Blood Total RNA Kit
Suitable for extracting total RNA from 500 μl fresh or -80℃ frozen whole blood and bone marrow.
Price List
| Product No | Quantity | Price |
| 5201050 | 50 preps | contact us |
Description
Whole blood or bone marrow samples are lysed in a strong lysis buffer and precipitated to remove proteins. Add ethanol to the supernatant contained RNA, then add mixture to the spin column, the RNA was bound to the spin column. Residual proteins and inhibitors are filtered out, washed by Buffer WA and Buffer WBR, and eluted with RNase-Free water; the RNA can be used for various molecular biology experiments.
Specifications
Sample: 500 μl fresh or -80℃ frozen whole blood, bone marrow.
Elution volume: 50 μl.
Recovery: Up to 90%.
Applications: RT-PCR, Northern blot, Dot blot, mRNA isolation, blood RNA virus test, blood leukocyte fusion gene test.
Experimental data

Figure 1: RNA extracted from 500 μl whole blood (1-4 are the same sample) using the Simgen Blood Total RNA Extraction Kit.

Figure 2: Electrophoresis plot of RNA extracted by different method.
1, 2: RNA extracted from 500 μl leukocytes in whole blood (red blood cells removed by Red Blood Cell Lysis Buffer) using Tr**ol method.
3-6: RNA extracted from 500 μl the same whole blood sample using the Simgen Blood Total RNA Extraction Kit.
Publications

Resources
Thesis
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- Wu X,Pan J, Guo Y, et al. Molecular diagnosis of a Chinese pedigree with α-mannosidosis and identification of a novel missense mutation[J]. Journal of Pediatric Endocrinology and Metabolism, 2014, 27(5-6): 491-495.
- Zhang Q G, Liang Y H. A recurrent R936X mutation of CYLD gene in a Chinese family with multiple familial trichoepithelioma[J]. Indian Journal of Dermatology, Venereology and Leprology, 2015, 81: 192.
- Ali Z, Liang W, Jin L, et al. Development of magnetic nanoparticles based nucleic acid extraction method and application in hepatitis c virus chemiluminescent detection[J]. Science of Advanced Materials, 2015, 7(7): 1233-1240.
- Xiao C, Bao G, Wei Q, et al. Effects of Trichophyton mentagrophytes infection on the immune response of rabbits[J]. PeerJ, 2019, 7: e7632.
- Meng H, Wang X, Ruan J, et al. High expression levels of the SOCS3 gene are associated with acute myocardial infarction[J]. Genetic testing and molecular biomarkers, 2020, 24(7): 443-450.
- Chen C,Haddox S, Tang Y, et al. Landscape of chimeric RNAs in non-cancerous cells[J]. Genes, 2021, 12(4): 466.
- Tian Y, Wu B, Peng L, et al. Three Chinese pedigrees of A20 haploinsufficiency: clinical, cytokine and molecular characterization[J]. Frontiers in Immunology, 2022, 13.
- Zhang H, Gao J, Fang W, et al. Role of NINJ1 in Gout Flare and Potential as a Drug Target[J]. Journal of Inflammation Research, 2022: 5611-5620.
- Yin Y, Liu X, Tian Q, et al. Transcriptome and DNA methylome analysis of peripheral blood samples reveals incomplete restoration and transposable element activation after 3-month recovery of COVID-19[J]. medRxiv, 2022: 2022.04. 19.22274029.
- Liu J, Yuan P, Pang Y, et al. ITPKC polymorphism (rs7251246 T> C), coronary artery aneurysms, and thrombosis in patients with Kawasaki disease in a Southern Han Chinese population[J]. Frontiers in Immunology, 2023, 14: 1184162.
- Liu X, Gao J, Tao J. CD39 inhibits increased inflammation and promotes resolution of gout[J]. 2023.
- WangS, Cui D, Ling X, et al. Two novel variants of the STXBP1 and CHRNB2 genes identified in a Chinese boy with refractory seizures and developmental delay[J]. Psychiatric genetics, 2023, 33(5): 206-212.
- Zhang C, Yu H, Bai X, et al. MiR-15b-3p weakens bicalutamide sensitivity in prostate cancer via targeting KLF2 to suppress ferroptosis[J]. Journal of Cancer, 2024, 15(8): 2306.
- Deng Y, Zhang C, Yu H, et al. AAT resistance-related AC007405. 2 and AL354989. 1 as novel diagnostic and prognostic markers in prostate cancer[J]. Aging (Albany NY), 2024, 16(8): 7249.
- Qi F, Cao Y, Shen Y, et al. Nasopharyngeal neutrophilic‐retention signatures could predict disease progression in early SARS‐CoV‐2 infection[J]. Journal of Medical Virology, 2024, 96(1): e29328.
- Huang K, Yang M, Zhou Y, et al. Application of CD25 and CTLA4 gene transcription levels in early prediction of acute graft-versus-host disease[J]. Frontiers in Immunology, 2024, 15: 1410439.
- Wang Q, Yuan J, Zhang M, et al. Bioinformatics meets machine learning: identifying circulating biomarkers for vitiligo across blood and tissues[J]. Frontiers in Immunology, 2025, 16: 1543355.
- Liu X, Wang S, Du X, et al. Identification of Disulfidptosis-Related Genes and Molecular Subgroups in Rheumatoid Arthritis for Diagnostic Model and Patient Stratification[J]. Journal of Inflammation Research, 2025: 4157-4175.
