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Expression of the Grifola frondosa Trehalose Synthase Gene and Improvement of Drought-Tolerance in Sugarcane (Saccharum officinarum L.) 被引量:25
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作者 Shu-Zhen Zhang Ben-Peng Yang +4 位作者 Cui-Lian Feng Ru-Kai Chen Jing-Ping Luo Wen-Wei cai Fei-Hu Liu 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2006年第4期453-459,共7页
Trehalose Is a nonreduclng dlsaccharlde of glucose that functions as a protectant In the stabilization of blologlcal structures and enhances stress tolerance to abiotic stresses in organisms. We report here the expres... Trehalose Is a nonreduclng dlsaccharlde of glucose that functions as a protectant In the stabilization of blologlcal structures and enhances stress tolerance to abiotic stresses in organisms. We report here the expression of a Grlfola frondosa trehalose synthase (TSase) gene for Improving drought tolerance In sugarcane (Saccharum offlclnarum L.). The expression of the transgene was under the control of two tandem copies of the CaMV35S promoter and transferred Into sugarcane by Agrobacterium tumefaciens EHA105. The transgenlc plants accumulated high levels of trehalose, up to 8.805-12.863 mg/g fresh weight, whereas It was present at undetectable level in nontransgenlc plants. It has been reported that transgenlc plants transformed with Escherlchla coil TPS (trehalose-6-phosphatesynthase) and/or TPP (trehalose-6-phosphate phosphatase) are severely stunted and have root morphologlc alterations. Interestingly, our transgenlc sugarcane plants had no obvious morphological changes and no growth Inhibition in the field. Trehalose accumulation in 35S-35S:TSase plants resulted In In- creased drought tolerance, as shown by the drought and the drought physiological Indexes, such as the rate of bound water/free water, plasma membrane permeability, malondlaldehyde content, chlorophyll a and b contents, and activity of SOD and POD of the excised leaves. These results suggest that transgenlc plants transformed with the TSase gene can accumulate high levels of trehalose and have enhanced tolerance to drought. 展开更多
关键词 drought tolerance grifola frondosa Saccharum officinarum trehalose synthase gene.
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Genetic Transformation of Tobacco with the Trehalose Synthase Gene from Grifola frondosa Fr. Enhances the Resistance to Drought and Salt in Tobacco 被引量:9
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作者 Shu-ZhenZHANG Ben-PengYANG +1 位作者 Cui-LianFENG Huo-LongTANG 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2005年第5期579-587,共9页
Trehalose is a non-reducing disaccharide of glucose that functions as a protectant in the stabilization of biological structures and enhances the tolerance of organisms to abiotic stress. In the present study, we repo... Trehalose is a non-reducing disaccharide of glucose that functions as a protectant in the stabilization of biological structures and enhances the tolerance of organisms to abiotic stress. In the present study, we report on the expression of the Grifola frondosa Fr. Trehalose synthase (Tsase) gene for manipulating abiotic stress tolerance in tobacco (Nicotiana tabaccum L.). The expression of the transgene was