Bio sulfur granules developed with Methylobacterium thiocyanatum promoted black gram growth and yield in sulfur-deficient calcareous vertisol

. 2025 Jun ; 70 (3) : 559-574. [epub] 20241005

Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid39367932
Odkazy

PubMed 39367932
DOI 10.1007/s12223-024-01199-4
PII: 10.1007/s12223-024-01199-4
Knihovny.cz E-zdroje

High soil pH and excess CaCO3 are major contributors to calcareous soil limitations on crops' access to essential nutrients, especially phosphorus (P) and micronutrients, which in turn impact pulses yields and growth. The purpose of this study was to determine the effect of bio sulfur granules (BSG) on the growth of black gram and the availability of nutrients in calcareous vertisols deficient in sulfur. BSG was developed by using sulfur-oxidizing bacteria (SOB) and elemental sulfur (ES) through an incubation study. Developed BSG was tested in a pot and field conditions to evaluate their effectiveness on black gram growth and yield. In the incubation study, soil treated with Methylobacterium thiocyanatum VRI7-A4 and ES (40 kg S/ha) significantly decreased pH and increased available S (SO42-) in calcareous soils. After 40 days of incubation, the solubility of P, Fe, and Zn was greatly increased by the addition of ES @ 40 kg S/ ha in combination with M. thiocyanatum VRI7-A4 or Pandoraea thiooxydans ATSB16. Black gram in S-deficient calcareous soil was improved by the application of BSG (ES @ 40 kg S/ ha with M. thiocyanatum VRI7-A7) in terms of root and shoot lengths, nodule number, plant biomass, pod yield, and biological yield as compared to control. The same treatment greatly increased plant nutrient intake as well as the concentrations of P, Fe, and Zn in the soil. The results showed that the addition of BSG granules (ES @ 40 kg S/ha + M. thiocyanatum VRI7-A4) to calcareous vertisol deficient in S enhanced the nutrient solubility through S oxidation. The developed bio sulfur granules may be added to the fertilizer schedule of the pulses growers to get improved crop growth and yield of black gram in calcareous soil.

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Abbey L, Joyce DC, Aked J, Smith B (2002) Genotype, sulphur nutrition and soil type effects on growth and dry-matter production of spring onion. J Hortic Sci Biotechnol 77(3): 340-345

Abd-Elfattah A, Saber MS, Hilal MH (1991) The use of Thiobacillus in regulating the metabolism in a clay loam soil supplemented with elemental sulfur. Egypt J Soil Sci 31:333–341

Abdou AS (2006) Effect of applied elemental sulfur and sulfur-oxidizing bacteria (Parococcus versutus) into calcareous sandy soils on the availability of native and applied phosphorus and some micronutrients. In 18

Abobatta WF, Hegab RH, El-Hashash EF (2022) Challenges and opportunities for the global cultivation and adaptation of legumes B Opportunities for increasing legumes production and availability. Ann Agric Crop Sci 7:1107

Al-Daher R, Al-Baho M, Guerinik K, Al-Mutawa Q, Al-Surrayai T, Sharma N, Kurihara M (2003) Development of an elemental sulfur/sulfur-oxidizing bacteria amendment product for improving desert soil fertility. In the Joint State of Kuwait-Japan Symposium

Almatawah QA, Al-Surrayai T (2019) Development of biological sulfur fertilizer for the improvement of desert soil fertility in Kuwait. Res Rev J Ecol Environ Sci 7: 1–10

Amin AEEAZ, Mihoub A (2021) Effect of sulfur-enriched biochar in combination with sulfur-oxidizing bacterium (Thiobacillus spp.) on release and distribution of phosphorus in high calcareous p-fixing soils. J Soil Sci Plant Nut 21:2041–2047 DOI

