TransZol Up Plus RNA Kit
高純度RNA提取試劑盒
| 目錄號(hào) | 規(guī)格 | 單價(jià) |
|---|---|---|
| ER501-01-V2 | 100 rxns | 1430 |
產(chǎn)品詳情介紹
本試劑盒適用于從細(xì)胞和組織中提取總RNA,用TransZol Up裂解樣品,加入RNA Extraction Agent后,溶液分為無(wú)色水相和粉紅色有機(jī)相,RNA在水相中;用硅膠膜離心柱特異吸附水相中的RNA,與其它總RNA提取方法相比,既具有TransZol Up裂解能力強(qiáng)、提取量高,應(yīng)用范圍廣的優(yōu)點(diǎn),又具有離心柱提取RNA純度高的優(yōu)點(diǎn)。

RNA提取效率高

使用TransGen ER501產(chǎn)品,分別以REA和氯仿作為抽提試劑,提取等量的Hela細(xì)胞的RNA,瓊脂糖凝膠電泳分析提取效果。結(jié)果表明, TransGen 產(chǎn)品RNA提取效率高,REA與氯仿提取效果相當(dāng)。
對(duì)下游實(shí)驗(yàn)無(wú)擴(kuò)增抑制

使用TransGen ER501產(chǎn)品,分別以REA和氯仿作為抽提試劑,提取Hela細(xì)胞的RNA,用TransGen一步法RT-PCR產(chǎn)品 (AT411)分析擴(kuò)增效果。結(jié)果表明,使用REA作為抽提試劑提取的RNA對(duì)下游PCR實(shí)驗(yàn)無(wú)擴(kuò)增抑制。

使用TransGen ER501產(chǎn)品,分別以氯仿和REA作為抽提試劑,提取Hela細(xì)胞、煙草、小鼠組織的RNA,分別用TransGen一步法RT-qPCR產(chǎn)品(AQ211)和兩步法RT-qPCR產(chǎn)品 (AUQ)分析擴(kuò)增效果。結(jié)果表明,使用REA作為抽提試劑提取的RNA對(duì)下游qPCR實(shí)驗(yàn)無(wú)擴(kuò)增抑制。
DNA殘留量低

使用TransGen ER501產(chǎn)品,分別以氯仿和REA作為抽提試劑 ,以提取的Hela細(xì)胞RNA為模板,人gDNA為引物,用染料法qPCR產(chǎn)品(AQ601)分析DNA殘留量。結(jié)果表明,使用REA作為抽提試劑提取的RNA中DNA殘留量低。
適用多物種RNA的提取

