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Updated: May 25, 2025

Myeloid Innate Signaling Pathway Regulation by MALT1 Paracaspase Activity
Published on: January 7, 2019
Multitarget mechanism of MYC inhibition by the bacterial lon protease in disease
Ines Ambite1, Murphy Lam Yim Wan1, Hien Thi Tran1
1Department of Laboratory Medicine, Division of Microbiology, Immunology and Glycobiology, Lund University, Klinikgatan 28, Lund, 221 84, Sweden.
Abstract:
Identifying specific inhibitors of the MYC oncogene has been challenging, due to off target effects associated with MYC inhibition. This study investigated how the recombinant Escherichia coli Lon protease (rLon), which targets MYC in human cells, inhibits MYC over-activation in models of infection and cancer. In silico predictions identified specific peptide domains of bacterial Lon that target MYC and the affinity of these peptides for MYC was investigated by surface plasmon resonance. The N-terminal domain of rLon was shown to interact with the C-terminal, leucine zipper domain of MYC and MAX and to prevent MYC/MAX dimerization. Furthermore, rLon targeted and degraded c-MYC in vitro and in cellular models, through the peptidase domain. In a model of kidney infection, rLon treatment prevented, c-MYC, N-MYC and L-MYC over-expression, MYC-dependent gene expression, specifically renal toxicity genes and pathology, suggesting that rLon recognizes and corrects MYC dysregulation in this disease. The findings describe a multitarget mechanism of MYC inhibition by rLon, and the combined effects achieved by the Lon domains, targeting different MYC epitopes and MYC-dependent functions, with no evidence of toxicity or detrimental effects on homeostatic MYC expression.
Insights
Recombinant E. coli Lon protease (rLon) effectively inhibits MYC oncogene over-activation in cancer and infection models. This multitarget approach corrects MYC dysregulation without toxicity, offering a novel therapeutic strategy.
Area of Science:
- Molecular Biology
- Oncology
- Infectious Diseases
Background:
- MYC oncogene inhibition is challenging due to off-target effects.
- MYC over-activation drives various cancers and can be implicated in infections.
Purpose of the Study:
- To investigate the MYC inhibitory potential of recombinant Escherichia coli Lon protease (rLon).
- To elucidate the mechanism by which rLon targets and inhibits MYC over-activation in cellular and disease models.
Main Methods:
- In silico prediction of MYC-targeting peptide domains in bacterial Lon protease.
- Surface plasmon resonance to assess peptide-MYC affinity.
- In vitro and cellular assays to evaluate rLon's degradation of c-MYC.
- Assessment of rLon treatment in a kidney infection model.
Main Results:
- rLon's N-terminal domain inhibits MYC/MAX dimerization.
- rLon's peptidase domain targets and degrades c-MYC.
- rLon treatment prevented MYC family over-expression and MYC-dependent gene expression in a kidney infection model.
- No evidence of toxicity or detrimental effects on homeostatic MYC expression.
Conclusions:
- rLon exhibits a multitarget mechanism for inhibiting MYC over-activation.
- rLon effectively corrects MYC dysregulation in disease models without adverse effects.
- rLon represents a promising therapeutic agent for MYC-driven pathologies.
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