• 제목/요약/키워드: insoluble phosphate solubilization

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Stress Induced Phosphate Solubilization by Aspergillus awamori bxq33110 Isolated from Waste Mushroom Bed of Agaricus bisporus

  • Walpola, Buddhi Charana;Song, June-Seob;Jang, Kab-Yeul;Yoon, Min-Ho
    • 한국토양비료학회지
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    • 제45권3호
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    • pp.428-434
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    • 2012
  • A fungal strain, capable of solubilizing insoluble phosphate under diverse temperature, pH and salt conditions was isolated from Waste Mushroom bed of Agaricus bisporus in South Korea. Based on 18S rRNA analysis, the strain was identified as Aspergillus awamori bxq33110. The strain showed maximum phosphate solubilization in AYG medium (525 ${\mu}g\;mL^{-1}$) followed by NBRIP medium (515 ${\mu}g\;mL^{-1}$). The strain solubilized $Ca_3(PO_4)_2$ to a greater extent and rock phosphate and $FePO_4$ to a certain extent. However $AlPO_4$ solubilizing ability of the strain was found to be very low. Glucose at the rate of 2% ($561{\mu}g\;mL^{-1}$) was found be the best carbon source for Aspergillus awamori bxq33110 to solubilize maximum amount of phosphate. However, no significant difference ($P{\leq}0.05$) in phosphorus solubilization was found between 1% and 2% glucose concentrations. $(NH_4)_2SO_4$ was the best nitrogen source for Aspergillus awamori bxq33110 followed by $NH_4Cl$ and $NH_4NO_3$. At pH 7, temperature $30^{\circ}C$ and 5% salt concentration (674 ${\mu}g\;mL^{-1}$) were found to be the optimal conditions for insoluble phosphate solubilization. However, strain Aspergillus awamori bxq33110 was shown to have the ability to solublize phosphate under different stress conditions at $30-40^{\circ}C$ temperature, pH 7-10 and 0-10% salt concentrations indicating it's potential to be used as bio-inoculants in different environmental conditions.

Influence of Different pH Conditions and Phosphate Sources on Phosphate Solubilization by Pantoea agglomerans DSM3493

  • Walpola, Buddhi Charana;Keum, Mi-Jung;Yoon, Min-Ho
    • 한국토양비료학회지
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    • 제45권6호
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    • pp.998-1003
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    • 2012
  • Pantoea agglomerans DSM3493 was isolated from green house soils collected from Chungchugnam-do province, Gongju-Gun area in South Korea and phosphate solubilization and organic acid production of the strain were assessed using three types of insoluble phosphate sources (Ca phosphate, Fe phosphate and Al phosphate) under three different pH conditions (7, 8 and 9). The highest Ca phosphate solubilization ($651{\mu}g\;mL^{-1}$) was recorded at pH 7 followed by pH 8 and 9 (428 and $424{\mu}g\;mL^{-1}$ respectively). The solubilization rate was found to be 80.4, 98.1 and $88.7{\mu}g\;mL^{-1}$ (for Fe phosphate containing medium) and 9.3, 12.1 and $29.8{\mu}g\;mL^{-1}$ (for the Al phosphate containing medium) respectively at pH 7, 8 and 9. Though increasing pH of the medium caused reduction in the rate of solubilization of Ca phosphate, solubilization of Fe and Al phosphates enhanced with increasing pH. By contrast, the highest amount of organic acid was produced with Ca phosphate while the lowest was recorded with the presence of Al phosphate. Among the organic acids, gluconic acid production was found to be the highest, followed by oxalic acid and citric acid regardless the source of phosphate. Results can thus be concluded that the production of organic acids appears to play a significant role in the inorganic phosphate solubilization.

Isolation and Phosphate-Solubilizing Characteristics of PSM, Aeromonas hydrophila DA33

  • Song, Ok-Ryul;Lee, Seung-Jin;Lee, Mi-Wha;Choi, Si-Lim;Chung, Soo-Yeol;Lee, Young-Gyun;Choi, Yong-Lark
    • Journal of Life Science
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    • 제11권2호
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    • pp.63-69
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    • 2001
  • bacterium having high abilities to solubilize in-organic phosphate was isolated from cultivated soils. The strain was identified as Aeromonas hydrophila DA33, based on the physiological and biochemical properties. The optimum temperature and initial pH to solubilize insoluble phosphate in sucrose minimal medium were 3$0^{\circ}C$ and pH 5.0, respectively. In these conditions, phosphate-solubilizing activities of the strain against two types of insoluble phosphate were quantitatively determined. When glucose was used for carborn source, the strain had a marked mineral phospahte solubilizing activity. Inorganic phospahte solubilization was directly related to the pH drop by the strain. Analysis of the culture medium confirmed the production of gluconic acid as the main organic acid released by Aeromonas hydrophila DA33.

