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TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations

Purpose: Attempts to determine the transcriptional profile of discrete subsets of limbal epithelial cells in situ using laser capture microdissection (LCM) face two major challenges. First, the transcriptional profile of cells within a tissue may rapidly change as the tissue is excised and exposed t...

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Autores principales: Bath, Chris, Fink, Trine, Vorum, Henrik, Hjortdal, Jesper, Zachar, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Vision 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4057246/
https://www.ncbi.nlm.nih.gov/pubmed/24940035
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author Bath, Chris
Fink, Trine
Vorum, Henrik
Hjortdal, Jesper
Zachar, Vladimir
author_facet Bath, Chris
Fink, Trine
Vorum, Henrik
Hjortdal, Jesper
Zachar, Vladimir
author_sort Bath, Chris
collection PubMed
description Purpose: Attempts to determine the transcriptional profile of discrete subsets of limbal epithelial cells in situ using laser capture microdissection (LCM) face two major challenges. First, the transcriptional profile of cells within a tissue may rapidly change as the tissue is excised and exposed to cold ischemia. Second, there is a risk of degradation of the RNA as the cellular compartment is separated from the remaining tissue. An optimized protocol for LCM of corneal epithelium is presented to address these issues. Methods: Experiments using porcine eye globes were carried out to determine both optimal procedures and settings for tissue harvest, transport, storage, histology, LCM, and RNA isolation. The optimized protocol was validated using human corneal epithelium. Results: To facilitate preservation of the gene expression profile, we have developed a mechanical tool for dissection of cornea that, in combination with flash freezing, enables tissue to be stored within 5 min of enucleation of the eye. Furthermore, we describe how RNA from limbal crypt cells may be obtained using a procedure involving cryosectioning, histological staining, and LCM. Conclusion: In this paper, we describe an optimized method for isolating high-quality RNA from cellular subpopulations confined to the limbal crypts of the cornea. The procedure yields RNA in amounts and quality suitable for downstream gene expression analyses, such as microarrays or next generation sequencing.
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spelling pubmed-40572462014-06-17 TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations Bath, Chris Fink, Trine Vorum, Henrik Hjortdal, Jesper Zachar, Vladimir Mol Vis Technical Brief Purpose: Attempts to determine the transcriptional profile of discrete subsets of limbal epithelial cells in situ using laser capture microdissection (LCM) face two major challenges. First, the transcriptional profile of cells within a tissue may rapidly change as the tissue is excised and exposed to cold ischemia. Second, there is a risk of degradation of the RNA as the cellular compartment is separated from the remaining tissue. An optimized protocol for LCM of corneal epithelium is presented to address these issues. Methods: Experiments using porcine eye globes were carried out to determine both optimal procedures and settings for tissue harvest, transport, storage, histology, LCM, and RNA isolation. The optimized protocol was validated using human corneal epithelium. Results: To facilitate preservation of the gene expression profile, we have developed a mechanical tool for dissection of cornea that, in combination with flash freezing, enables tissue to be stored within 5 min of enucleation of the eye. Furthermore, we describe how RNA from limbal crypt cells may be obtained using a procedure involving cryosectioning, histological staining, and LCM. Conclusion: In this paper, we describe an optimized method for isolating high-quality RNA from cellular subpopulations confined to the limbal crypts of the cornea. The procedure yields RNA in amounts and quality suitable for downstream gene expression analyses, such as microarrays or next generation sequencing. Molecular Vision 2014-06-12 /pmc/articles/PMC4057246/ /pubmed/24940035 Text en Copyright © 2014 Molecular Vision. http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited, used for non-commercial purposes, and is not altered or transformed.
spellingShingle Technical Brief
Bath, Chris
Fink, Trine
Vorum, Henrik
Hjortdal, Jesper
Zachar, Vladimir
TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title_full TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title_fullStr TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title_full_unstemmed TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title_short TECHNICAL BRIEF: Optimized pipeline for isolation of high-quality RNA from corneal cell subpopulations
title_sort technical brief: optimized pipeline for isolation of high-quality rna from corneal cell subpopulations
topic Technical Brief
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4057246/
https://www.ncbi.nlm.nih.gov/pubmed/24940035
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