1.Isolation, idetification and anti-HIV-1 integrase activity of culturable endophytic fungi from Tibetan medicinal plant Phlomis younghusbandii Mukerjee.
Da-Wei ZHANG ; Ming-Ming ZHAO ; Juan CHEN ; Chao LI ; Shun-Xing GUO
Acta Pharmaceutica Sinica 2013;48(5):780-789
A total of 52 endophytic fungi were isolated from roots and stems of Tibetan medicinal plant Phlomis younghusbandii Mukerjee. These fungal isolates were molecularly identified based on ITS sequnces and 28S sequences distributed to 12 genera, including Phoma, Chaetosphaeronema, Fusarium and Leptosphaeria, etc. Among them, the dominant genus was Phoma. Extracts of all strains were evaluated for anti-HIV-1 integrase activity by using soluable integrase expressed in E. coli BL21 (DE3). The results showed that seven samples from five fungal endophytes PHY-24, PHY-38, PHY-40, PHY-51, PHY-53, which belonged to genus Chaetosphaeronema, inhibited strand transfer reaction catalyzed by HIV-1 integrase with IC50 values, of 6.60, 5.20, 2.86, 7.86, 4.47, 4.56 and 3.23 microg x mL(-1) respectively. In conclusion, the endophytic fungi of Phlomis younghusbandii Mukerjee are valuable for further screening anti-HIV-1 integrase agents.
Ascomycota
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enzymology
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isolation & purification
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Chaetomium
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enzymology
;
isolation & purification
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Endophytes
;
enzymology
;
isolation & purification
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Escherichia coli
;
enzymology
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HIV Integrase
;
genetics
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metabolism
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HIV Integrase Inhibitors
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pharmacology
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Phlomis
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microbiology
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Phylogeny
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Plant Roots
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microbiology
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Plant Stems
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microbiology
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Plants, Medicinal
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microbiology
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Plasmids
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Recombinant Proteins
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genetics
;
metabolism
2.Screening, purification, and characterization of an extracellular lipase from Aureobasidium pullulans isolated from stuffed buns steamers.
Yang LI ; Tong-Jie LIU ; Min-Jie ZHAO ; Hui ZHANG ; Feng-Qin FENG
Journal of Zhejiang University. Science. B 2019;20(4):332-342
An extracellular lipase from Aureobasidium pullulans was obtained and purified with a specific activity of 17.7 U/mg of protein using ultrafiltration and a DEAE-Sepharose Fast Flow column. Characterization of the lipase indicated that it is a novel finding from the species A. pullulans. The molecular weight of the lipase was 39.5 kDa, determined by sodium dodecyl sulfonate-polyacrylamide gel electrophoresis (SDS-PAGE). The enzyme exhibited its optimum activity at 40 °C and pH of 7. It also showed a remarkable stability in some organic solutions (30%, v/v) including n-propanol, isopropanol, dimethyl sulfoxide (DMSO), and hexane. The catalytic activity of the lipase was enhanced by Ca2+ and was slightly inhibited by Mn2+ and Zn2+ at a concentration of 10 mmol/L. The lipase was activated by the anionic surfactant SDS and the non-ionic surfactants Tween 20, Tween 80, and Triton X-100, but it was drastically inhibited by the cationic surfactant cetyl trimethyl ammonium bromide (CTAB). Furthermore, the lipase was able to hydrolyze a wide variety of edible oils, such as peanut oil, corn oil, sunflower seed oil, sesame oil, and olive oil. Our study indicated that the lipase we obtained is a potential biocatalyst for industrial use.
Ascomycota/enzymology*
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Calcium
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Catalysis
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Corn Oil/metabolism*
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Detergents/chemistry*
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Enzyme Stability
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Fungal Proteins/chemistry*
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Glucans/chemistry*
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Hexanes/chemistry*
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Hydrogen-Ion Concentration
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Hydrolysis
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Industrial Microbiology
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Lipase/chemistry*
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Manganese/chemistry*
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Olive Oil/metabolism*
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Peanut Oil/metabolism*
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Sesame Oil/metabolism*
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Substrate Specificity
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Sunflower Oil/metabolism*
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Surface-Active Agents
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Temperature
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Zinc/chemistry*