Related Experiment Video
Updated: Jan 22, 2026

Mouse Model of Metabolic Dysfunction-Associated Steatotic Liver Disease with Fibrosis
Published on: July 18, 2025
The Nuclear Receptor-Co-repressor Complex in Control of Liver Metabolism and Disease
Ning Liang1, Tomas Jakobsson2, Rongrong Fan1
1Department of Biosciences and Nutrition, Karolinska Institutet, Huddinge, Sweden.
Abstract:
Hepatocytes are the major cell-type in the liver responsible for the coordination of metabolism in response to multiple signaling inputs. Coordination occurs primarily at the level of gene expression via transcriptional networks composed of transcription factors, in particular nuclear receptors (NRs), and associated co-regulators, including chromatin-modifying complexes. Disturbance of these networks by genetic, environmental or nutritional factors can lead to metabolic dysregulation and has been linked to the progression of non-alcoholic fatty liver disease (NAFLD) toward steatohepatitis and even liver cancer. Since there are currently no approved therapies, major efforts are dedicated to identify the critical factors that can be employed for drug development. Amongst the identified factors with clinical significance are currently lipid-sensing NRs including PPARs, LXRs, and FXR. However, major obstacles of NR-targeting are the undesired side effects associated with the genome-wide NR activities in multiple cell-types. Thus, of particular interest are co-regulators that determine NR activities, context-selectivity, and associated chromatin states. Current research on the role of co-regulators in hepatocytes is still premature due to the large number of candidates, the limited number of available mouse models, and the technical challenges in studying their chromatin occupancy. As a result, how NR-co-regulator networks in hepatocytes are coordinated by extracellular signals, and how NR-pathway selectivity is achieved, remains currently poorly understood. We will here review a notable exception, namely a fundamental transcriptional co-repressor complex that during the past decade has become the probably most-studied and best-understood physiological relevant co-regulator in hepatocytes. This multiprotein complex contains the core subunits HDAC3, NCOR, SMRT, TBL1, TBLR1, and GPS2 and is referred to as the "NR-co-repressor complex." We will particularly discuss recent advances in characterizing hepatocyte-specific loss-of-function mouse models and in applying genome-wide sequencing approaches including ChIP-seq. Both have been instrumental to uncover the role of each of the subunits under physiological conditions and in disease models, but they also revealed insights into the NR target range and genomic mechanisms of action of the co-repressor complex. We will integrate a discussion of translational aspects about the role of the complex in NAFLD pathways and in particular about the hypothesis that patient-specific alterations of specific subunits may determine NAFLD susceptibility and the therapeutic outcomes of NR-directed treatments.
Insights
This study reviews the NR-co-repressor complex in hepatocytes, crucial for metabolic regulation and non-alcoholic fatty liver disease (NAFLD). Understanding its subunits and function is key for developing targeted therapies.
Area of Science:
- Hepatocyte biology and liver metabolism.
- Transcriptional regulation and nuclear receptor (NR) signaling.
- Chromatin modification and epigenetic mechanisms.
Background:
- Hepatocytes coordinate liver metabolism via transcriptional networks involving nuclear receptors (NRs) and co-regulators.
- Disruptions in these networks contribute to metabolic diseases like non-alcoholic fatty liver disease (NAFLD).
- Targeting NRs for therapy is challenging due to off-target effects; co-regulators offer potential for selectivity.
Purpose of the Study:
- To review the NR-co-repressor complex, a key regulator in hepatocytes.
- To discuss recent advances in understanding its subunits, function, and role in NAFLD.
- To explore the translational potential of targeting this complex for therapeutic development.
Main Methods:
- Review of existing literature on the NR-co-repressor complex.
- Characterization of hepatocyte-specific loss-of-function mouse models.
- Application of genome-wide sequencing approaches, including ChIP-seq, to study chromatin occupancy and NR target genes.
Main Results:
- The NR-co-repressor complex (HDAC3, NCOR, SMRT, TBL1, TBLR1, GPS2) is a well-understood regulator in hepatocytes.
- Hepatocyte-specific models and ChIP-seq have elucidated subunit roles in physiological and disease states.
- Insights gained into NR target range and the complex's genomic mechanisms of action.
Conclusions:
- The NR-co-repressor complex plays a fundamental role in hepatocyte function and metabolic homeostasis.
- Its subunits are critical for NR pathway selectivity and chromatin state regulation.
- Patient-specific alterations in subunits may influence NAFLD susceptibility and treatment outcomes for NR-targeted therapies.
More Related Videos
07:03Author Spotlight: Establishing MASLD Cell Models for Investigating Disease Mechanisms and the Lipid-Lowering Effects of Koumiss
Published on: July 19, 2024
09:27Analysis of Liver Microenvironment During Early Progression of Non-Alcoholic Fatty Liver Disease-Associated Hepatocellular Carcinoma in Zebrafish
Published on: April 1, 2021
Related Concept Videos
Co-activators and Co-repressors
Co-activators and Co-repressors
Prokaryotic Transcriptional Activators and Repressors
Transcription of prokaryotic...
Nuclear Export of mRNA
Transducer Mechanism: Nuclear Receptors
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:
Diseases of the Liver and Gallbladder
Cirrhosis is characterized by the scarring of hepatic lobules in the liver, which are replaced by fibrous tissue, affecting the liver's normal functioning. NAFLD, on the other hand, is caused by an excessive build-up of fat in the liver, not...