siRNA / miRNA gene silencing Human Primary Endometrial Stromal Cells hsa-miR-542-3p

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Get tips on using HyClone Dulbecco's Modified Eagle Medium (DMEM)/ F12 1:1: Liquid to perform Stem cell Differentiation media hDPSCs differentiation into adipogenic cells

Products Cytiva HyClone Dulbecco's Modified Eagle Medium (DMEM)/ F12 1:1: Liquid

Get tips on using HyClone Dulbecco's Modified Eagle Medium (DMEM)/ F12 1:1: Liquid to perform Stem cell Differentiation media hDPSCs differentiation into osteogenic cells

Products Cytiva HyClone Dulbecco's Modified Eagle Medium (DMEM)/ F12 1:1: Liquid

Get tips on using MEMα with L-Glutamine, Phenol Red, Sodium Pyruvate and Nucleosides to perform Stem cell Differentiation media mPericytes differentiation into Osteogenic cells

Products Fujifilm Wako Chemicals Europe Gmbh MEMα with L-Glutamine, Phenol Red, Sodium Pyruvate and Nucleosides

Get tips on using pwPICZalpha-DT390-bi-pIL-2-Non-N-Gly to perform Protein Expression Eukaryotic cells - P. pastoris Porcine IL-2 fusion toxins

Products Zhirui Wang, Transplantation Biology Research Center, Massachuse pwPICZalpha-DT390-bi-pIL-2-Non-N-Gly

Get tips on using NEBNext® Ultra™ Directional RNA Library Prep Kit for Illumina® to perform RNA sequencing Mouse - ESCs (Embryonic Stem Cells)

Products New England BioLabs NEBNext® Ultra™ Directional RNA Library Prep Kit for Illumina®

ROS has a very short half-lives in biological environment as they are influenced by exposure to ambient oxygen. As it is highly reactive and hard to measure care should be taken to ensure the stability of the sample during isolation, preparation, storage, and analysis.

Cellular assays ROS assay cell type MiaPaCa-2 pancreatic carcinoma

Get tips on using Dead Cell Apoptosis Kit with Annexin V Alexa Fluor™ 488 & Propidium Iodide (PI) to perform Apoptosis assay cell type - HeLa cells

Products Thermo Fisher Scientific Dead Cell Apoptosis Kit with Annexin V Alexa Fluor™ 488 & Propidium Iodide (PI)

RNA quantification for appropriate concentration and quality (260/280 ratio) is an important step before downstream analysis (including sequencing, RT-qPCR, etc.). Having insufficient RNA quantities or a high salt or phenol in the RNA product can lead to variable or irreproducible downstream results. The various methods used for RNA quantification include: 1. UV spectrophotometric (challenges include: low sensitivity, cannot distinguish between nucleic acid species), 2. Fluorescence-based (challenges include: requires standards, cannot measure amplifiability, not sequence-specific), and 3. RT-PCR (challenges include: requires standards, time-intensive, costly). In order to overcome these challenges, and also to ensure the proper quantification and quality control for RNA product, it is important to use at least two or more methods in order to discard any inconsistencies. Using standards for calibrations increases the sensitivity range for RNA detention (fluorescence- and RT-PCR-based methods). When using RT- PCR, it is important to choose correct primers, aligning to the desired site on the template and of appropriate product length, along with positive, negative and loading controls. It is also important to have at least two primer pairs in order to confirm results.

RNA RNA quantification qPCR

RNA quantification for appropriate concentration and quality (260/280 ratio) is an important step before downstream analysis (including sequencing, RT-qPCR, etc.). Having insufficient RNA quantities or a high salt or phenol in the RNA product can lead to variable or irreproducible downstream results. The various methods used for RNA quantification include: 1. UV spectrophotometric (challenges include: low sensitivity, cannot distinguish between nucleic acid species), 2. Fluorescence-based (challenges include: requires standards, cannot measure amplifiability, not sequence-specific), and 3. RT-PCR (challenges include: requires standards, time-intensive, costly). In order to overcome these challenges, and also to ensure the proper quantification and quality control for RNA product, it is important to use at least two or more methods in order to discard any inconsistencies. Using standards for calibrations increases the sensitivity range for RNA detention (fluorescence- and RT-PCR-based methods). When using RT- PCR, it is important to choose correct primers, aligning to the desired site on the template and of appropriate product length, along with positive, negative and loading controls. It is also important to have at least two primer pairs in order to confirm results.

RNA RNA quantification Coloremetric

RNA quantification for appropriate concentration and quality (260/280 ratio) is an important step before downstream analysis (including sequencing, RT-qPCR, etc.). Having insufficient RNA quantities or a high salt or phenol in the RNA product can lead to variable or irreproducible downstream results. The various methods used for RNA quantification include: 1. UV spectrophotometric (challenges include: low sensitivity, cannot distinguish between nucleic acid species), 2. Fluorescence-based (challenges include: requires standards, cannot measure amplifiability, not sequence-specific), and 3. RT-PCR (challenges include: requires standards, time-intensive, costly). In order to overcome these challenges, and also to ensure the proper quantification and quality control for RNA product, it is important to use at least two or more methods in order to discard any inconsistencies. Using standards for calibrations increases the sensitivity range for RNA detention (fluorescence- and RT-PCR-based methods). When using RT- PCR, it is important to choose correct primers, aligning to the desired site on the template and of appropriate product length, along with positive, negative and loading controls. It is also important to have at least two primer pairs in order to confirm results.

RNA RNA quantification Fuorimetric

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