siRNA / miRNA gene silencing Human UCC (urothelial cancer cell lines)

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RNA siRNA / miRNA gene silencing Rat Retinal stem cells Brn-3b

RNA siRNA / miRNA gene silencing Rat Cardiomyocyte (H9C2) HIF-1α Lipid

RNA siRNA / miRNA gene silencing Rat Brain endothelial cells HIF-1α Lipid

Get tips on using STEAP2 metalloreductase to perform siRNA / miRNA gene silencing Human - PC3 (human prostate cancer cell line) STEAP2

Products Thermo Fisher Scientific STEAP2 metalloreductase

RNA siRNA / miRNA gene silencing Mouse Glomerular mesangial cells HIPK2 Polymer / Lipid delivery

Get tips on using SiRNA silencing human Eph receptor B4, Id: s243 to perform siRNA / miRNA gene silencing Human - HNSCC cell line Eph receptor B4 Polymer / Lipid

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Get tips on using SiRNA silencing human Eph receptor B4, Id: 533 to perform siRNA / miRNA gene silencing Human - HNSCC cell line Eph receptor B4 Polymer / Lipid

Products Thermo Fisher Scientific SiRNA silencing human Eph receptor B4, Id: 533

Reporter gene assays enable high sensitivity measurement of gene expression and cell signaling through the addition of bioluminescent genes into target cells. One of the major challenges is to make a specific construct that has no responses other than those related to the signaling pathway of interest. This can be achieved by selecting highly specific reporter constructs containing only defined responsive elements and a minimal promoter linked to reporter enzymes such as luciferase

Cellular assays Reporter gene assay β-galactosidase substrates MCF-7 human breast cancer

Get tips on using heat shock protein family A (Hsp70) member 5 to perform siRNA / miRNA gene silencing Human - PC3 (human prostate cancer cell line) HSPA5 (GRP78)

Products Thermo Fisher Scientific heat shock protein family A (Hsp70) member 5

RNAi or RNA interference is a common method to suppress gene expression in vitro/in vivo by utilizing the inherent microRNA machinery, without introducing a total gene knockout. miRNA is the inherent gene silencing machinery which can have more than one mRNA target, whereas siRNA can be designed to target a particular mRNA target. By design, both siRNA and miRNA are 20-25 nucleotides in length. The target sequence for siRNAs is usually located within the open reading frame, between 50 and 100 nucleotides downstream of the start codon. There are two ways in which cells can be transfected with desired RNAi: 1. Direct transfection (with calcium phosphate co-precipitation or cationic lipid-mediated transfection using lipofectamine or oligofectamine), and 2. Making RNAi lentiviral constructs (followed by transformation and transduction). Lentiviral constructs are time-consuming, but provide a more permanent expression of RNAi in the cells and consistent gene silencing. Direct transfection of oligonucleotides provides temporary genetic suppression. Traditional methods like calcium phosphate co-precipitation have challenges like low efficiency, poor reproducibility and cell toxicity. Whereas, cationic lipid-based transfection reagents are able to overcome these challenges, along with applicability to a large variety of eukaryotic cell lines.

RNA siRNA / RNAi /miRNA transfection Human Cells HT-1376 GLUT1

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