• Title/Summary/Keyword: biofertilizer

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Micropropagation from root segments to improve seedling quality in Chinese foxglove crops

  • Pham, Thanh Loan;Nguyen, Van Huy;Hoang, Thi Le Thu;Ha, Thi Tam Tien;Tran, Trung Kien;Vu, Xuan Duong;Cao, Phi Bang;Nguyen, Quang Trung
    • Journal of Plant Biotechnology
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    • v.47 no.3
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    • pp.235-241
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    • 2020
  • This is the first study to establish a complete protocol for micropropagation of Rehmannia glutinosa from root segments. The study involved investigating the effect of plant growth regulators on in vitro shoot regeneration and rooting and identifying substrates supporting survival and growth performance of ex vitro seedlings. A Murashige and Skoog (MS) medium containing 30 g/L sucrose for shoot induction and 0.2 mg/L indole-3-acetic acid (IAA), 1 mg/L 6-benzylaminopurine (BAP), and 1 g/L polyvinylpyrrolidone (PVP) for shoot multiplication resulted in the highest number of shoots per explant and shoot height. Applying a medium containing 0.5 mg/L IAA and 1 g/L PVP yielded optimal rooting of the shoots grown in vitro. Compost enriched with microbial inoculants and perlite enhanced seedling growth better than that with organic biofertilizer-free substrates (soil and sand). We recommend the continuous production of micropropagated R. glutinosa seedlings from root segments under the aforementioned conditions as a possible propagation technique for crops of this species.

Inoculation with Indole-3-Acetic Acid-Producing Rhizospheric Rhodobacter sphaeroides KE149 Augments Growth of Adzuki Bean Plants Under Water Stress

  • Kang, Sang-Mo;Adhikari, Arjun;Lee, Ko-Eun;Khan, Muhammad Aaqil;Khan, Abdul Latif;Shahzad, Raheem;Dhungana, Sanjeev Kumar;Lee, In-Jung
    • Journal of Microbiology and Biotechnology
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    • v.30 no.5
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    • pp.717-725
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    • 2020
  • The use of plant growth-promoting rhizobacteria is economically viable and environmentally safe for mitigating various plant stresses. Abiotic stresses such as flood and drought are a serious threat to modern agriculture. In the present study, the indole-3-acetic acid-producing rhizobacterium R. sphaeroides KE149 was selected, and its effects on the growth of adzuki bean plants under flood stress (FS) and drought stress (DS) were investigated. IAA quantification of bacterial pure culture revealed that KE149 produced a significant amount of IAA. Moreover, KE149 inoculation notably decreased stress-responsive endogenous abscisic acid and jasmonic acid and increased salicylic acid in plants under DS and FS. KE149 inoculation also increased proline under DS and methionine under FS. In addition, KE149 inoculation significantly increased the levels of calcium (Ca), magnesium (Mg), and potassium (K) while lowering the sodium (Na) content in the plant shoot under stress. KE149-treated plants had markedly greater root length, shoot length, stem diameter, biomass, and higher chlorophyll content under both normal and stressed conditions. These results suggest that KE149 could be an efficient biofertilizer for mitigating water stress.

Isolation and Characterization of Siderophore-Producing Bacteria with Various Plant Growth-Promoting Abilities as a Potential Biocontrol Agent (잠재적 미생물 농약으로서 다양한 식물성장 촉진 활성을 가진 siderophore 생산 세균의 분리와 특성)

  • Choi, Seunghoon;Yoo, Ji-Yeon;Park, SungJin;Park, MinJoo;Lee, O-Mi;Son, Hong-Joo
    • Journal of Environmental Science International
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    • v.29 no.9
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    • pp.925-933
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    • 2020
  • To develop eco-friendly microbial inoculants, siderophore-producing bacteria were isolated and identified, and their production characteristics and plant growth-promoting abilities were investigated. A strain S21 was isolated from rhizosphere of Korean perilla (Perilla frutescens) and identified as Enterobacter amnigenus by phenotypic properties and 16S rRNA gene sequencing. The highest siderophore production was obtained in a medium containing 0.5% fructose, 0.1% urea, 0.5% K2HPO4 and 0.1% succinic acid. By using this improved medium, siderophore production increased by 2.5 times compared to that of basal medium. The strain S21 showed insoluble phosphate solubilizing, ammonification and antifungal activities, and also produced hydrolytic enzymes (protease and lipase), indoleacetic acid and 1-aminocyclopropane-1-carboxylate deaminase. Our data suggest that E. amnigenus S21 is a potential candidate that can be used as eco-friendly biocontrol agent and biofertilizer.

