Microarray Comperative genomic hybridization Human

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Get tips on using BioPrime™ Array CGH Genomic Labeling Module to perform Microarray Comperative genomic hybridization - Human PBMCs

Products Thermo Fisher Scientific BioPrime™ Array CGH Genomic Labeling Module

Get tips on using Unrestricted HD-CGH Microarray ISCA v2, 4x44k to perform Microarray Comperative genomic hybridization - Human PBMCs

Products Agilent Technologies Unrestricted HD-CGH Microarray ISCA v2, 4x44k

Get tips on using SurePrint G3 Mouse GE 8x60K Microarray Kit to perform Microarray Comperative genomic hybridization - Mouse iPSC

Products Agilent Technologies SurePrint G3 Mouse GE 8x60K Microarray Kit

Get tips on using GeneChip™ Human Genome U133A 2.0 Array to perform Microarray Comperative genomic hybridization - Human Tumor

Products Thermo Fisher Scientific GeneChip™ Human Genome U133A 2.0 Array

Get tips on using CYTAG® CGH Labeling kit to perform Microarray Comperative genomic hybridization - Human Colon adenocarcinoma

Products Enzo Life Sciences CYTAG® CGH Labeling kit

RNA Microarray Human Precision cut lung slices Target preparation kit (RNA Amplification + Hybridization + control)

Microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray RNA amplification & Labeling Human blood Biotin

DNA microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray Gene expression arrays Human endometrial stromal cells Biotin

DNA microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray Gene expression arrays Human whole blood cells Biotin

Microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray RNA amplification & Labeling Human brain tissue Cyanine 3

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