4.8 Article

Building Multivariate Systems Biology Models

期刊

ANALYTICAL CHEMISTRY
卷 84, 期 16, 页码 7064-7071

出版社

AMER CHEMICAL SOC
DOI: 10.1021/ac301269r

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资金

  1. VINNOVA
  2. JSPS
  3. Ake Wibergs Stifelse
  4. Jeanssons Stiftelse
  5. Swedish Foundation for Strategic Research
  6. Swedish Research Council (VR)
  7. Swedish national strategic e-science research program eSSENCE
  8. VINNOVA VINN-MER
  9. Centre for Allergy Research
  10. Grants-in-Aid for Scientific Research [10F00801] Funding Source: KAKEN

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Systems biology methods using large-scale omics data sets face unique challenges: integrating and analyzing near limitless data space, while recognizing and removing systematic variation or noise. Herein we propose a complementary multivariate analysis workflow to both integrate omics data from disparate sources and analyze the results for specific and unique sample correlations. This workflow combines principal component analysis (PCA), orthogonal projections to latent structures discriminate analysis (OPLS-DA), orthogonal 2 projections to latent structures (O2PLS), and shared and unique structures (SUS) plots. The workflow is demonstrated using data from a study in which ApoE3Leiden mice were fed an atherogenic diet consisting of increasing cholesterol levels followed by therapeutic intervention (fenofibrate, rosuvastatin, and LXR activator T-0901317). The levels of structural lipids (lipidomics) and free fatty acids in liver were quantified via liquid chromatography mass spectrometry (LC-MS). The complementary workflow identified diglycerides as key hepatic metabolites affected by dietary cholesterol and drug intervention. Modeling of the three therapeutics for mice fed a high-cholesterol diet further highlighted diglycerides as metabolites of interest in atherogenesis, suggesting a role in eliciting chronic liver inflammation. In particular, O2PLS-based SUS2 plots showed that treatment with T-0901317 or rosuvastatin returned the diglyceride profile in high-cholesterol-fed mice to that of control animals.

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