Anandham R, Sridar R, Nalayini P, Poonguzhali S, Madhaiyan M (2007) Potential for plant growth promotion in groundnut (Arachis hypogaea L.) cv. ALR-2 by co-inoculation of sulfur-oxidizing bacteria and Rhizobium. Microbiol Res 162:139–153 PubMed DOI

Anandham R, Indiragandhi P, Kwon SW, Sa TM, Jeon CO, Kim YK, Jee HJ (2010) Pandoraea thiooxydans sp. nov., a facultatively chemolithotrophic, thiosulfate-oxidizing bacterium isolated from rhizosphere soils of sesame (Sesamum indicum L.). Int J of Syst Evol Microbiol 60:21–26 DOI

Anandham R, Gandhi PI, SenthilKumar M, Sridar R, Nalayini P, Sa TM (2011) Sulfur-oxidizing bacteria: A novel bioinoculant for sulfur nutrition and crop production. Bacteria in agrobiology: Plant nutrient management, pp 81-107

Anandham R, Janahiraman V, Gandhi PI, Kwon SW, Chung KY, Han GH, Sa TM (2014) Early plant growth promotion of maize by various sulfur oxidizing bacteria that uses different thiosulfate oxidation pathway. Afr J Microbiol Res 8(1):19–27 DOI

Asif M, Rooney LW, Ali R, Riaz MN (2013) Application and opportunities of pulses in food system: a review. Crit Rev Food Sci Nutr 53:1168–1179 PubMed DOI

Ayşen AKAY, ŞEKER C, NEGİŞ H, (2019) Effect of enhanced elemental sulfur doses on pH value of a calcareous soil. YYU J AGR SCI 29:34–40 DOI

Bashan Y, de-Bashan LE, Prabhu SR, Hernandez JP, (2014) Advances in plant growth-promoting bacterial inoculant technology: formulations and practical perspectives (1998–2013). Plant Soil 378:1–33 DOI

Besharati H (2017) Effects of sulfur application and Thiobacillus inoculation on soil nutrient availability, wheat yield and plant nutrient concentration in calcareous soils with different calcium carbonate content. J Plant Nutr 40:447–456 DOI

Besharati H, Rastin NS (1999) Effect of application Thiobacillus spp. Inoculants and elemental sulfur on phosphorus availability. Iran J Soil Water Sci 13:23–39

Besharaty H, Khavazi K, Saleh-Rastin N (2001) Evaluation of some carriers for thiobacillus inoculants used along with sulphur to increase uptake of some nutrients by corn and improve its performance. Plant nutrition: Food security and sustainability of agro-ecosystems through basic and applied research, pp 672-673

Bhardwaj D, Ansari MW, Sahoo RK, Tuteja N (2014) Biofertilizers function as key player in sustainable agriculture by improving soil fertility, plant tolerance and crop productivity. Microb Cell Fact 13:1–10 DOI

Chaudhary S, Dhanker R, Singh K, Brar B, Goyal S (2022) Characterization of sulfur‐oxidizing bacteria isolated from mustard (Brassica juncea L.) rhizosphere having the capability of improving sulfur and nitrogen uptake. Eur J Appl Microbiol 133(5): 2814-2825

Chien SH, Teixeira LA, Cantarella H, Rehm GW, Grant CA, Gearhart MM (2016) Agronomic effectiveness of granular nitrogen/phosphorus fertilizers containing elemental sulfur with and without ammonium sulfate: A review. Agron J 108(3):1203-1213

Clayton GW, Rice WA, Lupwayi NZ, Johnston AM, Lafond GP, Grant CA, Walley F (2004) Inoculant formulation and fertilizer nitrogen effects on field pea: Nodulation, N2 fixation and nitrogen partitioning. Can J Plant Sci 84:79–88 DOI

Davidian JC, Kopriva S (2010) Regulation of sulfate uptake and assimilation—the same or not the same?. Molecular plant 3(2): 314-325

