Literature DB >> 33124427

Lithium Hydroxide Hydrolysis Combined with MALDI TOF Mass Spectrometry for Rapid Sphingolipid Detection.

Anh Tran1, Liting Wan2,3, Zhenbo Xu2,4, Janette M Haro3, Bing Li2, Jace W Jones1.   

Abstract

Sphingolipids have diverse structural and bioactive functions that play important roles in many key biological processes. Factors such as low relative abundance, varied structures, and a dynamic concentration range provide a difficult analytical challenge for sphingolipid detection. To further improve mass-spectrometry-based sphingolipid analysis, lithium adduct consolidation was implemented to decrease spectral complexity and combine signal intensities, leading to increased specificity and sensitivity. We report the use of lithium hydroxide as a base in a routine hydrolysis procedure in order to effectively remove common ionization suppressants (such as glycolipids and glycerophospholipids) and introduce a source of lithium into the sample. In conjunction, an optimized MALDI matrix system, featuring 2',4',6'-trihydroxyacetophenone (THAP) is used to facilitate lithium adduct consolidation during the MALDI process. The result is a robust and high-throughput sphingolipid detection scheme, particularly of low-abundance ceramides. Application of our developed workflow includes the detection of differentially expressed liver sphingolipid profiles from a high-fat-induced obesity mouse model. We also demonstrate the method's effectiveness in detecting various sphingolipids in brain and plasma matrices. These results were corroborated with data from UHPLC HR MS/MS and MALDI FT-ICR, verifying the efficacy of the method application. Overall, we demonstrate a high-throughput workflow for sphingolipid analysis in various biological matrices by the use of MALDI TOF and lithium adduct consolidation.

Entities:  

Keywords:  MALDI TOF mass spectrometry; base hydrolysis; lithium adduction; sphingolipids

Year:  2020        PMID: 33124427      PMCID: PMC7790884          DOI: 10.1021/jasms.0c00322

Source DB:  PubMed          Journal:  J Am Soc Mass Spectrom        ISSN: 1044-0305            Impact factor:   3.109


  64 in total

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Journal:  Arterioscler Thromb Vasc Biol       Date:  2009-03-12       Impact factor: 8.311

4.  Identification of lipids in the cuticle of the parasitic nematode Anisakis simplex and the somatic tissues of the Atlantic cod Gadus morhua.

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Journal:  Exp Parasitol       Date:  2009-11-27       Impact factor: 2.011

5.  Sphingolipids in cardiovascular and cerebrovascular systems: Pathological implications and potential therapeutic targets.

Authors:  Masahito Kawabori; Rachid Kacimi; Joel S Karliner; Midori A Yenari
Journal:  World J Cardiol       Date:  2013-04-26

6.  A review of lipidomic technologies applicable to sphingolipidomics and their relevant applications.

Authors:  Xianlin Han; Xuntian Jiang
Journal:  Eur J Lipid Sci Technol       Date:  2009       Impact factor: 2.679

7.  Analysis of lipids using 2,4,6-trihydroxyacetophenone as a matrix for MALDI mass spectrometry.

Authors:  Gerald Stübiger; Omar Belgacem
Journal:  Anal Chem       Date:  2007-03-17       Impact factor: 6.986

Review 8.  Membranes in balance: mechanisms of sphingolipid homeostasis.

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Journal:  Mol Cell       Date:  2010-10-22       Impact factor: 17.970

Review 9.  Mechanism linking diabetes mellitus and obesity.

Authors:  Abdullah S Al-Goblan; Mohammed A Al-Alfi; Muhammad Z Khan
Journal:  Diabetes Metab Syndr Obes       Date:  2014-12-04       Impact factor: 3.168

Review 10.  Sphingolipids in High Fat Diet and Obesity-Related Diseases.

Authors:  Songhwa Choi; Ashley J Snider
Journal:  Mediators Inflamm       Date:  2015-11-16       Impact factor: 4.711

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Review 2.  Circulating Exosome Cargoes Contain Functionally Diverse Cancer Biomarkers: From Biogenesis and Function to Purification and Potential Translational Utility.

Authors:  Megan I Mitchell; Junfeng Ma; Claire L Carter; Olivier Loudig
Journal:  Cancers (Basel)       Date:  2022-07-10       Impact factor: 6.575

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