Coordinate regulation of lipid metabolism by novel nuclear receptor partnerships

Pranali P Pathare1, Alex Lin, Karin E Bornfeldt

  • 1Division of Basic Sciences, Fred Hutchinson Cancer Research Center, Seattle, Washington, United States of America. ppranali@gmail.com

Plos Genetics
|April 19, 2012
PubMed

Insights

The nuclear hormone receptor NHR-49 in C. elegans regulates lipid metabolism by partnering with NHR-66 and NHR-80. These interactions impact sphingolipid processing, fatty acid desaturation, and mitochondrial function, affecting lifespan.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Nuclear receptors are crucial for metabolic regulation and are drug targets for metabolic diseases.
  • Understanding lipid metabolism pathways is essential for treating obesity, diabetes, and cardiovascular conditions.
  • The Caenorhabditis elegans nuclear hormone receptor NHR-49 is known to regulate fatty acid metabolism.

Purpose of the Study:

  • To identify novel NHR-49 target genes involved in lipid metabolism.
  • To elucidate the regulatory partnerships of NHR-49 with other nuclear receptors.
  • To investigate the functional consequences of NHR-49 and its partners on organismal phenotypes.

Main Methods:

  • Gene expression profiling to identify NHR-49 targets.
  • Analysis of gene knockouts to assess phenotypic consequences.
  • Investigation of nuclear receptor interactions and their roles in specific pathways.

Main Results:

  • NHR-49 regulates sphingolipid processing and lipid remodeling genes, in addition to fatty acid metabolism genes.
  • NHR-49 partners with NHR-66 for sphingolipid/remodeling and with NHR-80 for fatty acid desaturation.
  • NHR-13 also influences desaturase genes, and NHR-49, NHR-80, and NHR-13 impact lifespan and mitochondrial function.

Conclusions:

  • NHR-49 functions through distinct partnerships (NHR-66, NHR-80) to control diverse lipid metabolic pathways.
  • These regulatory networks are critical for maintaining mitochondrial integrity and organismal lifespan.
  • The findings offer insights into conserved mechanisms of lipid sensing by nuclear receptors, including mammalian HNF4α and PPARα.

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