Literature DB >> 24266777

Plasma lipidomic profiling method based on ultrasound extraction and liquid chromatography mass spectrometry.

Consuelo Pizarro1, Irene Arenzana-Rámila, Nuria Pérez-del-Notario, Patricia Pérez-Matute, José-María González-Sáiz.   

Abstract

Lipidomics is an emerging field in biomedical research that includes the analysis of all the lipids present in complex biological samples. To evaluate the chemical and biological diversity of lipids, lipid extraction is usually the first step toward lipidomics analysis. Nevertheless, sample preparation is still a time-consuming and error prone analytical step. Therefore, the development of simple and robust methods suitable for high-throughput lipid analysis is of great interest. This study presents a new method for exhaustive lipid fingerprinting of human blood plasma samples based on the employment of methyl tert-butyl ether (MTBE) and ultrasound (US) energy combined with liquid chromatography-electrospray ionization quadrupole-time-of-flight mass spectrometry (LC-ESIqToF-MS). First, the MTBE-US extraction step was optimized by means of experimental design methodology. After the optimization step, a comparative study was performed to assess the suitability of the proposed method. The new method allowed extraction time to be reduced to half, in comparison with previously reported methods. The proposed method also allowed increasing extraction repeatability (with RSDs below 5.55%) and efficiency (recoveries higher than 70% were obtained for all lipids evaluated). Moreover, the new proposed method enables more than 800 different features to be detected. Thus, the overall number of lipids identified with the databases for this novel extraction method (352) was the highest of the evaluated methods. The efficiency, precision, and feature detection capacity of the proposed method confirmed its suitability for the evaluation of the lipid profile of human blood plasma samples. Moreover, taking into account its simplicity, low time consumption, and compatibility with automation, the new proposed method could be a suitable alternative to previously reported methods for use in laboratories for comprehensive lipidomic profiling.

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Year:  2013        PMID: 24266777     DOI: 10.1021/ac403181c

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  16 in total

1.  Methods of Lipidomic Analysis: Extraction, Derivatization, Separation, and Identification of Lipids.

Authors:  Ya Xie; Zongyuan Wu; Zuojian Qin; Bangfu Wu; Xin Lv; Fang Wei; Hong Chen
Journal:  Adv Exp Med Biol       Date:  2021       Impact factor: 2.622

2.  Non-Esterified Fatty Acids Profiling in Rheumatoid Arthritis: Associations with Clinical Features and Th1 Response.

Authors:  Javier Rodríguez-Carrio; Mercedes Alperi-López; Patricia López; Francisco Javier Ballina-García; Ana Suárez
Journal:  PLoS One       Date:  2016-08-03       Impact factor: 3.240

3.  Lipidomics reveals altered biosynthetic pathways of glycerophospholipids and cell signaling as biomarkers of the polycystic ovary syndrome.

Authors:  Mariona Jové; Irene Pradas; Alba Naudí; Susana Rovira-Llopis; Celia Bañuls; Milagros Rocha; Manuel Portero-Otin; Antonio Hernández-Mijares; Victor M Victor; Reinald Pamplona
Journal:  Oncotarget       Date:  2017-12-17

4.  Free Fatty Acids Profiles Are Related to Gut Microbiota Signatures and Short-Chain Fatty Acids.

Authors:  Javier Rodríguez-Carrio; Nuria Salazar; Abelardo Margolles; Sonia González; Miguel Gueimonde; Clara G de Los Reyes-Gavilán; Ana Suárez
Journal:  Front Immunol       Date:  2017-07-24       Impact factor: 7.561

5.  Lipidomics Reveals a Tissue-Specific Fingerprint.

Authors:  Irene Pradas; Kevin Huynh; Rosanna Cabré; Victòria Ayala; Peter J Meikle; Mariona Jové; Reinald Pamplona
Journal:  Front Physiol       Date:  2018-08-28       Impact factor: 4.566

6.  Lipid alterations in human frontal cortex in ALS-FTLD-TDP43 proteinopathy spectrum are partly related to peroxisome impairment.

Authors:  Pol Andrés-Benito; Ellen Gelpi; Mariona Jové; Natalia Mota-Martorell; Èlia Obis; Manuel Portero-Otin; Mònica Povedano; Aurora Pujol; Reinald Pamplona; Isidro Ferrer
Journal:  Neuropathol Appl Neurobiol       Date:  2021-01-12       Impact factor: 8.090

7.  An automated shotgun lipidomics platform for high throughput, comprehensive, and quantitative analysis of blood plasma intact lipids.

Authors:  Michal A Surma; Ronny Herzog; Andrej Vasilj; Christian Klose; Nicolas Christinat; Delphine Morin-Rivron; Kai Simons; Mojgan Masoodi; Julio L Sampaio
Journal:  Eur J Lipid Sci Technol       Date:  2015-07-20       Impact factor: 2.679

8.  Annotation of the human cerebrospinal fluid lipidome using high resolution mass spectrometry and a dedicated data processing workflow.

Authors:  Alexandre Seyer; Samia Boudah; Simon Broudin; Christophe Junot; Benoit Colsch
Journal:  Metabolomics       Date:  2016-04-07       Impact factor: 4.290

9.  One- vs two-phase extraction: re-evaluation of sample preparation procedures for untargeted lipidomics in plasma samples.

Authors:  Andres Gil; Wenxuan Zhang; Justina C Wolters; Hjalmar Permentier; Theo Boer; Peter Horvatovich; M Rebecca Heiner-Fokkema; Dirk-Jan Reijngoud; Rainer Bischoff
Journal:  Anal Bioanal Chem       Date:  2018-07-02       Impact factor: 4.142

10.  Lipid profile of cerebrospinal fluid in multiple sclerosis patients: a potential tool for diagnosis.

Authors:  L Nogueras; H Gonzalo; M Jové; J Sol; A Gil-Sanchez; J V Hervás; P Valcheva; C Gonzalez-Mingot; M J Solana; S Peralta; R Pamplona; L Brieva
Journal:  Sci Rep       Date:  2019-08-05       Impact factor: 4.379

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