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Coordinated Cross-Talk Between the Myc and Mlx Networks in Liver Regeneration and Neoplasia
Huabo Wang1, Jie Lu1, Frances Alencastro2
1Division of Hematology/Oncology, Children's Hospital of Pittsburgh, University of Pittsburgh Medical Center, Pittsburgh, Pennsylvania.
Background & Aims:
The c-Myc (Myc) Basic helix-loop-helix leucine zipper (bHLH-ZIP) transcription factor is deregulated in most cancers. In association with Max, Myc controls target genes that supervise metabolism, ribosome biogenesis, translation, and proliferation. This Myc network crosstalks with the Mlx network, which consists of the Myc-like proteins MondoA and ChREBP, and Max-like Mlx. Together, this extended Myc network regulates both common and distinct gene targets. Here, we studied the consequence of Myc and/or Mlx ablation in the liver, particularly those pertaining to hepatocyte proliferation, metabolism, and spontaneous tumorigenesis.
Methods:
We examined the ability of hepatocytes lacking Mlx (MlxKO) or Myc+Mlx (double KO [DKO]) to repopulate the liver over an extended period of time in a murine model of type I tyrosinemia. We also compared this and other relevant behaviors, phenotypes, and transcriptomes of the livers with those from previously characterized MycKO, ChrebpKO, and MycKO × ChrebpKO mice.
Results:
Hepatocyte regenerative potential deteriorated as the Extended Myc Network was progressively dismantled. Genes and pathways dysregulated in MlxKO and DKO hepatocytes included those pertaining to translation, mitochondrial function, and hepatic steatosis resembling nonalcoholic fatty liver disease. The Myc and Mlx Networks were shown to crosstalk, with the latter playing a disproportionate role in target gene regulation. All cohorts also developed steatosis and molecular evidence of early steatohepatitis. Finally, MlxKO and DKO mice showed extensive hepatic adenomatosis.
Conclusions:
In addition to showing cooperation between the Myc and Mlx Networks, this study showed the latter to be more important in maintaining proliferative, metabolic, and translational homeostasis, while concurrently serving as a suppressor of benign tumorigenesis. GEO accession numbers: GSE181371, GSE130178, and GSE114634.
Insights
The Mlx network is crucial for liver cell proliferation, metabolism, and preventing tumors. Its loss, along with Myc, impairs liver regeneration and promotes fatty liver disease and adenomas.
Area of Science:
- Molecular Biology
- Cancer Research
- Hepatology
Background:
- The c-Myc (Myc) transcription factor network is deregulated in many cancers, controlling key cellular processes.
- Myc interacts with Max, regulating genes for metabolism, ribosome biogenesis, translation, and proliferation.
- The Myc network crosstalks with the Mlx network (MondoA, ChREBP, Mlx), forming an extended network controlling common and distinct gene targets.
Purpose of the Study:
- To investigate the consequences of ablating Myc and/or Mlx in the liver.
- To understand their roles in hepatocyte proliferation, metabolism, and spontaneous tumorigenesis.
- To compare these effects with previously characterized Myc and ChREBP knockout models.
Main Methods:
- Utilized a murine model of type I tyrosinemia.
- Examined hepatocyte regenerative potential in Mlx knockout (MlxKO) and Myc+Mlx double knockout (DKO) mice.
- Compared phenotypes and transcriptomes with MycKO, ChrebpKO, and MycKO × ChrebpKO mice.
Main Results:
- Hepatocyte regenerative potential declined with progressive dismantling of the Extended Myc Network.
- MlxKO and DKO hepatocytes showed dysregulated translation, mitochondrial function, and hepatic steatosis.
- All cohorts developed steatosis, early steatohepatitis, and MlxKO/DKO mice exhibited extensive hepatic adenomatosis.
Conclusions:
- Demonstrated cooperation between Myc and Mlx Networks in liver homeostasis.
- Highlighted the Mlx Network's critical role in maintaining proliferative, metabolic, and translational balance.
- Identified the Mlx Network as a suppressor of benign liver tumorigenesis.
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