Total RNA Purification Kits
For research use only and NOT intended for in vitro diagnostics.
CE-IVDR marked diagnostic version available here
For research use only and NOT intended for in vitro diagnostics.
CE-IVDR marked diagnostic version available here
Register today to receive an exclusive 15% off* on your first order.
These kits are suitable for the isolation of total RNA from a range of samples including cells, bacteria, yeast, virus and bodily fluids including plasma/serum, blood, saliva, CSF and more. Extract high quality and purity RNA with excellent RIN values and A260/A280 suitable for downstream applications including qRT-PCR, RT-PCR, microarrays, NGS and more. These kits purify all sizes of RNA from large mRNA, lncRNA down to microRNA (miRNA) in the same fraction without the requirement of phenol. Isolate all RNA sequences at an equal rate irrespective of size. Moreover, when the RNA sequences are small (e.g. miRNA), the column binds small RNAs regardless of their GC content.
Total RNA Purification 96-Well Kit (High Throughput and High Throughput Deep Well)
This 96-well kit provides a rapid method for the high-throughput isolation and purification of total RNA in 30 minutes using vacuum manifold, plate centrifuge, or liquid handlers with vacuum capabilities. Total RNA can be isolated from a broad range of sample sources including cultured cells, tissues, blood, serum, plasma, bacteria, yeast, fungi, and viruses.
Isolate RNA after Purifying EVs and Exosomes
Ultracentrifugation, Exoquick, Filtration
Cat. # | Name | Elution Volume | Plasma/Serum | Urine | Cell-Culture Media |
---|---|---|---|---|---|
55000 | Plasma/Serum RNA Purification Mini Kit | 10 - 25 µL | 50 µL - 1 mL | 250 µL - 1 mL | 5 - 10 mL |
35300 | Total RNA Purification Micro Kit | 20 - 50 µL | 1 - 4 mL | 2 - 10 mL | 10 - 20 mL |
17200 | Total RNA Purification Kit | 50 - 100 µL | 4 - 10 mL | 11 - 30 mL | 20 - 35 mL |
Kit Specifications
|
|
Maximum Binding Capacity
|
Up to 50 μg RNA
|
Maximum Loading Volume
|
650 μL
|
Size of RNA Purified
|
All sizes, including small RNA (< 200 nt)
|
Maximum Amount of Starting Material
|
|
Animal Cells | 3 x 106 cells |
Animal Tissues | 10 mg (for most tissues*) |
Blood | 100 μL |
Plasma/Serum | 200 μL |
Bacteria | 1 x 109 cells |
Yeast |
1 x 108 cells
|
Fungi |
50 mg
|
Plant Tissues |
50 mg
|
Time to Complete 10 Purifications |
20 minutes
|
Average Yield | |
HeLa Cells (1 x 106 cells) | 15 μg |
E. coli (1 x 109 cells) | 50 μg |
* for isolating total RNA from larger amounts of tissue, please use Norgen's Animal Tissue RNA Purification Kit (Cat# 25700)
Storage Conditions and Product Stability
All solutions should be kept tightly sealed and stored at room temperature. These kits are stable for 2 years after the date of shipment.
Component | Cat. 17200 (50 preps) | Cat. 37500 (100 preps) | Cat. 17250 (250 preps) | Cat. 17270 (500 preps) | Cat. 24300 (192 preps) | Cat. 24370 (576 preps) | Cat. 24350 (192 preps) | Cat. 24380 (576 preps) |
---|---|---|---|---|---|---|---|---|
Buffer RL | 40 mL | 2 x 40 mL | 175 mL | 350 mL | 2 x 40 mL | 350 mL | 2 x 40 mL | 350 mL |
Wash Solution A | 38 mL | 2 x 38 mL | 148 mL | 1 x 148 mL 1 x 74 mL |
2 x 38 mL | 1 x 74 mL 1 x 148 mL |
2 x 38 mL | 1 x 74 mL 1 x 148 mL |
Elution Solution A | 6 mL | 2 x 6 mL | 30 mL | 60 mL | 2 x 20 mL | 60 mL | 2 x 20 mL | 60 mL |
Mini Spin Columns | 50 | 100 | 250 | 500 | - | - | - | - |
96-Well Isolation Plate | - | - | - | - | 2 | 6 | - | - |
96-Well Isolation Plate (Deep Well) | - | - | - | - | - | - | 2 | 6 |
Adhesive Tape | - | - | - | - | 4 | 12 | 4 | 12 |
Collection Tubes | 50 | 100 | 250 | 500 | - | - | ||
96-Well Collection Plate | - | - | - | - | 2 | 6 | - | - |
96-Well Collection Plate (Deep Well) | - | - | - | - | - | - | 2 | 6 |
Elution Tubes (1.7 mL) | 50 | 100 | 250 | 500 | - | - | ||
96-Well Elution Plate | - | - | - | - | 2 | 6 | - | - |
96-Well Elution Plate (Deep Well) | - | - | - | - | - | - | 2 | 6 |
Product Insert | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Poor RNA recovery could be due to one or more of the following:
Column/well clogging can result from one or combination of the following factors:
RNA can be degraded due to the following factors:
If the RNA does not perform well in downstream applications, it may be due to one or more of the following:
The contamination with genomic DNA may be due to large amount of starting material used. Perform RNase-free DNase I digestion on the RNA sample after elution to remove genomic DNA contamination. It is recommended that Norgen’s RNase-Free DNase I Kit (Product # 25710) be used for this step.