Isolation and Characteristic of the Phosphate Solubilizing Bacteria Klebsiella sp. DA 71-1 (Hydroxyapatite 인산염 가용화 균 Klebsiella sp. DA 71-1의 분리와 가용화특성)

  • 이진우;정연주;이경아;최시림;김영길;최용락
    • Journal of Life Science
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    • v.14 no.1
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    • pp.174-179
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    • 2004
  • To develop high effiency biofertilizer, a bacterium having ability to solubilize inorganic phosphate was isolated from cultivated soils, using a sucrose minimal agar-hydroxyapatite medium. The strain was identified as Klebsiella sp. DA7l-1, based on the physiological and biochemical properties. The activity of solubilizing inorganic phosphate of Klebsiella sp. DA7l-1 against three types of insoluble phosphate such as tri-calcium phosphate, aluminium phosphate, hydroxyapatite were quantitatively determined. The results indicated that the strain solubilized hydroxyapatite. The MPS (mineral phosphate solubilizing) conditions of Klebsiella sp. DA7l-1, were measured to determine the optimal conditions. The optimal temperature and initial pH to solubilize insoluble phosphate in sucrose minimal medium were $30^{\circ}C$ and pH 6.0, respectively.

Isolation and Cultural Characteristics of a Phosphate-Solubilizing Bacterium, Aeromonas hydrophila DA57 (인산가용화균 Aeromonas hydrophila DA 57의 분리와 배양 중 가용화특성)

  • Song, Ok-Ryul;Lee, Seung-Jin;Kim, Se-Hoon;Chung, Soo-Yeol;Cha, In-Ho;Choi, Yong-Lark
    • Applied Biological Chemistry
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    • v.44 no.4
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    • pp.251-256
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    • 2001
  • To develop biofertilizer solubilizing inorganic phosphate, a bacterium having high abilities to solubilize inorganic phosphate were isolated from cultivated soils. The strain was identified to Aeromonas hydrophila DA57, based on the physiological and biochemical properties. The optimum temperature and initial pH to solubilize insoluvle phosphate in sucrose minimal medium were $30^{\circ}C$ and pH 7.0, respectively. In these conditions phosphate solubilizing activities of the strain against three types of insoluble phosphate were quantitatively determined. It was possivle to distinguish between solubilization through release of gluconic acid and still unknown mechanism. Aemmonas hydrophila DA57 harbored a 4.5 kb cryptic plasmid.

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Isolation and Characterization of Protease Producing B. amyloliquefaciens JH-35 from Food Waste (음식물 쓰레기로부터 Protease를 생산하는 B. amyloliquefaciens JH-35의 분리 및 특성)

  • Yoo, Jae Hong;Joo, Jin Ho;Kim, Sung Gug;Jang, In-Hwan
    • Korean Journal of Environmental Agriculture
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    • v.35 no.4
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    • pp.294-301
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    • 2016
  • BACKGROUND: Recent studies have described the importance of microbes and enzymes that can compost food waste. This study was carried out to improve production of protease of isolated microbes from food waste. METHODS AND RESULTS: Seven bacteria isolated from various sources were screened for protease production by adding skim milk into the agar medium. About 7 microbes producing protease were tested, and strain JH-35 showed the highest protease activity among them. The strain was identified as Bacillus amyloliquefaciens JH-35 based on morphological, cultural, physiological characteristics and 16S rRNA. In the fermentation experiment, the assay B. amyloliquefaciens JH-35 showed the highest protease activity in the condition of 1% glucose, 1.5% yeast extract and 0.2%$ K_2HPO_4$. The optimal condition of culture with temperature $35^{\circ}C$, initial pH of 7 and shaking speed of 200 rpm and 24 hr. CONCLUSION: The protease of the B. amyloliquefaciens JH-35 had its activity at pH 7 and the optimal culture time was 24 hr. Also, B. amyloliquefaciens JH-35 was high salt tolerance. Our results suggest that B. amyloliquefaciens JH-35 from food waste may have the potential to degrade protein and carbohydrate in food waste.

Plant Growth-promoting Activity of Acremonium strictum MJN1 Isolated from Roots of Panax ginseng

  • Lim, Hyung-Bum;Chung, Yang-Jo;Bae, Ju-Yun;Kim, Dong-Jin;Kwon, Hyung-Jin;Lee, In Hyung;Chung, Byung-Chul;Lee, Woong-Sang;Suh, Joo-Won
    • Journal of Applied Biological Chemistry
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    • v.43 no.2
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    • pp.104-108
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    • 2000
  • The plant growth-promoting activity of Acremonium strictum MJN1 isolated from roots of Panox ginseng was explored. The myceliaI extract of A. strictum MJN1 enhanced the rice seedling growth by 14.5 and 9.0% in the dried weight of shoots and roots, and the growth of red pepper by 54 and 85% in the top length and the dried weight in pot experiments, respectively. The plant growth-promoting substances in the myceliaI extract of Acremonium strictum MJN1 were identified as D-adenosine and glycerol. Both commercial D-adenosine and glycerol also promoted significantly the rice seedling growth but, unlike the mycelial extract of A. strictum MJN1, hardly affected the yields of plants grown in pots or field. Therefore, it is possible that other plant growth-promoting substances are produced by A. strictum MJN1. However, this study shows that A. strictum MJN1 has a great potential as a biofertilizer.

