Protocol for Northern Blot
Materials Required
Principle
Northern blot detects a defined RNA species by separating denatured RNA by size, transferring RNA to a membrane, hybridizing with a complementary labeled DNA or RNA probe, and detecting probe-bound RNA by autoradiography, phosphorimaging, or validated nonradioactive detection[1][2][3].
The readout is both RNA size and abundance: band migration estimates transcript length or RNA-processing state, while band intensity reflects relative target RNA amount after normalization to total RNA, rRNA, or another validated loading control[2][4].
In cancer cells, primary neurons, mouse tumor samples, intestinal organoids, inflammatory macrophages, or drug-screening studies, Northern blot is most appropriate when transcript size, isoform pattern, RNA processing, or small-RNA detection is important; qPCR or RNA-seq can complement it when higher sensitivity or global profiling is needed[2][5][6].
MCE has not independently verified the accuracy of these methods. They are for reference only.
Experimental Materials
Reagents and chemicals
• Use purified total RNA or poly(A)+ RNA from the selected biological model as the analyte; use agarose-formaldehyde or glyoxal/DMSO denaturing gels for mRNA and long RNA analysis, because RNA secondary structure must be disrupted for size-based migration[2][3][7].• Use urea-polyacrylamide gels for small RNA targets such as miRNA, siRNA, or piRNA, because short RNAs require higher-resolution denaturing electrophoresis than standard agarose gels[8][9].
Antibodies, probes, dyes, or kits
• Use target-specific labeled DNA probes, RNA riboprobes, radiolabeled probes, or validated DIG-labeled probes for sequence-specific RNA detection[2][10][11].• Use total-RNA/rRNA staining to evaluate RNA integrity, loading, and transfer before target-signal interpretation[4].
Cells, tissues, isolated organs, organoids, or animals
• Use cancer cells, primary neurons, mouse tumor tissue, intestinal organoids, inflammatory macrophages, or drug-treated cultures only as RNA sources; Northern blot is performed on extracted RNA rather than intact biological samples[2][5].Buffers and solutions
• Prepare RNase-free denaturing loading buffer, electrophoresis buffer, transfer buffer, prehybridization buffer, hybridization buffer, and wash buffers with stringency matched to probe length and target sequence[2][3][7].Equipment and instruments
• Use RNase-free electrophoresis equipment, gel casting apparatus, capillary or downward blotting setup, nylon membrane, UV crosslinker or EDC crosslinking setup for small RNAs, hybridization oven, phosphorimager, autoradiography system, or chemiluminescence imager[2][8][9].Controls
• Include RNA size markers, positive-control RNA known to express the target, negative-control RNA when available, untreated or vehicle-treated control for drug screening, and total RNA/rRNA loading control; use housekeeping transcripts only if stable in the specific model and treatment condition[4][5][6].Experimental Procedure
Preparation Steps
• Extract RNA from cancer cells, neurons, tumors, organoids, macrophages, or treated cultures using an RNA-preserving method, quantify RNA, and confirm integrity before gel loading[2][4][5].• Design or obtain a probe complementary to the target RNA region; select radiolabeled probes for high sensitivity or DIG-labeled probes when a validated nonradioactive format is preferred[2][10][11].
• Choose the gel system according to expected RNA size: denaturing agarose for mRNA/long RNA and denaturing urea-polyacrylamide for small RNA[2][8][9].
Operation Steps
• Denature equal amounts of RNA in loading buffer and load samples with RNA size markers on the selected denaturing gel[2][3].• Electrophorese until the expected target-size range is resolved; report RNA input, gel type, denaturant, gel concentration, buffer, and running conditions because these vary across Northern blot formats[2][3][7].
• Visualize total RNA or rRNA to confirm integrity and comparable loading before transfer when compatible with downstream hybridization[4].
• Transfer RNA from gel to nylon membrane by capillary transfer or validated alkaline/downward transfer, then immobilize long RNA by UV crosslinking[2][12].
• For small RNA targets, immobilize RNA using EDC-mediated crosslinking, which improves detection of miRNA, siRNA, and piRNA compared with standard UV crosslinking[8][9].
• Prehybridize the membrane, hybridize with the labeled target-specific probe, wash under appropriate stringency, and detect the signal by phosphorimaging, autoradiography, or validated chemiluminescent detection[2][3][10].
• Strip and re-probe the membrane only when the membrane fixation and detection method support sequential hybridization[2][3].
