Transcriptome signature for dietary fructose-specific changes in rat renal cortex: A quantitative approach to

Agustin Gonzalez-Vicente1, Jeffrey L Garvin1, Ulrich Hopfer1

  • 1Department of Physiology & Biophysics, Case Western Reserve University, Cleveland, OH, United States of America.

Plos One
|August 2, 2018
PubMed

Insights

Dietary fructose triggers a specific gene expression pattern in rat kidneys, promoting fat synthesis and sugar production. This "fructose signature" aids in understanding kidney injury and metabolic disease development.

Area of Science:

  • Nephrology
  • Metabolic Disease Research
  • Transcriptomics

Background:

  • Fructose consumption is linked to metabolic diseases and kidney injury, particularly in the renal cortex.
  • Analyzing diet-induced gene expression changes in the kidney is complex due to base diet variations and multi-order effects.
  • Conventional univariate transcriptome analyses may not fully capture the genetic response to dietary fructose.

Purpose of the Study:

  • To identify a specific genetic program induced by dietary fructose in the kidney cortex.
  • To test the hypothesis that fructose promotes lipogenesis and gluconeogenesis in the kidney.
  • To develop a novel method for analyzing diet-induced gene expression signatures.

Main Methods:

  • Analysis of renal cortical transcriptomes from rats on normal- and high-salt diets supplemented with fructose.
  • Application of the Characteristic Direction method to identify fructose-induced gene expression vectors.
  • Development of a new algorithm to extract a fructose-specific gene signature based on rank and differential expression values.

Main Results:

  • A fructose signature of 139 differentially expressed genes was identified, predominantly in proximal tubule cells.
  • The signature genes are involved in metabolic enzymes and transporters, indicating a shift towards gluconeogenesis and de novo lipogenesis.
  • The fructose signature explained a significant portion of the total differential gene expression and showed high consistency across different base diets.

Conclusions:

  • Dietary fructose induces a distinct metabolic program in the renal proximal tubule, favoring gluconeogenesis and lipogenesis.
  • The identified 139-gene fructose signature serves as a novel metric to link physiological changes with gene expression profiles.
  • This signature provides a more comprehensive understanding of fructose-induced kidney injury and metabolic dysfunction.

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