siRNA / miRNA gene silencing Human Jurkat GAPDH

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Get tips on using siRNA Junction plakoglobin (SASI_Hs01_00246520) to perform siRNA / miRNA gene silencing Human - BxPC-3 plakoglobin

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Get tips on using Notch 1 siRNA (h) to perform siRNA / miRNA gene silencing Human - A2780 Notch 1

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Get tips on using NGFR p75 siRNA (h) to perform siRNA / miRNA gene silencing Human - HUVEC NGFR p75

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Get tips on using AMPKα1/2 siRNA (h) to perform siRNA / miRNA gene silencing Human - HepG2 AMPKα1/α2

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Get tips on using CREB-2 siRNA (h) to perform siRNA / miRNA gene silencing Human - HUVEC ATF4 Lipid

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Protein expression refers to the techniques in which a protein of interest is synthesized, modified or regulated in cells. The blueprints for proteins are stored in DNA which is then transcribed to produce messenger RNA (mRNA). mRNA is then translated into protein. In prokaryotes, this process of mRNA translation occurs simultaneously with mRNA transcription. In eukaryotes, these two processes occur at separate times and in separate cellular regions (transcription in nucleus and translation in the cytoplasm). Recombinant protein expression utilizes cellular machinery to generate proteins, instead of chemical synthesis of proteins as it is very complex. Proteins produced from such DNA templates are called recombinant proteins and DNA templates are simple to construct. Recombinant protein expression involves transfecting cells with a DNA vector that contains the template. The cultured cells can then transcribe and translate the desired protein. The cells can be lysed to extract the expressed protein for subsequent purification. Both prokaryotic and eukaryotic protein expression systems are widely used. The selection of the system depends on the type of protein, the requirements for functional activity and the desired yield. These expression systems include mammalian, insect, yeast, bacterial, algal and cell-free. Each of these has pros and cons. Mammalian expression systems can be used for transient or stable expression, with ultra high-yield protein expression. However, high yields are only possible in suspension cultures and more demanding culture conditions. Insect cultures are the same as mammalian, except that they can be used as both static and suspension cultures. These cultures also have demanding culture conditions and may also be time-consuming. Yeast cultures can produce eukaryotic proteins and are scalable, with minimum culture requirements. Yeast cultures may require growth culture optimization. Bacterial cultures are simple, scalable and low cost, but these may require protein-specific optimization and are not suitable for all mammalian proteins. Algal cultures are optimized for robust selection and expression, but these are less developed than other host platforms. Cell-free systems are open, free of any unnatural compounds, fast and simple. This system is, however, not optimal for scaling up.

Proteins Protein Expression Prokaryotic cells E. coli GAPDH

Get tips on using SignalSilence® SAPK/JNK siRNA to perform siRNA / miRNA gene silencing Human - KGN SAPK/JNK

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Get tips on using Lipofectamine® RNAiMAX Transfection Reagent to perform siRNA / RNAi /miRNA transfection Human Cells - Jurkat cells Lipofectamine

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Get tips on using SMARTpool: ON-TARGETplus TP63 siRNA to perform siRNA / miRNA gene silencing Human - A253 P36

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Get tips on using AllStars Hs Cell Death siRNA to perform siRNA / miRNA gene silencing Human - U2OS KRAS

Products Qiagen AllStars Hs Cell Death siRNA

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