Characterization of the circulating and tissue-specific alterations to the lipidome in response to moderate and major cold stress in mice

Author:

Pernes Gerard1,Morgan Pooranee K.12,Huynh Kevin1,Mellett Natalie A.1,Meikle Peter J.1,Murphy Andrew J.123,Henstridge Darren C.14,Lancaster Graeme I.13

Affiliation:

1. Baker Heart and Diabetes Institute, Melbourne, Australia

2. School of Life Sciences, La Trobe University, Melbourne, Australia

3. Department of Immunology, Monash University, Melbourne, Australia

4. School of Health Sciences, University of Tasmania, Launceston, Australia

Abstract

This study analyzed the effects of 24 h of cold stress (22°C or 5°C vs. mice maintained at 30 °C) on the plasma, brown adipose tissue (BAT), subcutaneous (SubQ) and epididymal (Epi) white adipose tissue (WAT), liver, and skeletal muscle lipidome of mice. Using mass spectrometry-lipidomics, 624 lipid species were detected, of which 239 were significantly altered in plasma, 134 in BAT, and 51 in the liver. In plasma, acylcarnitines and free fatty acids were markedly increased at 5°C. Plasma triacylglycerols (TGs) were reduced at 22°C and 5°C. We also identified ether lipids as a novel, cold-induced lipid class. In BAT, TGs were the principal lipid class affected by cold stress, being significantly reduced at both 22°C and 5°C. Interestingly, although BAT TG species were uniformly affected at 5°C, at 22°C we observed species-dependent effects, with TGs containing longer and more unsaturated fatty acids particularly sensitive to the effects of cold. In the liver, TGs were the most markedly affected lipid class, increasing in abundance at 5 °C. TGs containing longer and more unsaturated fatty acids accumulated to a greater degree. Our work demonstrates the following: 1) acute exposure to moderate (22°C) cold stress alters the plasma and BAT lipidome; although this effect is markedly less pronounced than at 5°C. 2) Cold stress at 5°C dramatically alters the plasma lipidome, with ether lipids identified as a novel lipid class altered by cold exposure. 3) Cold-induced alterations in liver and BAT TG levels are not uniform, with changes being influenced by acyl chain composition.

Funder

Victorian Governments Operational Support Program and the Heine Foundation

Research Training Program (RTP) Stipend and a Baker Heart and Diabetes Institute Bright Sparks award

Baker Heart and Diabetes Institute Research Scholarship-La Trobe University Scholarship

CSL Centenary Fellowship

Shine on Foundation.

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology

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