El-Tarabily KA, Soaud AA, Saleh ME, Matsumoto S (2006) Isolation and characterisation of sulfur-oxidising bacteria, including strains of Rhizobium, from calcareous sandy soils and their effects on nutrient uptake and growth of maize (Zea mays L.). Aust J Agric Res 57:101–111 DOI

Girma K, Mosali J, Freeman KW, Raun WR, Martin KL, Thomason WE (2005) Forage and grain yield response to applied sulfur in winter wheat as influenced by source and rate. J Plant Nutr 28(9): 1541-1553

Portal FS (2016) Management of calcareous soils. Food and agriculture organization of United Nations: Rome, Italy

Haneklaus S, Bloem E, Schnug E (2003) The global sulphur cycle and its links to plant environment. Sulphur in plants, pp 1-28

Heinrich K, Ryder MH, Murphy PJ (2001) Early production of rhizopine in nodules induced by Sinorhizobium meliloti strain L5–30. Can J Microbiol 47:165–171 PubMed DOI

Jackson ML (2005) Soil chemical analysis: advanced course: A manual of methods useful for instruction and research in soil chemistry, physical chemistry of soils, soil fertility, and soil genesis. UW-Madison libraries parallel press

Jena D, Kabi S (2012) Effect of gromor sulphur bentonite sulphur pastilles on yield and nutrient uptake by hybrid rice-potato green gram cropping system in an inceptiosol. Int Res J Agric Sci 2(5):179–187

Juszczuk, IM, Ostaszewska M (2011) Respiratory activity, energy and redox status in sulphur-deficient bean plants. Environ Exp Bot 74: 245-254

Kaler AS (2013) Elemental sulfur effects on nutrient availability in organic soil having variable calcium carbonate.University of Florida. https://ufdc.ufl.edu/UFE0046016/00001/pdf

Khandkar UR, Shinde DA, Kandalkak VS, Jamley NR, Jain NK (1985) Growth, nodulation and yield of rainfed black gram (Vigna mungo L. Hepper) as influenced by phosphate and sulfur fertilization in vertisol. Indian J Plant Physiol 28:311–322

Krishnamoorthy R, Anandham R, Indiragandhi P, Vaidyanathan R, Mothilal A, Karunakaran V, Senthilkumar M (2020) Characterization of phyllosphere methylotrophic bacteria isolated from the groundnut and their impact on growth, yield and quality of the kernel. J Environ Biol 41:600–606 DOI

Lindsay W, Norvell W (1978) Development of DTPA soil test for zinc, iron, manganese and copper. Soil Sci Soc Am J 42:421–428 DOI

Miransari M, Smith DL (2007) Overcoming the stressful effects of salinity and acidity on soybean nodulation and yields using signal molecule genistein under field conditions. J Plant Nutr 30:1967–1992 DOI

Mohamed AA, Eweda WE, Heggo AM, Hassan EA (2014) Effect of dual inoculation with arbuscular mycorrhizal fungi and sulfur-oxidising bacteria on onion (Allium cepa L.) and maize (Zea mays L.) grown in sandy soil under greenhouse conditions. Ann Agric Sci 59:109–118 DOI

Motior MR, Abdou AS, Al Darwish FH, El-Tarabily K, Awad MA, Golam F, Sofian-Azirun M (2011) Influence of elemental sulfur on nutrient uptake, yield and quality of cucumber grown in sandy calcareous soil. Aust J Crop Sci 5:1610–1615

Naidu MV, Ram HANUMAN (1995) Effect of sulfur and Rhizobium inoculation on rhizosphere and non-rhizosphere microflora. Agropedology 5:53–58

Olsen SR, Dean LR (1965) Phosphorus. In: Methods of Soil Analysis. American society of agronomy. 9: 920-926

Page AL, Miller RH, Keeny DR (1982) Methods of soil analysis, part 2: chemical and microbiological properties. American Society of Agronomy, Madison, Wisconsin, USA DOI

