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甲基化DNA免疫沉淀試劑盒,MeDIP統(tǒng)統(tǒng)抓下來

發(fā)布者:艾美捷科技    發(fā)布時間:2018-05-25     
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      【前情回顧】DNA甲基化(5-mc)極速分析試劑盒     DNA甲基化免疫共沉淀技術(shù)(MeDIP or mDIP) ,是一個大范圍的染色體或基因組純化技術(shù),在分子生物學中被用于富集DNA甲基化序列,它采用抗體或甲基化DNA結(jié)合蛋白來捕獲富集甲基化DNA的技術(shù),這種技術(shù)可以發(fā)現(xiàn)基因組中高度甲基化的區(qū)域,如CpG島。MeDIP技術(shù)特別適用于高通量測序以及芯片雜交檢測。

MeDIP-process

 

《MeDIP 的兩種廣泛應(yīng)用》

 

      艾美捷科技作為專業(yè)的生命科學領(lǐng)域解決方案供應(yīng)商,為您推薦來源于全球最暢銷,發(fā)表文章最多的甲基化DNA免疫沉淀(MeDIP)試劑盒:   

 
產(chǎn)品名稱及描述貨號產(chǎn)品說明
Methylamp Methylated DNA Capture (MeDIP) KitP-1015詳情
  •       該試劑盒需要的樣品:提取好的基因組DNA

 

       MeDIP試劑盒原理:  Methylamp甲基化DNA免疫沉淀試劑盒中含有捕獲樣品中甲基化DNA所需的所有試劑,并且,本試劑盒中還有一種CHIP-級5-MC抗體,以及正常小鼠的IgG陰性對照.DNA打斷之后,加入微孔板中,被抗體捕獲.然后DNA從復合物上解離下來,通過本公司特別設(shè)計的高速離心柱子純化,洗脫下來的DNA可以被用于隨后的各種擴增反應(yīng)。

 

        MeDIP試劑盒優(yōu)勢:

      1、高效地濃縮富集甲基化DNA,>98%;

      2、同類產(chǎn)品中最快速的試劑盒,3小時內(nèi)完成反應(yīng);

      3、96孔板模式使研究人員能根據(jù)自己需要選擇手工或是高通量分析;

      4、附有DNA純化柱子:節(jié)省時間和人力;

      5、操作簡便、結(jié)果可靠、統(tǒng)一的分析條件;

 

      實驗流程示意圖與結(jié)果展示:  

 

   MeDIP-result   

 

 

   《已發(fā)表28篇文章

      Linbo Gao et. al. (February 2018). Sulforaphane epigenetically demethylates the CpG sites of the miR-9-3 promoter and reactivates miR-9-3 expression in human lung cancer A549 cells Journal of Nutritional Biochemistry.

      Cao D et. al. (January 2018). S-adenosylmethionine reduces the inhibitory effect of Aβ on BDNF expression through decreasing methylation level of BDNF exon in rats. Biochem Biophys Res Commun. 495(4):2609-2615.

      van der Wijst MG et. al. (December 2017). Experimental mitochondria-targeted DNA methylation identifies GpC methylation, not CpG methylation, as potential regulator of mitochondrial gene expression. Sci Rep. 7(1):177.

      Daraei A et. al. (July 2017). Epigenetic Changes of the ESR1 Gene in Breast Tissue of Healthy Women: A Missing Link with Breast Cancer Risk Factors? Genet Test Mol Biomarkers.  

      Wang HD et. al. (June 2017). Detection of fetal epigenetic biomarkers through genome-wide DNA methylation study for non-invasive prenatal diagnosis. Mol Med Rep. 15(6):3989-3998.

      Khakpour G et. al. (March 2017). Methylomics of breast cancer: Seeking epimarkers in peripheral blood of young subjects.umour Biol. 39(3):1010428317695040.  

      Manish Mishra; Renu A. Kowluru et. al. (October 2016). The Role of DNA Methylation in the Metabolic Memory Phenomenon Associated With the Continued Progression of Diabetic Retinopathy. IOVS. 57:5748-5757.

