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Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples

Measuring changes in protein or organelle abundance in the cell is an essential, but challenging aspect of cell biology. Frequently‐used methods for determining organelle abundance typically rely on detection of a very few marker proteins, so are unsatisfactory. In silico estimates of protein abunda...

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Autores principales: Hooper, Cornelia M., Stevens, Tim J., Saukkonen, Anna, Castleden, Ian R., Singh, Pragya, Mann, Gregory W., Fabre, Bertrand, Ito, Jun, Deery, Michael J, Lilley, Kathryn S., Petzold, Christopher J., Millar, A. Harvey, Heazlewood, Joshua L., Parsons, Harriet T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5863471/
https://www.ncbi.nlm.nih.gov/pubmed/29024340
http://dx.doi.org/10.1111/tpj.13743
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author Hooper, Cornelia M.
Stevens, Tim J.
Saukkonen, Anna
Castleden, Ian R.
Singh, Pragya
Mann, Gregory W.
Fabre, Bertrand
Ito, Jun
Deery, Michael J
Lilley, Kathryn S.
Petzold, Christopher J.
Millar, A. Harvey
Heazlewood, Joshua L.
Parsons, Harriet T.
author_facet Hooper, Cornelia M.
Stevens, Tim J.
Saukkonen, Anna
Castleden, Ian R.
Singh, Pragya
Mann, Gregory W.
Fabre, Bertrand
Ito, Jun
Deery, Michael J
Lilley, Kathryn S.
Petzold, Christopher J.
Millar, A. Harvey
Heazlewood, Joshua L.
Parsons, Harriet T.
author_sort Hooper, Cornelia M.
collection PubMed
description Measuring changes in protein or organelle abundance in the cell is an essential, but challenging aspect of cell biology. Frequently‐used methods for determining organelle abundance typically rely on detection of a very few marker proteins, so are unsatisfactory. In silico estimates of protein abundances from publicly available protein spectra can provide useful standard abundance values but contain only data from tissue proteomes, and are not coupled to organelle localization data. A new protein abundance score, the normalized protein abundance scale (NPAS), expands on the number of scored proteins and the scoring accuracy of lower‐abundance proteins in Arabidopsis. NPAS was combined with subcellular protein localization data, facilitating quantitative estimations of organelle abundance during routine experimental procedures. A suite of targeted proteomics markers for subcellular compartment markers was developed, enabling independent verification of in silico estimates for relative organelle abundance. Estimation of relative organelle abundance was found to be reproducible and consistent over a range of tissues and growth conditions. In silico abundance estimations and localization data have been combined into an online tool, multiple marker abundance profiling, available in the SUBA4 toolbox (http://suba.live).
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spelling pubmed-58634712018-03-26 Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples Hooper, Cornelia M. Stevens, Tim J. Saukkonen, Anna Castleden, Ian R. Singh, Pragya Mann, Gregory W. Fabre, Bertrand Ito, Jun Deery, Michael J Lilley, Kathryn S. Petzold, Christopher J. Millar, A. Harvey Heazlewood, Joshua L. Parsons, Harriet T. Plant J Resource Measuring changes in protein or organelle abundance in the cell is an essential, but challenging aspect of cell biology. Frequently‐used methods for determining organelle abundance typically rely on detection of a very few marker proteins, so are unsatisfactory. In silico estimates of protein abundances from publicly available protein spectra can provide useful standard abundance values but contain only data from tissue proteomes, and are not coupled to organelle localization data. A new protein abundance score, the normalized protein abundance scale (NPAS), expands on the number of scored proteins and the scoring accuracy of lower‐abundance proteins in Arabidopsis. NPAS was combined with subcellular protein localization data, facilitating quantitative estimations of organelle abundance during routine experimental procedures. A suite of targeted proteomics markers for subcellular compartment markers was developed, enabling independent verification of in silico estimates for relative organelle abundance. Estimation of relative organelle abundance was found to be reproducible and consistent over a range of tissues and growth conditions. In silico abundance estimations and localization data have been combined into an online tool, multiple marker abundance profiling, available in the SUBA4 toolbox (http://suba.live). John Wiley and Sons Inc. 2017-11-20 2017-12 /pmc/articles/PMC5863471/ /pubmed/29024340 http://dx.doi.org/10.1111/tpj.13743 Text en © 2017 The Authors The Plant Journal published by John Wiley & Sons Ltd and Society for Experimental Biology. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Resource
Hooper, Cornelia M.
Stevens, Tim J.
Saukkonen, Anna
Castleden, Ian R.
Singh, Pragya
Mann, Gregory W.
Fabre, Bertrand
Ito, Jun
Deery, Michael J
Lilley, Kathryn S.
Petzold, Christopher J.
Millar, A. Harvey
Heazlewood, Joshua L.
Parsons, Harriet T.
Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title_full Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title_fullStr Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title_full_unstemmed Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title_short Multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
title_sort multiple marker abundance profiling: combining selected reaction monitoring and data‐dependent acquisition for rapid estimation of organelle abundance in subcellular samples
topic Resource
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5863471/
https://www.ncbi.nlm.nih.gov/pubmed/29024340
http://dx.doi.org/10.1111/tpj.13743
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