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Arabidopsis TT19 Functions as a Carrier to Transport Anthocyanin from the Cytosol to Tonoplasts 被引量:37
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作者 Yi Sun Hong Li Ji-Rong Huang 《Molecular Plant》 SCIE CAS CSCD 2012年第2期387-400,共14页
Anthocyanins are synthesized in the cytosolic surface of the endoplasmic reticulum (ER) but dominantly accumulate in the vacuole. Little is known about how anthocyanins are transported from the ER to the vacuole. He... Anthocyanins are synthesized in the cytosolic surface of the endoplasmic reticulum (ER) but dominantly accumulate in the vacuole. Little is known about how anthocyanins are transported from the ER to the vacuole. Here, we provide evidence supporting that Transparent Testa 19 (TT19), a glutathione 5-transferase (GST), functions as a carrier to transport cyanidin and/or anthocyanins to the tonoplast. We identified a novel tt19 mutant (tt19-7), which barely accumulates anthocyanins but produces a 36% higher level of flavonol than the wild-type (WT), from ethyl methanesulfonate mutagenized seeds. Expressing TT19-fused green fluorescence protein (GFP) in tt19-7 rescues the mutant phenotype in defective anthocyanin biosynthesis, indicating that TT19-GFP is functional. We further showed that TT19-GFP is localized not only in the cytoplasm and nuclei, but also on the tonoplast. The membrane localization of TT19-GFP was further ascertained by immunoblot analysis. In vitro assay showed that the purified recombinant TT19 increases water solubility of cyanidin (Cya) and cyanidin-3-O-glycoside (C3G). Compared with C3G, Cya can dramatically quench the intrinsic tryptophan fluorescence of TT19 to much lower levels, indicating a higher affinity of TT19 to Cya than to C3G. Isothermal titration calorimetry analysis also confirmed physical interaction between TT19 and C3G. Taken together, our data reveal molecular mechanism underlying TT19-mediated anthocyanin transportation. 展开更多
关键词 ANTHOCYANIN CYANIDIN TRANSPORTATION tt19 Arabidopsis.
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芸薹属TT19基因家族RNA干扰载体的构建 被引量:1
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作者 陈艳 柴友荣 +1 位作者 张迪 冯瑜 《贵州农业科学》 CAS 北大核心 2011年第3期1-4,共4页
为构建芸薹属TT19基因家族的RNAi载体,为芸薹属植物的种皮色素、观赏色彩等性状的研究和修饰打基础。利用PCR克隆芸薹属TT19基因家族的RNAi片段,采用双酶切将其反义片段和正义片段分别从T-载体亚克隆到平台载体pFGC5941M的启动子与间隔... 为构建芸薹属TT19基因家族的RNAi载体,为芸薹属植物的种皮色素、观赏色彩等性状的研究和修饰打基础。利用PCR克隆芸薹属TT19基因家族的RNAi片段,采用双酶切将其反义片段和正义片段分别从T-载体亚克隆到平台载体pFGC5941M的启动子与间隔区之间和间隔区与终止子之间,形成RNAi载体,转化大肠杆菌并完成PCR鉴定,再转化根癌农杆菌LBA4404得到工程菌株。结果表明:克隆得到200 bp(含人工酶切位点)的芸薹属TT19基因家族RNAi片段BTT19 I,其对应于甘蓝型油菜BnTT19-1mRNA的363~540 bp,其反义和正义片段分别被NcoI+AatII和BamHI+XbaI双酶切亚克隆到pFGC5941M中,得到10552 bp的RNAi载体pFGC5941M-BTT19I(简称pBTT19I)。成功构建了芸薹属TT19基因家族的RNAi载体。 展开更多
关键词 芸薹属 RNA干扰(RNAI) tt19 载体构建
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