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灵芝深层发酵生物富集硒、锌的研究 被引量:4
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作者 苗敬芝 涂宝军 吕兆启 《食品研究与开发》 CAS 北大核心 2007年第11期53-55,共3页
研究了灵芝深层发酵生物富集硒、锌的效应。结果表明:生物富集硒,锌的最佳浓度分别为Se-120mg/L,Zn-40mg/L,富集硒的生物量为12.57g/L,富硒量859.71μg/g,富硒率9.01%。富集锌生物量15.38g/L,富锌量798.10μg/g,富锌率30.69%。
关键词 灵芝 深层发酵 生物富集 生物富集锌
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卫星灵芝液体发酵富集硒锌的研究 被引量:1
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作者 杨泽涛 李莉 +1 位作者 陈超 修翠娟 《微生物学杂志》 CAS CSCD 2012年第1期53-56,共4页
研究不同浓度的硒、锌对卫星灵芝菌丝体生长的影响,初步探讨卫星灵芝菌丝体生物富集硒、锌的效应。采用平板培养法及液体发酵法研究锌、硒对卫星灵芝菌丝体生长的影响及富集效应。培养基中不同浓度的亚硒酸钠对菌丝体生长均具有不同程... 研究不同浓度的硒、锌对卫星灵芝菌丝体生长的影响,初步探讨卫星灵芝菌丝体生物富集硒、锌的效应。采用平板培养法及液体发酵法研究锌、硒对卫星灵芝菌丝体生长的影响及富集效应。培养基中不同浓度的亚硒酸钠对菌丝体生长均具有不同程度的抑制作用,但灵芝菌丝体的富硒量随着硒浓度的增加而提高,当亚硒酸钠浓度为40 mg/L时,菌丝体中的生物量、富硒量及富硒转化率最高,分别为1.54%、2 131.55 mg/kg、32.91%;培养基中硫酸锌浓度低于150 mg/L的范围内对卫星灵芝菌丝体生长有明显的促进作用,硫酸锌浓度为60 mg/L时菌丝体中的锌含量和富锌转化率最高,分别为1 142.91 mg/kg、1.76%。培养基中同时添加40 mg/L的亚硒酸钠和60 mg/L硫酸锌,菌丝体生长量1.60%,富硒量301.85 mg/kg,富硒率4.84%;富锌量为540.41 mg/kg,富锌率为5.72%。 展开更多
关键词 灵芝 深层发酵 生物富集 生物富集锌
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Responses of Carbonic Anhydrase to Cadmium in the Zinc/Cadmium Hyperaccumulator Picris divaricata Vant.
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作者 LIU Saihua TANG Yetao +3 位作者 QIU Rongliang YING Rongrong GE Ruiguang JI Xionghui 《Pedosphere》 SCIE CAS CSCD 2016年第5期709-716,共8页
A number of higher plants are able to hyperaccumulate cadmium(Cd). However, it is unknown whether cadmium(Cd) plays a biological functional role in the carbonic anhydrase(CA) of hyperaccumulators. A hydroponic experim... A number of higher plants are able to hyperaccumulate cadmium(Cd). However, it is unknown whether cadmium(Cd) plays a biological functional role in the carbonic anhydrase(CA) of hyperaccumulators. A hydroponic experiment was conducted to explore the potentially physiological function of Cd in CA and the accumulation and tolerance of Cd in the Zn/Cd hyperaccumulator Picris divaricata Vant. P. divaricata was exposed to nutrient solutions with six Cd concentrations(0, 5, 10, 25, 50 and 75 μmol L^(-1)). After 12 d, plants were harvested for the analysis of plant biomass, Cd concentration and CA activity. The Cd concentrations in plant increased with the increasing Cd in nutrient solution, reaching 640 and 3 100 mg kg^(-1) in shoot and root, respectively, at the 75 μmol L^(-1) Cd treatment. Meanwhile, plant growth was enhanced by the Cd treatments at 5–25 μmol L^(-1), but it was significantly inhibited when the plants were exposed to solutions with higher Cd concerntrations(50 and 75 μmol L^(-1)). Exposure to Cd significantly increased the CA activity in P. divaricata, which reached a maximum value of 21.27 U mg^(-1) proteins at the 25 μmol L^(-1)Cd treatment, and the CA activity and shoot Cd concentration were positively correlated at solutions Cd of ≤ 25 μmol L^(-1). Moreover, two protein bands appeared on the denatured gel electrophoresis of purified CA, indicating that P. divaricata may have CA isomers with their respective molecular weights at around 60 and 55 k Da, at least one of which is Cd-bound. In addition, trace amounts of Cd in purified CA significantly increased with the supplied Cd concentration in nutrient solution(5–25 μmol L^(-1)). The results suggested that Cd may play a biological role by enhancing the activities and forming the active Cd-specific CA in the hyperaccumulator P. divaricata. 展开更多
关键词 Cd enzyme purification heavy metal metal-contaminated soil PHYTOREMEDIATION plant enzyme protein PURIFICATION
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