使用TransGen ER501產(chǎn)品,分別以REA和氯仿作為抽提試劑,提取293T細(xì)胞、小鼠肝組織、煙草的RNA,瓊脂糖凝膠電泳分析提取效果。結(jié)果表明,TransGen產(chǎn)品可用于提取多物種RNA。
1.Fan Y H,Xu W C, Gao B Q,et al. Leveraging base excision repair for efficient adenine base editing of mitochondrial DNA[J]. Nature biotechnology, 2025(IF 33.10)
2.Li G, Chen G, Yuan G H, et al. Specific and efficient RNA A-to-I editing through cleavage of an ADAR inhibitor[J]. Nature Biotechnology, 2025(IF 33.10)
3.Du P, Li N, Xiong X, et al. A bivalent vaccine containing D614G and BA. 1 spike trimer proteins or a BA. 1 spike trimer protein booster shows broad neutralizing immunity[J]. Journal of Medical Virology, 2022.(IF 20.69)
4.Wang B, Tang X, Yao L, et al. Disruption of USP9X in macrophages promotes foam cell formation and atherosclerosis[J]. The Journal of Clinical Investigation, 2022.(IF 19.46)
5.Guo Z, Cao H, Zhao J, et al. A natural uORF variant confers phosphorus acquisition diversity in soybean[J]. Nature Communications, 2022.(IF 17.69)
6.Li X, Zhou L, Gao B Q, et al. Highly efficient prime editing by introducing same-sense mutations in pegRNA or stabilizing its structure[J]. Nature Communications, 2022.(IF 17.69)
7.Wang L, Xue W, Zhang H, et al. Eliminating base-editor-induced genome-wide and transcriptome-wide off-target mutations[J]. Nature Cell Biology, 2021.(IF 17.30)
8.Han W, Gao B Q, Zhu J, et al. Design and application of the transformer base editor in mammalian cells and mice[J]. Nature Protocols, 2023.(IF 14.80)
9.Jiang Q, Xie Y, Zhou B, et al. Nanomaterial inactivates environmental virus and enhances plant immunity for controlling tobacco mosaic virus disease[J]. Nature Communications, 2024.(IF 14.70)
10.Shan X, Zhao Z, Lai P, et al. RNA nanotherapeutics with fibrosis overexpression and retention for MASH treatment[J]. Nature communications, 2024.(IF 14.70)
11.Zhao Z, Ning J, Bao X, et al. Fecal microbiota transplantation protects rotenone-induced Parkinson’s disease mice via suppressing inflammation mediated by the lipopolysaccharide-TLR4 signaling pathway through the microbiota-gut-brain axis[J]. Microbiome, 2021.(IF 14.65)
12.Zhang M, Li F D, Li K, et al. Functional characterization and structural basis of an efficient di-C-glycosyltransferase from Glycyrrhiza glabra[J]. Journal of the American Chemical Society, 2020.(IF 14.40)
13.He L, Ma S, Ding Z, et al. Inhibition of NFAT5‐Dependent Astrocyte Swelling Alleviates Neuropathic Pain[J]. Advanced Science, 2024.(IF 14.30)
14.Zuo F, Jiang L, Su N, et al. Imaging the dynamics of messenger RNA with a bright and stable green fluorescent RNA[J]. Nature Chemical Biology, 2024.(IF 13.00)
15.Wang W Q, Xu D Y, Sui Y P, et al. A multiomic study uncovers a bZIP23-PER1A–mediated detoxification pathway to enhance seed vigor in rice[J]. Proceedings of the National Academy of Sciences, 2022.(IF 11.20)
16.Cao H R, Peng W T, Nie M M, et al. Carbon-nitrogen trading in symbiotic nodules depends on magnesium import[J]. Current Biology, 2022.(IF 10.90)
17.Zheng Z, Zhang X, Liu J, et al. GABAergic synapses suppress intestinal innate immunity via insulin signaling in Caenorhabditis elegans[J]. Proceedings of the National Academy of Sciences, 2021.(IF 9.50)
18.Song M, Yao H, Sun Z, et al. METTL3/YTHDC1-medicated m6A modification of circRNA3634 regulates the proliferation and differentiation of antler chondrocytes by miR-124486-5-MAPK1 axis[J]. Cellular & Molecular Biology Letters, 2023.(IF 9.20)
19.Zeng Y H, Cai Z H, Zhu J M, et al. Two hierarchical LuxR-LuxI type quorum sensing systems in Novosphingobium activate microcystin degradation through transcriptional regulation of the mlr pathway[J]. Water Research, 2020.(IF 9.13)
20.Chen J, Wang H, Yuan H, et al. Effects of dietary Clostridium autoethanogenum protein on the growth, disease resistance, intestinal digestion, immunity and microbiota structure of Litopenaeus vannamei reared at different water salinities[J]. Frontiers in Immunology, 2022.(IF 8.79)
21.Xiao K, Liu L, He R, et al. The Snf5‐Hsf1 transcription module synergistically regulates stress responses and pathogenicity by maintaining ROS homeostasis in Sclerotinia sclerotiorum[J]. New phytologist, 2024.(IF 8.30)
22.Liu Y, Zhou H, Fan J, et al. Potential mechanisms of different methylation degrees of pectin driving intestinal microbiota and their metabolites to modulate intestinal health of Micropterus salmoides[J]. International journal of biological macromolecules, 2023,(IF 8.20)
23.Liu Y, Fu X, Huang H, et al. High dietary histamine induces digestive tract oxidative damage in juvenile striped catfish (Pangasianodon hypophthalmus)[J]. Antioxidants, 2022,(IF 7.68)
24.Tan Y, Yan X, Sun J, et al. Genome‐wide enhancer identification by massively parallel reporter assay in Arabidopsis[J]. The Plant Journal, 2023.(IF 7.20)
25.Bian L, Zheng M, Chang T, et al. Degradation of Aflatoxin B1 by recombinant laccase extracellular produced from Escherichia coli[J]. Ecotoxicology and Environmental Safety, 2022.(IF 7.13)
26.Yang X, Feng P, Yin Y, et al. Cyclosporine biosynthesis in Tolypocladium inflatum benefits fungal adaptation to the environment[J]. MBio, 2018.(IF 6.69)
27.Su W, Raza A, Gao A, et al. Genome-wide analysis and expression profile of superoxide dismutase (SOD) gene family in rapeseed (Brassica napus L.) under different hormones and abiotic stress conditions[J]. Antioxidants, 2021.(IF 6.31)
28.Zhao Z, Bao X, Zhang Z, et al. Novel phloroglucinol derivative Compound 21 protects experimental autoimmune encephalomyelitis rats via inhibiting Th1/Th17 cell infiltration[J]. Brain, Behavior, and Immunity, 2020.(IF 6.17)
29.Raza A, Su W, Gao A, et al. Catalase (CAT) gene family in rapeseed (Brassica napus L.): Genome-wide analysis, identification, and expression pattern in response to multiple hormones and abiotic stress conditions[J]. International journal of molecular sciences, 2021.(IF 5.92)