Yes, the Total RNA purification kits can be used to purify RNA from samples like buffy coats and isolated PBMCs. For blood leukocyte samples, you can use a specialized product - Leukocyte RNA purification kit.
Yes, Total RNA purification kits can be used with samples stored in RNA protective agents like RNAlater. Norgen Biotek also provides a similar RNA preserve solution (Cat. 17260).
Yes, you can use Total RNA purification kits to purify RNA from insect samples. Please contact our Tech support team at support@norgenbiotek.com and ask for reference publications.
Yes, lysates prepared in buffer RL can be frozen at -80°C, and the remaining protocol can be performed at a later date.
Yes, you can use Norgen's Total RNA purification kits with the aqueous phase from samples prepared in TRIzol. Please contact our Tech Support team at support@norgenbiotek.com if you have any questions regarding the protocol.
Yes, Norgen Total RNA purification kits are compatible with tissue samples stored in OCT compound. Please contact our Tech Support team at support@norgenbiotek.com and ask for reference publications.
Title | Ciliated cultures from PCR patients do not product NO or iNOS during early infection |
Citation | CHEST 2013. |
Authors | CM Smith, MJ Fadaee-Shohada, R Sawhney, N Baker, G Williams, RA Hirst, PW Andrew, C O'Callaghan |
Title | Identification of Conserved and Novel MicroRNAs in Aquilaria sinensis Based on small RNA sequencing and transcriptome Sequence Data |
Citation | Gene 2012. |
Authors | Zhi-hui Gao, Jian-He Wei, Yun Yang, Zheng Zhang, Huan-Ying Xiong, Wen-ting Zhao |
Title | The role of heterodimerization between VEGFR-1 and VEGFR-2 in the regulation of endothelial cell homeostasis |
Citation | Nature Communications 2012. |
Authors | Melissa Cudmore, Peter Hewett, Shakil Ahmad, Ke-Qing Wang, Meng Cal, Bahjat Al-Ani, Takeshi Fujisawa, Samir Sissaoul, Wenda Ramma, Mark Miller, David Newby, Tuchun Gu, Bernhard Barleon, Herbert Welch, Asif Ahmed |
Title | Distinct immunoregulatory cytokine pattern in Egyptian patients with occult Hepatitis C infection and unexplained persistently elevated liver transaminases |
Citation | Asian Journal of Transfusion Science 2012. |
Authors | Yahia Gad, Narres Mouas, Azza Abdel-Aziz, Nashwa Abousmra, Mona Elhadidy |
Title | Nuclear protein 1 promotes pancreatic cancer development and protects cells from stress by inhibiting apoptosis |
Citation | Clinical Investigation 2012. |
Authors | Tewfik Hamidi, Hana Algul, Carla Eliana Cano, Maria Jose Sandi, Maria Molejon, Marc Riemann, Ezequiel Calvo, Gwen Lomberk, Jean-Charles Dagom, Falk Weih, Raul Urrutia, Roland Michael Schmid, Juan Lucio Iovanna |
Title | Dynamic expression of small RNA populations in larch (Larix leptolepis) |
Citation | Planta 2012. |
Authors | Junhong Zhang, Tao Wu, Long Li, Suying Han, Xinmin Li, Shougong Zhang, Liwang Qi |
Title | Novel variants of grapevine leafroll-associated virus 4 and 7detected from a grapevine showing leafroll symptoms |
Citation | Archives of Virology 2012. |
Authors | Takao Ito, Ryoji Nakaune, Masaaki Nakano, Koichi Suzaki |
Title | Selection and validation of reference genes for studying stress-related agarwood formation of Aquilaria sinensis |
Citation | Plant Cell Report 2012. |
Authors | Zhi-hui Gao, Jian-He Wei, Yun Yang, Zheng Zhang, Wen-ting Zhao |
Title | Potentially Novel Candidate Biomarkers for Head and Neck Squamous Cell Carcinoma Identified Using an Integrated Cell Line based Discovery Strategy |
Citation | The American Society for Biochemistry and Molecular Biology, 2012. |
Authors | Lusia Sepiashvili, Angela Hui, Vladimir Ignatchenko, Willa Shi, Susie Su, Wei Xu, Shao Hui Huang, Brian O'Sullivan, John Waldron, Jonathan Irish, Bayardo Perez0Ordonez, Fei-Fei Liu, Thomas Kislinger |
Title | Transcriptome profiling and in silico analysis of somatic embryos in Japanese larch (Larix leptolepis) |
Citation | Plant Cell Report 2012. |
Authors | Yuan Zhang, Shougong Zhang, Suying Han, Xinmin Li, Liwang Qi |