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미생물비료 생물자원인 불용성인산 가용화 세균의 분리, 동정 및 생리적 특성 (Isolation, Identification and Physiological Characteristics of Biofertilizer Resources, Insoluble Phosphate-Solubilizing Bacteria)

  • 손홍주
    • 미생물학회지
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    • 제39권1호
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    • pp.51-55
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    • 2003
  • 환경친화적인 미생물인산비료를 개발하기 위하여 불용성 인산을 가용화 시킬 수 있는 세균을 콩의 근권 토양으로부터 분리하였다. 분리균주의 분류학적 위치를 검토한 결과, Pantoea agglomerans로 동정되었다. 불용성 인산인 $Ca_{3}(PO_{4})_{2}$)로부터 가용성 인산을 생성하기 위한 최적 배지 및 배양조건은 glucose 3%, $NH_{4}NO_{3}$ 0.1%, $MgSO_{4}\cdot\7H_{2}O$ 0.02%, $CaCl_{2}\cdot\2H_{2}O$, 0.06%,초기 pH 7.5, 배양온도 $30^{\circ}C$이었으며, 최적조건에서 배양 5 일 후,898 mg/L의 인산이 생성되었다. 불용성 인산 가용화 기작은 유기산 생성에 의한 배양액의 pH감소와 밀접한 관계가 있었다. 분리균주는 $CaHPO_{4}$, hydroxyapatite로부터 각각 698,912 mg/L의 가용성 인산을 생성하였으나 $FePO_{4}\cdot\4H_{2}O$, $AIPO_{4}$로부터는 각각 28,19 mg/L.의 가용성 인산을 생성하였다.

토양에서 분리한 Aspergillus sp. PS-104 균주에 의한 난용성 인산염 분해 (Solubilization of Insoluble Phosphates by Aspergillus sp. PS-104 Isolated from Soil)

  • 강선철;신승용
    • 한국환경농학회지
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    • 제26권1호
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    • pp.36-41
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    • 2007
  • PDA-calcium phosphate 평판배지를 이용하여 경상남북도 일대의 토양으로부터 인산가용화능이 우수한 사상균을 분리하고 배양특성을 조사하였다. 최종적으로 분리한 인산가용화능이 우수한 사상균 PS-104 균주를 선발하여 형태적 특성을 조사한 결과 이 균주의 분생자는 비가지형으로 끝이 돌출되어 있으며, 균사가 격막으로 형성되는 등의 특징을 갖는 Aspergillus sp. PS-104 균주로 동정되었다. 이 균주의 인광석 분해능이 최대가 되는 최적 배양온도와 pH는 각각 $30^{\circ}C$와 pH 7.0이었다. 이와 같은 배양조건에서 tricalcium phosphate, aluminium phosphate, hydroxyapatite, 인광석 등의 난용성 인산염에 대한 이 균주의 인산가용화능을 살펴보면 최대 인산가용화능은 tricalcium-phosphate 처리구(1,900 ppm)에서, 최소 인산가용화능은 hydroxyapatite 처리구(320 ppm)에서 확인되었다. 또한 이 균주의 인산가용화능은 질소원으로 첨가한 ammonium 염보다 nitrate 염에서 높게 나타났다.

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

  • 이용석;박동주;김재훈;김형석;최용락
    • 생명과학회지
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    • 제23권2호
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    • pp.242-248
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    • 2013
  • 본 연구의 목적은 우수한 미생물 제제 개발용 인산염 가용화 균주의 개발이다. 경작지 토양에서 분리한 인산염 가용화 균주의 특성 및 16S rDNA 염기서열을 조사한 결과 Bacillus subtilis HR-1019로 동정되었다. Bacillus subtilis HR-1019는 hydroxyapatite, tri-calcium phosphate 및 aluminum phosphate 3가지의 난용성 인산염을 모두 가용화하였다. 난용성 인산염의 분해능이 최대가 되는 배양온도는 $37^{\circ}C$이었으며, 배양초기 pH가 5.0이었다. 탄소원으로 glucose를 5% 첨가시 가용화능이 높았으며, 가용화된 유리인산의 함량이 증가함에 따라 pH가 크게 감소하였다. 분리균주 HR-1019가 식물병원균에 대하여 균의 생육을 저지하는 clear zone 확인으로 항균효과를 확인하였다.

인광석 가용화 세균의 분리 및 가용화 최적조건 (Isolation of Insoluble Phosphate-Solubilizing Bacteria and Optimum Condition for Solubilization)

  • 김형종;정훈섭;김재호;이종수
    • 자연과학논문집
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    • 제12권1호
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    • pp.69-79
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    • 2002
  • PDA-calcium phosphate 평판배지를 이용하여 인산가용화활성을 가진 850종의 세균을 분리한 후 인광석에 대한 인산가용활성이 가장 강한 HS-2 균주를 선발하였다. 선정 균주의 형태학적, 배양학적 및 생리생화학적 특성 등을 조사한 결과 Azotobacter sp. HS-2로 동정되었고, 이 균주을 인광석을 0.1%함유한 Potato dextrose Broth배지 (pH 6.0)에 접종하여 $30^{\circ}C$에서 5일 배양했을 때 인광석이 가장 많이 분해되었고 0.5M의 수산을 첨가했을 때 분해율이 약 50% 증가되었다.