under the control of two tandem copies of the CaMV3 5 S promoter and was transferred into tobacco by Agrobacterium tumefaciens EHA105. Compared with non-transgenic plants, transgenic plants were able to accumulate high levels of products of trehalose, which were increased up to 2.126–2.556 mg/g FW, although levels were undetectable in non-transgenic plants. This level of trehalose in transgenic plants was 400-fold higher than that of transgenic tobacco plants cotransformed with Escherichia coli TPS and TPP on independent expression cassettes, twofold higher than that of transgenic rice plants transformed with a bi functional fusion gene (TPSP) of the trehalose-6-phosphate (T-6-P) synthase (TPS) and T-6-P phosphatase (TPP) of E. coli, and 12-fold higher than that of transgenic tobacco plants transformed the yeast TPS1 gene. It has been reported that transgenic plants with E. coli TPS and/or TPP were severely stunted and had morphological alterations of their roots. Interestingly, our transgenic plants have obvious morphological changes, including thick and deep-coloured leaves, but show no growth inhibition; moreover, these morphological changes can restore to normal type in T2 progenies. Trehalose accumulation in 35S–35S:Tsase plants resulted in increased tolerance to drought and salt, as shown by the results of tests on drought, salt tolerance, and drought physiological indices, such as water content in excised leaves, malondialdehyde content, chlorophyll a and b contents, and the activity of superoxide dismutase and peroxidase in excised leaves. These results suggest that transgenic plants transformed with the Tsase gene can accumulate high levels of trehalose and have enhanced tolerance to drought and salt. 展开更多
关键词 drought and salt tolerance genetic transformation grifola frondosa Fr. Nicotiana tabaccum L. trehalose synthase gene
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杨树桑黄6-磷酸海藻糖合成酶基因克隆鉴定与表达分析
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作者 徐丛涛 李子豪 +5 位作者 潘晋龙 李海康 胡清秀 邹亚杰 陈晓华 弥春霞 《食用菌学报》 CSCD 北大核心 2024年第1期45-52,共8页
对杨树桑黄(Sanghuangporus vaninii)6-磷酸海藻糖合成酶基因(SvTPS)进行克隆和生物信息学分析,并进行原核表达;采用荧光定量PCR方法研究SvTPS在杨树桑黄菌丝体和不同年份子实体中的表达情况,测定菌丝体和不同年份子实体中SvTPS活性。... 对杨树桑黄(Sanghuangporus vaninii)6-磷酸海藻糖合成酶基因(SvTPS)进行克隆和生物信息学分析,并进行原核表达;采用荧光定量PCR方法研究SvTPS在杨树桑黄菌丝体和不同年份子实体中的表达情况,测定菌丝体和不同年份子实体中SvTPS活性。结果表明:SvTPS DNA序列长度为1894 bp,编码576个氨基酸。SvTPS相对分子质量为65130,等电点为6.21,脂肪系数为88.14,平均亲水系数为-0.281,不稳定系数为42.41。SvTPS氨基酸序列与暴马桑黄(S.baumii)的相似性最高,仅有一个TPS单结构域;SvTPS二级结构中α-螺旋、β-折叠、延伸链、无规卷曲占比分别为48.61%、5.56%、15.62%、30.21%。三年生子实体SvTPS的表达量最高,菌丝体的表达量最低。菌丝体的SvTPS活性最低;随着栽培时间增加,SvTPS活性增加,三年生子实体的最高。研究结果为进一步探讨SvTPS在杨树桑黄生长发育过程中的功能提供参考。 展开更多
关键词 杨树桑黄 6-磷酸海藻糖合成酶 基因克隆 蛋白表达
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灰树花海藻糖合成酶基因的克隆及其在大肠杆菌中的表达 被引量:4
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作者 徐志祥 李刚 +1 位作者 王震宇 李宝健 《微生物学报》 CAS CSCD 北大核心 2004年第4期540-542,共3页
海藻糖主要作用是作为生物体的结构组分、以及保护生物膜和保护蛋白质。在灰树花中 ,海藻糖在干重中所占比例最高可达到 1 5 %~ 1 7% ,说明灰树花合成海藻糖的能力很强。将灰树花海藻糖合成酶基因克隆 ,并在大肠杆菌表达系统里表达。... 海藻糖主要作用是作为生物体的结构组分、以及保护生物膜和保护蛋白质。在灰树花中 ,海藻糖在干重中所占比例最高可达到 1 5 %~ 1 7% ,说明灰树花合成海藻糖的能力很强。将灰树花海藻糖合成酶基因克隆 ,并在大肠杆菌表达系统里表达。表达量为 1 90mg L。通过活性测定 ,证明在大肠杆菌中表达的海藻糖合成酶具有酶活性 ,结合基因工程和酶工程方法 。 展开更多
关键词 灰树花 贝叶多孔菌 千佛菌 海藻糖合成酶基因 克隆 大肠杆菌 表达
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