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Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data

Accurate determination of circadian phase is necessary for research and clinical purposes because of the influence of the master circadian pacemaker on multiple physiologic functions. Melatonin is presently the most accurate marker of the activity of the human circadian pacemaker. Current methods of...

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Autores principales: Klerman, Hadassa, St. Hilaire, Melissa A., Kronauer, Richard E., Gooley, Joshua J., Gronfier, Claude, Hull, Joseph T., Lockley, Steven W., Santhi, Nayantara, Wang, Wei, Klerman, Elizabeth B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3325223/
https://www.ncbi.nlm.nih.gov/pubmed/22511928
http://dx.doi.org/10.1371/journal.pone.0033836
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author Klerman, Hadassa
St. Hilaire, Melissa A.
Kronauer, Richard E.
Gooley, Joshua J.
Gronfier, Claude
Hull, Joseph T.
Lockley, Steven W.
Santhi, Nayantara
Wang, Wei
Klerman, Elizabeth B.
author_facet Klerman, Hadassa
St. Hilaire, Melissa A.
Kronauer, Richard E.
Gooley, Joshua J.
Gronfier, Claude
Hull, Joseph T.
Lockley, Steven W.
Santhi, Nayantara
Wang, Wei
Klerman, Elizabeth B.
author_sort Klerman, Hadassa
collection PubMed
description Accurate determination of circadian phase is necessary for research and clinical purposes because of the influence of the master circadian pacemaker on multiple physiologic functions. Melatonin is presently the most accurate marker of the activity of the human circadian pacemaker. Current methods of analyzing the plasma melatonin rhythm can be grouped into three categories: curve-fitting, threshold-based and physiologically-based linear differential equations. To determine which method provides the most accurate assessment of circadian phase, we compared the ability to fit the data and the variability of phase estimates for seventeen different markers of melatonin phase derived from these methodological categories. We used data from three experimental conditions under which circadian rhythms - and therefore calculated melatonin phase - were expected to remain constant or progress uniformly. Melatonin profiles from older subjects and subjects with lower melatonin amplitude were less likely to be fit by all analysis methods. When circadian drift over multiple study days was algebraically removed, there were no significant differences between analysis methods of melatonin onsets (P = 0.57), but there were significant differences between those of melatonin offsets (P<0.0001). For a subset of phase assessment methods, we also examined the effects of data loss on variability of phase estimates by systematically removing data in 2-hour segments. Data loss near onset of melatonin secretion differentially affected phase estimates from the methods, with some methods incorrectly assigning phases too early while other methods assigning phases too late; missing data at other times did not affect analyses of the melatonin profile. We conclude that melatonin data set characteristics, including amplitude and completeness of data collection, differentially affect the results depending on the melatonin analysis method used.
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spelling pubmed-33252232012-04-17 Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data Klerman, Hadassa St. Hilaire, Melissa A. Kronauer, Richard E. Gooley, Joshua J. Gronfier, Claude Hull, Joseph T. Lockley, Steven W. Santhi, Nayantara Wang, Wei Klerman, Elizabeth B. PLoS One Research Article Accurate determination of circadian phase is necessary for research and clinical purposes because of the influence of the master circadian pacemaker on multiple physiologic functions. Melatonin is presently the most accurate marker of the activity of the human circadian pacemaker. Current methods of analyzing the plasma melatonin rhythm can be grouped into three categories: curve-fitting, threshold-based and physiologically-based linear differential equations. To determine which method provides the most accurate assessment of circadian phase, we compared the ability to fit the data and the variability of phase estimates for seventeen different markers of melatonin phase derived from these methodological categories. We used data from three experimental conditions under which circadian rhythms - and therefore calculated melatonin phase - were expected to remain constant or progress uniformly. Melatonin profiles from older subjects and subjects with lower melatonin amplitude were less likely to be fit by all analysis methods. When circadian drift over multiple study days was algebraically removed, there were no significant differences between analysis methods of melatonin onsets (P = 0.57), but there were significant differences between those of melatonin offsets (P<0.0001). For a subset of phase assessment methods, we also examined the effects of data loss on variability of phase estimates by systematically removing data in 2-hour segments. Data loss near onset of melatonin secretion differentially affected phase estimates from the methods, with some methods incorrectly assigning phases too early while other methods assigning phases too late; missing data at other times did not affect analyses of the melatonin profile. We conclude that melatonin data set characteristics, including amplitude and completeness of data collection, differentially affect the results depending on the melatonin analysis method used. Public Library of Science 2012-04-12 /pmc/articles/PMC3325223/ /pubmed/22511928 http://dx.doi.org/10.1371/journal.pone.0033836 Text en Klerman et al. http://creativecommons.org/licenses/by/4.0/ 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 author and source are properly credited.
spellingShingle Research Article
Klerman, Hadassa
St. Hilaire, Melissa A.
Kronauer, Richard E.
Gooley, Joshua J.
Gronfier, Claude
Hull, Joseph T.
Lockley, Steven W.
Santhi, Nayantara
Wang, Wei
Klerman, Elizabeth B.
Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title_full Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title_fullStr Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title_full_unstemmed Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title_short Analysis Method and Experimental Conditions Affect Computed Circadian Phase from Melatonin Data
title_sort analysis method and experimental conditions affect computed circadian phase from melatonin data
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3325223/
https://www.ncbi.nlm.nih.gov/pubmed/22511928
http://dx.doi.org/10.1371/journal.pone.0033836
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