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Phosphate Solubilization and Gene Expression of Phosphate-Solubilizing Bacterium Burkholderia multivorans WS-FJ9 under Different Levels of Soluble Phosphate

  • Zeng, Qingwei;Wu, Xiaoqin;Wang, Jiangchuan;Ding, Xiaolei
    • Journal of Microbiology and Biotechnology
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    • 제27권4호
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    • pp.844-855
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    • 2017
  • Phosphate-solubilizing bacteria (PSB) have the ability to dissolve insoluble phosphate and enhance soil fertility. However, the growth and mineral phosphate solubilization of PSB could be affected by exogenous soluble phosphate and the mechanism has not been fully understood. In the present study, the growth and mineral phosphate-solubilizing characteristics of PSB strain Burkholderia multivorans WS-FJ9 were investigated at six levels of exogenous soluble phosphate (0, 0.5, 1, 5, 10, and 20 mM). The WS-FJ9 strain showed better growth at high levels of soluble phosphate. The phosphate-solubilizing activity of WS-FJ9 was reduced as the soluble phosphate concentration increased, as well as the production of pyruvic acid. Transcriptome profiling of WS-FJ9 at three levels of exogenous soluble phosphate (0, 5, and 20 mM) identified 446 differentially expressed genes, among which 44 genes were continuously up-regulated when soluble phosphate concentration was increased and 81 genes were continuously down-regulated. Some genes related to cell growth were continuously up-regulated, which would account for the better growth of WS-FJ9 at high levels of soluble phosphate. Genes involved in glucose metabolism, including glycerate kinase, 2-oxoglutarate dehydrogenase, and sugar ABC-type transporter, were continuously down-regulated, which indicates that metabolic channeling of glucose towards the phosphorylative pathway was negatively regulated by soluble phosphate. These findings represent an important first step in understanding the molecular mechanisms of soluble phosphate effects on the growth and mineral phosphate solubilization of PSB.

A Study of the Growth Condition and Solubilization of Phosphate from Hydroxyapatite by Pantoea agglomeraus

  • Il Jung;Park, Don-Hee;Park, Kyungmoon
    • Biotechnology and Bioprocess Engineering:BBE
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    • 제7권4호
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    • pp.201-205
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    • 2002
  • The growth conditions of Pantoea aggicmerans, a phosphate solubilizing organism, were studied In our laboratory to determine the optimal conditions. Pantoea aggionerans showed the highest growth rate at 30$\^{C}$, pH 7.0 and 2 vvm, after 50 h cultivation. A certain relationship between pH and phosphate concentration was evident when the glucose concentration in the me dium was changed. Increasing glucose concentration increased the pH buffer action of the broth. At glucose concentrations higher than the optimum concentration of 0.2 M, the cell growth was retarded. P. agglomerans consumed glucose as a substrate to produce organic acids which caused the pH decrease in the culture medium. The phosphate concentration in the medium was increased by the presence of the organic acids, which solubilized insoluble phosphates such as hydroxyapa-tite.

Phosphate solubilization by phosphate solubilizing microorganisms: insight into the mechanisms

  • Buddhi Charana, Walpola;Kodithuwakku Kankanange Indika Upali, Arunakumara;Min Ho, Yoon
    • 농업과학연구
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    • 제49권3호
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    • pp.463-481
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    • 2022
  • Phosphorous (P) is considered to be one of the key essential elements demanded by crop plants. Approximately 70 - 90% of phosphatic fertilizers applied to crops are fixed in soil as Ca, Fe, and Al metal cations, which are insoluble and thus not readily available for plant uptake. Therefore, most soils are deficient in plant available P. This is usually rectified by applying phosphate fertilizers continuously, although this is not economically viable or environmentally acceptable. The present paper reviews the mechanisms involved with phosphate solubilization and mineralization by phosphate solubilizing microorganisms (PSMs) with the associated factors that determine the success. PSMs are effectively involved in mediating the bioavailability of soil P. Their contribution includes mineralization of organic P solubilization of inorganic P minerals, and storing sizable amounts of P in biomass through different mechanisms such as the production of organic and inorganic acids, H2S, siderophores, exopolysaccharides, and production of enzymes such as phosphatases, phytase, and phosphonatases/C-P lyases, which are capable of chelating the metal ions, forming complexes, and making plant available P. PSMs manifest a wide range of metabolic functions in different environments, resulting in significantly higher plant growth, enhanced soil properties, and increased biological activities. Therefore, development of bio-inoculants with efficient novel PSM strains and further investigations on exploring such strains from diverse ecological niches with multifunctional plant-growth-promoting traits are needed.