Data Acquisition and Analysis
• Acquire nonsaturated images and quantify target bands by densitometry or phosphorimager signal; normalize target signal to total RNA/rRNA membrane signal or a validated reference transcript[2][4].• Interpret both band size and intensity: altered size may suggest alternative processing, degradation, or cross-hybridization, while altered intensity suggests relative abundance change only after RNA integrity, loading, and transfer are controlled[2][3].
• For cancer, neuronal, tumor, organoid, macrophage, or drug-screening experiments, use independent biological RNA preparations and technical replicate blots or lanes when possible; absence of signal should be interpreted cautiously because RT-PCR can detect some low-abundance transcripts missed by Northern blot[5][6].
Troubleshooting
Problem: No target band.
Possible Cause: low abundance RNA, degraded RNA, weak probe, or insufficient input.Literature-supported Solution: confirm RNA integrity, use poly(A)+ RNA when appropriate, use high-specific-activity or validated DIG probes, and consider RT-PCR for low-abundance targets[2][5][10].
Problem: Smearing.
Possible Cause: degraded RNA or incomplete denaturation.Literature-supported Solution: use intact RNA and denaturing agarose-formaldehyde or glyoxal/DMSO electrophoresis for long RNA[2][3][7].
Problem: Apparent expression change may be false.
Possible Cause: unequal RNA loading or transfer.Literature-supported Solution: quantify total RNA or rRNA on the membrane and normalize target signal accordingly[4].
Problem: Weak small-RNA signal.
Possible Cause: inefficient immobilization of short RNA.Literature-supported Solution: use EDC-mediated crosslinking for miRNA, siRNA, piRNA, or similar short RNAs[8][9].
Problem: High background or unexpected bands.
Possible Cause: nonspecific probe binding or inadequate wash stringency.Literature-supported Solution: optimize probe design, hybridization, and wash stringency using standard Northern hybridization conditions[2][3].
References:
- [1]. Alwine JC, et al. Method for detection of specific RNAs in agarose gels by transfer to diazobenzyloxymethyl-paper and hybridization with DNA probes. Proc Natl Acad Sci U S A. 1977;74(12):5350-5354. [Content Brief]
- [2]. Rio DC. Northern blots: capillary transfer of RNA from agarose gels and filter hybridization using standard stringency conditions. Cold Spring Harb Protoc. 2015;2015(3):306-313. [Content Brief]
- [3]. Brown T, et al. Analysis of RNA by northern and slot-blot hybridization. Curr Protoc Mol Biol. 2001;Chapter 4:Unit 4.9. [Content Brief]
- [4]. Denis N, et al. A rapid and accurate method for quantitating total RNA transferred during Northern blot analysis. Nucleic Acids Res. 1988;16(5):2354. [Content Brief]
- [5]. Fehr JE, et al. Comparison of Northern blot hybridization and a reverse transcriptase-polymerase chain reaction technique for measurement of mRNA expression of metalloproteinases and matrix components in articular cartilage and synovial membrane from horses with osteoarthritis. Am J Vet Res. 2000;61(8):900-905. [Content Brief]
- [6]. Nivet V, et al. Sensitive northern blot hybridization using digoxigenin RNA probes for the mRNA detection of two glucose transporter isoforms. Cell Mol Biol (Noisy-le-grand). 1995;41(7):979-984. [Content Brief]
- [7]. Brown T, et al. Analysis of RNA by Northern blot hybridization. Curr Protoc Hum Genet. 2001;Appendix 3:Appendix 3K.
- [8]. Pall GS, et al. Carbodiimide-mediated cross-linking of RNA to nylon membranes improves the detection of siRNA, miRNA and piRNA by northern blot. Nucleic Acids Res. 2007;35(8):e60. [Content Brief]
- [9]. Pall GS, et al. Improved northern blot method for enhanced detection of small RNA. Nat Protoc. 2008;3(6):1077-1084. [Content Brief]
- [10]. Belin D. The use of RNA probes for the analysis of gene expression. Northern blot hybridization and ribonuclease protection assay. Methods Mol Biol. 1998;86:87-102. [Content Brief]
- [11]. Sato M, et al. UV cross-linking of RNA to nylon membrane is suitable for northern blot hybridization using a digoxigenin-labeled DNA probe. Biotechniques. 1994;17(3):468,470-471. [Content Brief]
- [12]. Khandjian EW. UV crosslinking of RNA to nylon membrane enhances hybridization signals. Mol Biol Rep. 1986;11(2):107-115. [Content Brief]