biochemistry, 35(4), 549–563.
Shiade S. R. G., Fathi A., Rahimi R., DahPahlavan S. 2024a. Crop Adaptation to Climate Change: Improvements in Photosynthesis. In Handbook of Photosynthesis (pp. 676-684). Taylor Francis, Boca Raton, USA. pp 826. https://doi.org/10.1201/b22922
Shiade S. R. G., Zand-Silakhoor A., Fathi A., Rahimi R., Minkina T., Rajput V. D., Zulfiqar, U., Chaudhary T. 2024b. Plant Metabolites and Signaling Pathways in Response to Biotic and Abiotic Stresses: Exploring Bio stimulant Applications. Plant Stress, 100454.
Shintu P. V, Jayaram, K. M. 2015. Phosphate solubilising bacteria (Bacillus polymyxa)-An effective approach to mitigate drought in tomato (Lycopersicon esculentum Mill.). Trop. Plant Res, 2(1), 2349–9265.
Singh B., Macdonald L. M., Kookana R. S., van Zwieten L., Butler G., Joseph S., Weatherley A., Kaudal B. B., Regan A., Cattle J. 2014. Opportunities and constraints for biochar technology in Australian agriculture: looking beyond carbon sequestration. Soil Research, 52(8), 739–750.
Singh N., Kookana R. S. 2009. Organo-mineral interactions mask the true sorption potential of biochars in soils. Journal of Environmental Science and Health Part B, 44(3), 214–219.
Sinsabaugh R. L., Shah J. J. F. 2010. Integrating resource utilization and temperature in metabolic scaling of riverine bacterial production. Ecology, 91(5), 1455–1465.
Spohn M., Klaus K., Wanek W., Richter A. 2016. Microbial carbon use efficiency and biomass turnover times depending on soil depth–Implications for carbon cycling. Soil Biology and Biochemistry, 96, 74–81.
Vetter S. H., Abdalla M., Kuhnert M., Smith, P. 2022. Soil Carbon Sequestration and Biochar. Greenhouse Gas Removal Technologies, 31, 194.
Vetter Y. A., Deming J. W., Jumars P. A., Krieger-Brockett B. B. 1998. A predictive model of bacterial foraging by means of freely released extracellular enzymes. Microbial Ecology, 36, 75–92.
Weng Z., Van Zwieten L., Tavakkoli E., Rose M. T., Singh B. P., Joseph S., Macdonald L. M., Kimber S., Morris S., Rose T. J. 2022. Microspectroscopic visualization of how biochar lifts the soil organic carbon ceiling. Nature Communications, 13(1), 5177.
Wu G., Nelson M., Ma S., Meng H., Cui G., Shen P. K. 2011. Synthesis of nitrogen-doped onion-like carbon and its use in carbon-based CoFe binary non-precious-metal catalysts for oxygen-reduction. Carbon, 49(12), 3972–3982.
Yang Y., Sun K., Han L., Chen Y., Liu J., Xing B. 2022. Biochar stability and impact on soil organic carbon mineralization depend on biochar processing, aging and soil clay content. Soil Biology and Biochemistry, 169, 108657.
Yang Y., Sun K., Liu J., Chen Y., Han L. 2022. Changes in soil properties and CO2 emissions after biochar addition: Role of pyrolysis temperature and aging. Science of the Total Environment, 839, 156333.
Zamani Z., Zeidali E., Alizadeh H. A., Fathi A. 2023. Effect of drought stress and nitrogen chemical fertilizer on root properties and yield in three quinoa cultivars (Chenopodium quinoa Willd). Crop Science Research in Arid Regions, 5(2), 487–500.
Zhu Y., Yi B., Hu H., Zong Z., Chen M., Yuan Q. 2020. The relationship of structure and organic matter adsorption characteristics by magnetic cattle manure biochar prepared at different pyrolysis temperatures. Journal of Environmental Chemical Engineering, 8(5), 104112.