Related Experiment Video
Updated: May 6, 2026

Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 16, 2013
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
Abstract:
Mammalian nuclear receptors broadly influence metabolic fitness and serve as popular targets for developing drugs to treat cardiovascular disease, obesity, and diabetes. However, the molecular mechanisms and regulatory pathways that govern lipid metabolism remain poorly understood. We previously found that the Caenorhabditis elegans nuclear hormone receptor NHR-49 regulates multiple genes in the fatty acid beta-oxidation and desaturation pathways. Here, we identify additional NHR-49 targets that include sphingolipid processing and lipid remodeling genes. We show that NHR-49 regulates distinct subsets of its target genes by partnering with at least two other distinct nuclear receptors. Gene expression profiles suggest that NHR-49 partners with NHR-66 to regulate sphingolipid and lipid remodeling genes and with NHR-80 to regulate genes involved in fatty acid desaturation. In addition, although we did not detect a direct physical interaction between NHR-49 and NHR-13, we demonstrate that NHR-13 also regulates genes involved in the desaturase pathway. Consistent with this, gene knockouts of these receptors display a host of phenotypes that reflect their gene expression profile. Our data suggest that NHR-80 and NHR-13's modulation of NHR-49 regulated fatty acid desaturase genes contribute to the shortened lifespan phenotype of nhr-49 deletion mutant animals. In addition, we observed that nhr-49 animals had significantly altered mitochondrial morphology and function, and that distinct aspects of this phenotype can be ascribed to defects in NHR-66- and NHR-80-mediated activities. Identification of NHR-49's binding partners facilitates a fine-scale dissection of its myriad regulatory roles in C. elegans. Our findings also provide further insights into the functions of the mammalian lipid-sensing nuclear receptors HNF4α and PPARα.
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.
Related Concept Videos
Regulation of Nuclear Protein Sorting
Regulation of Metabolism
Signal Transduction: Overview
Typically, signal transduction involves three...
Transducer Mechanism: Nuclear Receptors
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:
Overview of Lipid Metabolism
Lipolysis: The Breakdown of Lipids:
Lipolysis is the process of breaking down lipids, particularly triglycerides, into glycerol and fatty acids. This process typically occurs in the adipose tissue and is triggered by various hormones, including glucagon and...
Lipid Catabolism

