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April 25, 2026Cell Reports Methods0 citationsOpen Access

A multi-tiered workflow for examining organic acid profiles delineates tissue-specific changes in fatty acyl partitioning during aging

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ZZZhiyang ZhouCCChenyin CaoTLTaochao Lu

Key Points

  • This research aims to explore how fatty acid profiles change in different tissues during aging.
  • Utilized a multi-tiered workflow to quantify fatty acids from biological specimens.
  • Examined different tissue samples: brain, retina, and skeletal muscles of young and aged mice.
  • Investigated both free and esterified fatty acid compositions across diverse lipid classes.
  • Aged tissues showed a preferential partitioning of odd-chain and diunsaturated fatty acids into triacylglycerols.
  • Shifts in fatty acid partitioning towards diacylglycerols were observed, impacting anionic phospholipid levels in skeletal muscle.
  • Identified over 540 unique lipids, revealing significant age-related differences in fatty acid profiles.

Abstract

Fatty acids (FAs), as the predominant organic acids, form a major component of the metabolome. We present a multi-tiered method that comprehensively captures FA diversity-including chain lengths (C2-C34), unsaturation, isomers, and endogenous forms-within a single biological specimen. This workflow quantifies the broadest range of free FAs reported to date. Integrated with two complementary tiers profiling the total FA pool from alkaline hydrolysis and esterified acyl compositions across lipid classes, our multi-tiered workflow enables the investigation of differential fatty acyl partitioning. Applying this platform to quantify >540 unique lipids (free and esterified forms) and polar carboxylic acids, we investigated FA remodeling in the brain, retina (eyeball), and skeletal muscles of young and aged mice. We found that aged glycolytic tissues preferentially partition odd-chain and diunsaturated FAs (with lower β-oxidizability) into triacylglycerols. Additionally, aging shifts the FA18:1 partitioning into diacylglycerols over anionic phospholipids, which may mitigate pro-aging lipid signatures in the skeletal muscle.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69ec593e88ba6daa22dab2f2https://doi.org/10.1016/j.crmeth.2026.101413
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