      Xu X et. al. (March 2016). Hypoxia-induced Endothelial-Mesenchymal Transition is associated with RASAL1 promoter hypermethylation in human coronary endothelial cells. FEBS Lett.

      Li W et. al. (March 2016). Epigenetics reactivation of Nrf2 in Prostate TRAMP C1 Cells by curcumin analog FN1. Chem Res Toxicol.

       Tan X et. al. (January 2016). DNMT1 and HDAC2 Cooperate to Facilitate Aberrant Promoter Methylation in Inorganic Phosphate-Induced Endothelial-Mesenchymal Transition. PLoS One. 11(1):e0147816.

      Tan X et. al. (January 2016). High inorganic phosphate causes DNMT1 phosphorylation and subsequent fibrotic fibroblast activation. Biochem Biophys Res Commun.

      Mishra M et. al. (August 2015). Epigenetic Modification of Mitochondrial DNA in the Development of Diabetic Retinopathy. Invest Ophthalmol Vis Sci. 56(9):5133-42.

      Guo Y et. al. (March 2015). Curcumin inhibits anchorage-independent growth of HT29 human colon cancer cells by targeting epigenetic restoration of the tumor suppressor gene DLEC1. Biochem Pharmacol. 94(2):69-78.  

      Hong S et. al. (January 2015). Epigenetic regulation of genes that modulate chronic stress-induced visceral pain in the peripheral nervous system. Gastroenterology. 148(1):148-157.e7.

      Tampe B et. al. (December 2014). Induction of Tet3-dependent Epigenetic Remodeling by Low-dose Hy. EBioMedicine. 1(1)

      Green TJ et. al. (August 2014). Anti-viral gene induction is absent upon secondary challenge with double-stranded RNA in the Pacific oyster, Crassostrea gigas. Fish Shellfish Immunol. 39(2):492-7.

      Skowronki K et. al. (July 2014). Genome-Wide Analysis in Human Colorectal Cancer Cells Reveals Ischemia-Mediated Expression of Motility Genes via DNA Hypomethylation. PLoS One. 9(7):e103243.

      Wang J et. al. (July 2014). MicroRNA-152 Regulates DNA Methyltransferase 1 and Is Involved in the Development and Lactation of Mammary Glands in Dairy Cows. PLoS One. 9(7):e101358.  Michailidi C et. al. (April 2014). Genome-wide and gene-specific epigenomic platforms for hepatocellular carcinoma biomarker development trials. Gastroenterol Res Pract. 2014:597164.

      Wang HD et. al. (April 2014). DNA methylation study of fetus genome through a genome-wide analysis. BMC Med Genomics.7:18.

      Koch R et. al. (April 2014). Populational equilibrium through exosome-mediated Wnt signaling in tumor progression of diffuse large B-cell lymphoma. Blood. 123(14):2189-98.

      Pol Bodetto S et. al. (October 2013). Cocaine represses protein phosphatase-1Cβ through DNA methylation and Methyl-CpG Binding Protein-2 recruitment in adult rat brain. Neuropharmacology. 73:31-40.

      Zhang TY et. al. (January 2013). Epigenetic mechanisms for the early environmental regulation of hippocampal glucocorticoid receptor gene expression in rodents and humans. Neuropsychopharmacology. 38(1):111-23.  

      Tricker PJ et. al. (June 2012). Low relative humidity triggers RNA-directed de novo DNA methylation and suppression of genes controlling stomatal development. J Exp Bot. 63(10):3799-813.

      Yu F et. al. (January 2012). MicroRNA 34c gene down-regulation via DNA methylation promotes self-renewal and epithelial-mesenchymal transition in breast tumor-initiating cells. J Biol Chem. 287(1):465-73.

      Korostowski L et. al. (November 2011). Enhancer-driven chromatin interactions during development promote escape from silencing by a long non-coding RNA. Epigenetics Chromatin. 4:21.

      Zhou FC et. al. (April 2011). Alcohol alters DNA methylation patterns and inhibits neural stem cell differentiation. Alcohol Clin Exp Res. 35(4):735-46.  

      Hicks SD et. al. (September 2010). Ethanol-induced methylation of cell cycle genes in neural stem cells. J Neurochem.114(6):1767-80.  

 

 

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