Pal DK, Bhattacharyya T, Velayutham M (2000) Genesis and classification of calcareous soils of India. In proceedings of national symposium, pp 19-22

Panahi SVS, Farhad M, Mohammad RA (2016) Sulfur application effect on pH measurement of wheat rhizosphere in calcareous soils. In Biological Forum 8:199–203

Rahman MM, Kamal MZU, Ranamukhaarachchi S, Alam MS, Alam MK, Khan M AR et al (2022) Effects of organic amendments on soil aggregate stability, carbon sequestration, and energy use efficiency in wetland paddy cultivation. Sustainability. 14(8):4475.  https://doi.org/10.3390/su14084475

Raja V, Wani UM, Wani ZA, Jan N, Kottakota C, Reddy MK, John R (2022) Pyramiding ascorbate–glutathione pathway in lycopersicum esculentum confers tolerance to drought and salinity stress. Plant Cell Rep 41(3):619–637 PubMed DOI

Raza MA, Feng LY, Manaf A, Wasaya A, Ansar M, Hussain A, Yang W (2018) Sulfur application increases seed yield and oil content in sesame seeds under rainfed conditions. Field Crops Res 218:51–58 DOI

Rupela OP, Tauro P (1973) Utilization of Thiobacillus to reclaim alkali soils. Soil Biol Biochem 5:899–901 DOI

Salimpour SI, Khavazi K, Nadian H, Besharati H, Miransari M (2010) Enhancing phosphorous availability to canola (Brassica napus L.) using P solubilizing and sulfur oxidizing bacteria. Aust J Crop Sci 4:330–334

Salimpour S, Khavazi K, Nadian H, Besharati H, Miransari M (2012) Canola oil production and nutrient uptake as affected by phosphate solubilizing and sulfur oxidizing bacteria. J Plant Nutr 35:1997–2008 DOI

Scherer HW, Pacyna S, Spoth KR, Schulz M (2008) Low levels of ferredoxin, ATP and leghemoglobin contribute to limited N2 fixation of peas (Pisum sativum L.) and alfalfa (Medicago sativa L.) under S deficiency conditions. Biol Fert Soils 44:909–916 DOI

Schueneman TJ (2001) Characterization of sulfur sources in the EAA. In Soil Crop Sci Soc Florida Proc 60:9–52

Seifi S, Souri B (2021) Modification of calcareous soil with sulfur to improve tomato yield and nutrition. J Plant Interact 12:87–99

Singh J, Kairon MS (2014) Yield and nutrient contents of cotton (Gossypium hirsutum) and sunflower (Helianthus annuus) as influenced by applied sulphur in irrigated inceptisol. The Indian Journal of Agricultural Sciences 71(1)

Solanki SS, Chaurasiya A, Mudgal A, Mishra A, Singh, AK (2020) Effect of soil application of sulphur, farm yard manure and vermicompost on soil fertility, growth and yield of garlic (Allium sativum L.). IJCS 8(1): 1370-1373

Stamford NP, Freitas ADS, Ferraz DS, Montenegro A, Santos CERS (2003) Nitrogen fixation and growth of cowpea (Vigna unguiculata) and yam bean (Pachyrhizus erosus) in a sodic soil as affected by gypsum and sulfur inoculated with Thiobacillus and rhizobial inoculation. Trop Grassl 37:11–19

Vidyalakshmi R, Sridar R (2007) Isolation and characterization of sulfur oxidizing bacteria. J Culture Collect 5:73–77

Walkey, Black CA (1965) Methods of soil analysis part II, chemical and microbial properties number 9 in series Agronomy. American Soc. Agron. Inc. Mad

Wright AL, Hanlon EA, Rice R (2012) Managing pH in the everglades agricultural soils. Florida cooperative extension service fact sheet SL-287. UF/IFAS Electronic data information source (EDIS) database

Xavier IJ, Holloway G, Leggett M (2004) Development of rhizobial inoculant formulations. Crop Manag 3:1–6 DOI

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