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Isolation and Characterization of a Novel Bacterium, Bacillus subtilis HR-1019, with Insoluble Phosphates Solubilizing Activity (인산가용화 활성을 갖는 바실러스 서브틸리스 HR-1019 분리와 특성)

  • Lee, Yong-Suk;Park, Dong-Ju;Kim, Jae Hoon;Kim, Hyeong Seok;Choi, Yong-Lark
    • Journal of Life Science
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    • v.23 no.2
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    • pp.242-248
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    • 2013
  • The objective of this study was to develop a mineral phosphate-solubilizing bacterium as a biofertilizer. A mineral phosphate-solubilizing bacterium HR-1019 was isolated from cultivated soils. It was identified as Bacillus subtilis by 16S rDNA analysis. The phosphate-solubilizing activities of the HR-1019 strain against three types of insoluble phosphate, hydroxyapatite, tri-calcium phosphate, and aluminum phosphate were quantitatively determined. When 5% of glucose concentration was used as a carbon source, the strain showed marked mineral phosphate-solubilizing activity. Mineral phosphate solubilization was directly related to pH drop in the culture solution of the strain. The pathogenic activity and antifungal effects of the HR-1019 strain were measured inclear zones formed in PDA media.

Suppression of Fusarium Wilt Caused by Fusarium oxysporum f. sp. lactucae and Growth Promotion on Lettuce Using Bacterial Isolates

  • Yadav, Dil Raj;Adhikari, Mahesh;Kim, Sang Woo;Kim, Hyun Seung;Lee, Youn Su
    • Journal of Microbiology and Biotechnology
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    • v.31 no.9
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    • pp.1241-1255
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    • 2021
  • This study was carried out to explore a non-chemical strategy for enhancing productivity by employing some antagonistic rhizobacteria. One hundred eighteen bacterial isolates were obtained from the rhizospheric zone of various crop fields of Gangwon-do, Korea, and screened for antifungal activity against Fusarium wilt (Fusarium oxysporum f. sp. lactucae) in lettuce crop under in vitro and in vivo conditions. In broth-based dual culture assay, fourteen bacterial isolates showed significant inhibition of mycelial growth of F. oxysporium f. sp. lactucae. All of the antagonistic isolates were further characterized for the antagonistic traits under in vitro conditions. The isolates were identified on the basis of biochemical characteristics and confirmed at their species level by 16S rRNA gene sequencing analysis. Arthrobacter sulfonivorans, Bacillus siamensis, Bacillus amyloliquefaciens, Pseudomonas proteolytica, four Paenibacillus peoriae strains, and Bacillus subtilis were identified from the biochemical characterization and 16S rRNA gene sequencing analysis. The isolates EN21 and EN23 showed significant decrease in disease severity on lettuce compared to infected control and other bacterial treatments under greenhouse conditions. Two bacterial isolates, EN4 and EN21, were evaluated to assess their disease reduction and growth promotion in lettuce in field conditions. The consortium of EN4 and EN21 showed significant enhancement of growth on lettuce by suppressing disease caused by F. oxysporum f. sp. lactucae respectively. This study clearly indicates that the promising isolates, EN4 (P. proteolytica) and EN21 (Bacillus siamensis), can be commercialized and used as biofertilizer and/or biopesticide for sustainable crop production.

Effect of Heavy Metal Resistant and Halotolerant Rhizobacterium Bacillus safensis KJW143 on Soybean under Salinty and Cadmium Exposure

  • Eun-Hae Kwon;Ho-Jun Gam;Yosep Kang;Jin-Ryeol Jeon;Ji-In Woo;Sang-Mo Kang;In-Jung Lee
    • Proceedings of the Korean Society of Crop Science Conference
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    • 2023.04a
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    • pp.32-32
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    • 2023
  • Cadmium and salt exposure to crops is considered vulnerable for production as well as consumption. To address these challenges, the current study aimed to mitigate the toxicity induced by salt and cadmium in soybean plants through the application of bacterial strain Bacillus safensis KJW143 isolated from the rhizosphere of oriental melon..The bioassay analysis revealed that KJW143 is a highly salt-tolerant and cadmium-resistant (Cd) strain with an innate ability to produce melatonin, gibberellin (GA3), Indole-3-Acetic Acid (IAA), and organic acids (i.e., acetic, succinic, lactic, and propionic acids). Soybean plants at 20 days old were treated with KJW143 in a different form (pellet, broth, and together) and their effect on plant performance was investigated. Inoculation with KJW143enhanced plant biomass and growth attributes in soybean plants compared to the control (non-treated). In particular, we observed that only pellet-treated showed 65%, 27.5%, and 28.7% increase in growth (shoot fresh weight) compared to broth, broth with pellet, and control. In addition, bacterial strain KJW143 treatment (only pellet) modulated the physiochemical apparatus of soybean plants by increasing glucose (390%), arabinose (166%), citric acid (22.98%) and reducing hydrogen peroxide (29.7%), catalase (32.1%), salicylic acid (25.6%) compared to plants with combined stressed plants (cd and salinity). These findings suggest that bacterial strain KJW143 could be usedas a biofertilizer to minimize the probable risk of heavy metal and salinity stress on crops.

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