ILLUMINA®TRUSEQ® VS NEBNEXT® SMALL RNA LIBRARY PREPARATION KIT FOR MIRNA PROFILING IN PERSICARIA MINOR: WHICH BETTER?

Authors

  • Abdul Fatah A. Samad School of Bioscience and Biotechnology, Universiti Kebangsaan Malaysia 43600 Bangi, Malaysia
  • Nazaruddin Muhammad Ali Department of Chemistry, University of Syiah Kuala, Darussalam-Banda Aceh 23111, Indonesia
  • Ismanizan Ismail Institute of Biology System, Universiti Kebangsaan Malaysia 43600 Bangi, Malaysia

DOI:

https://doi.org/10.11113/jt.v77.6720

Keywords:

Persicaria minor, next qeneration sequencing, Illumina®TruSeq® Small RNA Preparation kit, NEBNext® Multiplex Small RNA Library Preparation kit, miRNA

Abstract

In plants, a group of non-coding small RNA (sRNA) has been provento be an important player in regulating gene expression that can govern network of genetic systems. The two major classes of sRNA which are very extensively studied through deep sequencing, microRNA (miRNA) and small-interfering RNA (siRNA) classes, are well documented. However, the isolation method of sRNA differs depending on the type of sample. Here, we demonstrate the miRNA library preparation using two different Small RNA Library preparation kit, Illumina®TruSeq® Small RNA Preparation and NEBNext® Multiplex Small RNA Library Preparation kit on a plant rich in secondary metabolite Persicaria minor using recommended protocol. The result show NEBNext® Multiplex Small RNA Library Preparation kit can recover small RNA better than Illumina®TruSeq® Small RNA Preparation kit. Thus, this study recommended NEBNext® Multiplex Small RNA Library Preparation kit for miRNA library preparation on Persicaria minor.

References

Jones-Rhoades, M. W., Bartel, D. P. and Bartel, B. 2006. MicroRNAs and Their Regulatory Roles in Plants. Annu. Rev. Plant Biol. 57: 19-53.

Llave, C., Kasschau, K. D., Rector, M. A. and Carrington, J. C. 2002. Endogenous and Silencing-associated Small RNAs in Plants. Plant Cell. 14: 1605-1619.

Mette, M. F., van der Winden J., Matzke, M., Matzke, A. J. 2002. Short RNAs Can Identify New Candidate Transposable, Element Families in Arabidopsis. Plant Physiol. 130: 6-9.

Park, W., Li, J., Song, R., Messing, J., and Chen, X. 2002. CARPEL FACTORY, a Dicer Homolog, and HEN1, A Novel Protein, Act in MicroRNA Metabolism in Arabidopsis thaliana. Curr. Biol. 12: 1484-1495.

Reinhart, B. J., Weinstein E. G., Rhoades, M. W., Bartel, P. and Bartel, D. P. 2002. MicroRNAsin Plants. Genes Dev. 16: 16161-1626.

Sunkar, R., Girke, T., Jain, P. K. and Zhu, J. K. 2005. Cloning and Characterization of microRNAs from Rice. Plant Cell. 17: 1397-1411.

Sunkar, R. and Zhu, J. K. 2004. Novel and Stress-regulated microRNAs and other smallRNAs from Arabidopsis. Plant Cell. 16: 2001-2019.

Xie, Z., Kasschau, K. D., and Carrington, J. C. 2003. Negative Feedback Regulation of Dicer-Like1 in Arabidopsis by microRNA-guided mRNA degradation. Curr. Biol. 13: 784-789.

Cheng, L., Sun, L., Scicluna, B. J., Coleman, B. M. and Hill, A. F. 2014. Characterization and Deep Sequencing Analysis of Exosomal and Non-Exosomal miRNA in Human Urine. Kidney International. 86: 433-444.

Margulies, M., Egholm, M., Altman, W. E., et al. 2005. Genome Sequencing in Microfabricated High-Density Picolitre reactors. Nature. 437: 376-380.

Baharum, S. N., Bunawan H, Ghani, M. A., Mustapha, W. A., Noor, N. M. 2010. Analysis Of the Chemical Composition of the Essential Oil of Polygonum minus Huds. Using Two-Dimensional Gas Chromatography-Time-Of-Flight Mass Spectrophotometry (GC-TOF MS). Molecules. 15(10):7006-7015.

Almey, A. A., Jalal, A., Zahir, S. I., Suleiman, K. M., Aisyah, M. R., and Rahim, K. 2010. Total Phenolic Content and Primary Antioxidant Activity of Methanolic and Ethanolic Extracts Of Aromatic Plants' Leaves. International Food Research Journal. 17(4): 1077-1084.

Qader, S. W, Abdulla, M. A. and Hamdan, S. 2012. Potential Biactive Property of Polygonum minus Huds (kesum) Review. Scientific Research and Essays. 7: 90-93.

Taiz, L. and Zeiger, E. 2006. Plant Physiology. 4th edition. Sinauer Associates, Inc.

Yaakob. 1987. K. B. Kesom oil: A Natural Source of Aliphatic Aldehydes. Perfumer Flavorist. 12: 27-30.

Accerbi, M., Schmidt, S. A., De Paoli, E., Park, S., Jeong, D. H. and Green, P. J. 2010. Methods for Isolation of Total RNA to Recover miRNAs and other small RNAs from Diverse Species. Methods Mol Biol. 592: 31-50.

Zhang, R., Marshall D., Brayan, GJ., Hornyik, C. 2013. Identification and Characterization of miRNA Transcriptome in potato by High-Throughput Sequencing. PLoS ONE. 8(2): e57233.

Creasy, K. M., Khai, J., Borges, F., Van, Ex F., Regulski, M., Meyers, B. C., and Martienssen, R. A. 2014. miRNA Trigger Widespread Epigenetically Activated SiRNAs from Transposons in Arabidopsis. Nature. 508: 411-415.

Simbolo, M., Gottardi, M., Corbo, V., Fassan, M., Mafficini, A., Malpeli, G., Lawlor, RT. and Scarpa, A. 2013. DNA Qualification Workflow for Next Generation Sequencing of Histopathological Samples. PLoS ONE. 8(6): e62692.

Thermo Fisher Scientific. Qubit Fluorometer® vs. Competitors. [Online]. From: https://www.lifetechnologies.com/my/en/home/life-science/laboratory-instruments/fluorometers/qubit/qubit-fluorometer/qubit-vs-competitors.html. [Acessed on 9 July 2015].

Wolfe, A. R. and Meehan, T. 1994. The Effect of Sodium Ion Concentration on Intrastrand Base-Pairing in Single-Stranded DNA. Nucleic Acids Res. 22(15): 223147-223150.

Downloads

Published

2015-12-13

How to Cite

ILLUMINA®TRUSEQ® VS NEBNEXT® SMALL RNA LIBRARY PREPARATION KIT FOR MIRNA PROFILING IN PERSICARIA MINOR: WHICH BETTER?. (2015). Jurnal Teknologi, 77(24). https://doi.org/10.11113/jt.v77.6720