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Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos

Recent in vivo tracer studies demonstrated that targeted mass spectrometry (MS) on the Q Exactive Orbitrap could determine the metabolism of HDL proteins 100s-fold less abundant than apolipoprotein A1 (APOA1). In this study, we demonstrate that the Orbitrap Lumos can measure tracer in proteins whose...

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Autores principales: Singh, Sasha A., Andraski, Allison B., Higashi, Hideyuki, Lee, Lang Ho, Ramsaroop, Ashisha, Sacks, Frank M., Aikawa, Masanori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7934878/
https://www.ncbi.nlm.nih.gov/pubmed/33351780
http://dx.doi.org/10.1172/jci.insight.143526
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author Singh, Sasha A.
Andraski, Allison B.
Higashi, Hideyuki
Lee, Lang Ho
Ramsaroop, Ashisha
Sacks, Frank M.
Aikawa, Masanori
author_facet Singh, Sasha A.
Andraski, Allison B.
Higashi, Hideyuki
Lee, Lang Ho
Ramsaroop, Ashisha
Sacks, Frank M.
Aikawa, Masanori
author_sort Singh, Sasha A.
collection PubMed
description Recent in vivo tracer studies demonstrated that targeted mass spectrometry (MS) on the Q Exactive Orbitrap could determine the metabolism of HDL proteins 100s-fold less abundant than apolipoprotein A1 (APOA1). In this study, we demonstrate that the Orbitrap Lumos can measure tracer in proteins whose abundances are 1000s-fold less than APOA1, specifically the lipid transfer proteins phospholipid transfer protein (PLTP), cholesterol ester transfer protein (CETP), and lecithin-cholesterol acyl transferase (LCAT). Relative to the Q Exactive, the Lumos improved tracer detection by reducing tracer enrichment compression, thereby providing consistent enrichment data across multiple HDL sizes from 6 participants. We determined by compartmental modeling that PLTP is secreted in medium and large HDL (alpha2, alpha1, and alpha0) and is transferred from medium to larger sizes during circulation from where it is catabolized. CETP is secreted mainly in alpha1 and alpha2 and remains in these sizes during circulation. LCAT is secreted mainly in medium and small HDL (alpha2, alpha3, prebeta). Unlike PLTP and CETP, LCAT’s appearance on HDL is markedly delayed, indicating that LCAT may reside for a time outside of systemic circulation before attaching to HDL in plasma. The determination of these lipid transfer proteins’ unique metabolic structures was possible due to advances in MS technologies.
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spelling pubmed-79348782021-03-09 Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos Singh, Sasha A. Andraski, Allison B. Higashi, Hideyuki Lee, Lang Ho Ramsaroop, Ashisha Sacks, Frank M. Aikawa, Masanori JCI Insight Technical Advance Recent in vivo tracer studies demonstrated that targeted mass spectrometry (MS) on the Q Exactive Orbitrap could determine the metabolism of HDL proteins 100s-fold less abundant than apolipoprotein A1 (APOA1). In this study, we demonstrate that the Orbitrap Lumos can measure tracer in proteins whose abundances are 1000s-fold less than APOA1, specifically the lipid transfer proteins phospholipid transfer protein (PLTP), cholesterol ester transfer protein (CETP), and lecithin-cholesterol acyl transferase (LCAT). Relative to the Q Exactive, the Lumos improved tracer detection by reducing tracer enrichment compression, thereby providing consistent enrichment data across multiple HDL sizes from 6 participants. We determined by compartmental modeling that PLTP is secreted in medium and large HDL (alpha2, alpha1, and alpha0) and is transferred from medium to larger sizes during circulation from where it is catabolized. CETP is secreted mainly in alpha1 and alpha2 and remains in these sizes during circulation. LCAT is secreted mainly in medium and small HDL (alpha2, alpha3, prebeta). Unlike PLTP and CETP, LCAT’s appearance on HDL is markedly delayed, indicating that LCAT may reside for a time outside of systemic circulation before attaching to HDL in plasma. The determination of these lipid transfer proteins’ unique metabolic structures was possible due to advances in MS technologies. American Society for Clinical Investigation 2021-02-08 /pmc/articles/PMC7934878/ /pubmed/33351780 http://dx.doi.org/10.1172/jci.insight.143526 Text en © 2021 Singh et al. http://creativecommons.org/licenses/by/4.0/ This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Technical Advance
Singh, Sasha A.
Andraski, Allison B.
Higashi, Hideyuki
Lee, Lang Ho
Ramsaroop, Ashisha
Sacks, Frank M.
Aikawa, Masanori
Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title_full Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title_fullStr Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title_full_unstemmed Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title_short Metabolism of PLTP, CETP, and LCAT on multiple HDL sizes using the Orbitrap Fusion Lumos
title_sort metabolism of pltp, cetp, and lcat on multiple hdl sizes using the orbitrap fusion lumos
topic Technical Advance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7934878/
https://www.ncbi.nlm.nih.gov/pubmed/33351780
http://dx.doi.org/10.1172/jci.insight.143526
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