Literature DB >> 31980460

Improved workflow for mass spectrometry-based metabolomics analysis of the heart.

Douglas A Andres1, Lyndsay E A Young2, Sudhakar Veeranki3, Tara R Hawkinson4, Bryana M Levitan5, Daheng He6, Chi Wang7, Jonathan Satin8, Ramon C Sun9.   

Abstract

MS-based metabolomics methods are powerful techniques to map the complex and interconnected metabolic pathways of the heart; however, normalization of metabolite abundance to sample input in heart tissues remains a technical challenge. Herein, we describe an improved GC-MS-based metabolomics workflow that uses insoluble protein-derived glutamate for the normalization of metabolites within each sample and includes normalization to protein-derived amino acids to reduce biological variation and detect small metabolic changes. Moreover, glycogen is measured within the metabolomics workflow. We applied this workflow to study heart metabolism by first comparing two different methods of heart removal: the Langendorff heart method (reverse aortic perfusion) and in situ freezing of mouse heart with a modified tissue freeze-clamp approach. We then used the in situ freezing method to study the effects of acute β-adrenergic receptor stimulation (through isoproterenol (ISO) treatment) on heart metabolism. Using our workflow and within minutes, ISO reduced the levels of metabolites involved in glycogen metabolism, glycolysis, and the Krebs cycle, but the levels of pentose phosphate pathway metabolites and of many free amino acids remained unchanged. This observation was coupled to a 6-fold increase in phosphorylated adenosine nucleotide abundance. These results support the notion that ISO acutely accelerates oxidative metabolism of glucose to meet the ATP demand required to support increased heart rate and cardiac output. In summary, our MS-based metabolomics workflow enables improved quantification of cardiac metabolites and may also be compatible with other methods such as LC or capillary electrophoresis.
© 2020 Andres et al.

Entities:  

Keywords:  Cardiac metabolism; GC-MS; Glycogen; Metabolomics; adrenergic receptor; cardiac metabolism; gas chromatography-mass spectrometry (GC-MS); glycogen; metabolomics

Mesh:

Year:  2020        PMID: 31980460      PMCID: PMC7049973          DOI: 10.1074/jbc.RA119.011081

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  71 in total

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