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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.
Abstract:
Fructose consumption causes metabolic diseases and renal injury primarily in the renal cortex where fructose is metabolized. Analyzing gene differential expression induced by dietary manipulation is challenging. The effects may depend on the base diet and primary changes likely induce secondary or higher order changes that are difficult to capture by conventional univariate transcriptome analyses. We hypothesized that dietary fructose induces a genetic program in the kidney cortex that favors lipogenesis and gluconeogenesis. To test this, we analyzed renal cortical transcriptomes of rats on normal- and high-salt base diets supplemented with fructose. Both sets of data were analyzed using the Characteristic Direction method to yield fructose-induced gene vectors of associated differential expression values. A fructose-specific "signature" of 139 genes differentially expressed was extracted from the 2 diet vectors by a new algorithm that takes into account a gene's rank and standard deviation of its differential expression value. Of these genes, 97 were annotated and the top 34 accounted for 80% of the signal in the annotated signature. The genes were predominantly proximal tubule-specific, coding for metabolic enzymes or transporters. Cosine similarity of signature genes in the two fructose-induced vectors was >0.78. These 139 genes of the fructose signature contributed 27% and 38% of total differential expression on normal- and high- salt diet, respectively. Principal Component Analysis showed that the individual animals could be grouped according to diet. The fructose signature contained a greater enrichment of Gene Ontology processes related to nutrition and metabolism of fructose than two univariate analysis methods. The major feature of the fructose signature is a change in metabolic programs of the renal proximal tubule consistent with gluconeogenesis and de-novo lipogenesis. This new "signature" constitutes a new metric to bridge the gap between physiological phenomena and differential expression profile.
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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