Literature DB >> 21914789

High-throughput simultaneous analysis of RNA, protein, and lipid biomarkers in heterogeneous tissue samples.

Vladimír Reiser1, Ryan C Smith, Jiyan Xue, Marc M Kurtz, Rong Liu, Cheryl Legrand, Xuanmin He, Xiang Yu, Peggy Wong, John S Hinchcliffe, Michael R Tanen, Gloria Lazar, Renata Zieba, Marina Ichetovkin, Zhu Chen, Edward A O'Neill, Wesley K Tanaka, Matthew J Marton, Jason Liao, Mark Morris, Eric Hailman, George Y Tokiwa, Andrew S Plump.   

Abstract

BACKGROUND: With expanding biomarker discovery efforts and increasing costs of drug development, it is critical to maximize the value of mass-limited clinical samples. The main limitation of available methods is the inability to isolate and analyze, from a single sample, molecules requiring incompatible extraction methods. Thus, we developed a novel semiautomated method for tissue processing and tissue milling and division (TMAD).
METHODS: We used a SilverHawk atherectomy catheter to collect atherosclerotic plaques from patients requiring peripheral atherectomy. Tissue preservation by flash freezing was compared with immersion in RNAlater®, and tissue grinding by traditional mortar and pestle was compared with TMAD. Comparators were protein, RNA, and lipid yield and quality. Reproducibility of analyte yield from aliquots of the same tissue sample processed by TMAD was also measured.
RESULTS: The quantity and quality of biomarkers extracted from tissue prepared by TMAD was at least as good as that extracted from tissue stored and prepared by traditional means. TMAD enabled parallel analysis of gene expression (quantitative reverse-transcription PCR, microarray), protein composition (ELISA), and lipid content (biochemical assay) from as little as 20 mg of tissue. The mean correlation was r = 0.97 in molecular composition (RNA, protein, or lipid) between aliquots of individual samples generated by TMAD. We also demonstrated that it is feasible to use TMAD in a large-scale clinical study setting.
CONCLUSIONS: The TMAD methodology described here enables semiautomated, high-throughput sampling of small amounts of heterogeneous tissue specimens by multiple analytical techniques with generally improved quality of recovered biomolecules.

Entities:  

Mesh:

Substances:

Year:  2011        PMID: 21914789     DOI: 10.1373/clinchem.2010.157743

Source DB:  PubMed          Journal:  Clin Chem        ISSN: 0009-9147            Impact factor:   8.327


  4 in total

1.  Simultaneous lipidomic and transcriptomic profiling in mouse brain punches of acute epileptic seizure model compared to controls.

Authors:  Raissa Lerner; Julia M Post; Shane R Ellis; D R Naomi Vos; Ron M A Heeren; Beat Lutz; Laura Bindila
Journal:  J Lipid Res       Date:  2017-12-05       Impact factor: 5.922

2.  Automated serial extraction of DNA and RNA from biobanked tissue specimens.

Authors:  Lucy Mathot; Monica Wallin; Tobias Sjöblom
Journal:  BMC Biotechnol       Date:  2013-08-19       Impact factor: 2.563

3.  RNA Extraction from Animal and Human's Cancerous Tissues: Does Tissue Matter?

Authors:  Ali Akbar Samadani; Novin Nikbakhsh; Sadegh Fattahi; Roghayeh Pourbagher; Seyyed Mohsen Aghajanpour Mir; Narges Mousavi Kani; Zeinab Abedian; Haleh Akhavan-Niaki
Journal:  Int J Mol Cell Med       Date:  2015

4.  Preserving plant samples from remote locations for detection of RNA and DNA viruses.

Authors:  Islam Hamim; Jon Y Suzuki; Wayne B Borth; Michael J Melzer; Marisa M Wall; John S Hu
Journal:  Front Microbiol       Date:  2022-08-25       Impact factor: 6.064

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.