"Toxic memory" via chaperone modification is a potential mechanism for rapid Mallory-Denk body reinduction
Pavel Strnad1, Guo-Zhong Tao, Phillip So
1Department of Medicine, Palo Alto VA Medical Center, Palo Alto, CA, USA.
Unlabelled:
The cytoplasmic hepatocyte inclusions, Mallory-Denk bodies (MDBs), are characteristic of several liver disorders, including alcoholic and nonalcoholic steatohepatitis. In mice, MDBs can be induced by long-term feeding with 3,5-diethoxycarbonyl-1,4-dihydrocollidine (DDC) for 3 to 4 months or rapidly reformed in DDC-induced then recovered mice by DDC refeeding or exposure to a wide range of toxins for only 5 to 7 days. The molecular basis for such a rapid reinduction of MDBs is unknown. We hypothesized that protein changes retained after DDC priming contribute to the rapid MDB reappearance and associate with MDB formation in general terms. Two-dimensional differential-in-gel-electrophoresis coupled with mass spectrometry were used to characterize protein changes in livers from the various treatment groups. The alterations were assessed by real-time reverse-transcription polymerase chain reaction and confirmed by immunoblotting. DDC treatment led to pronounced charged isoform changes in several chaperone families, including Hsp25, 60, 70, GRP58, GRP75, and GRP78, which lasted at least for 1 month after discontinuation of DDC feeding, whereas changes in other proteins normalized during recovery. DDC feeding also resulted in altered expression of Hsp72, GRP75, and Hsp25 and in functional impairment of Hsp60 and Hsp70 as determined using a protein complex formation and release assay. The priming toward rapid MDB reinduction lasts for at least 3 months after DDC discontinuation, but becomes weaker after prolonged recovery. MDB reinduction parallels the rapid increase in p62 and Hsp25 levels as well as keratin 8 cross-linking that is normally associated with MDB formation.
Conclusion:
Persistent posttranslational modifications in chaperone proteins, coupled with protein cross-linking and altered chaperone expression and function likely contribute to the "toxic memory" of DDC-primed mice. We hypothesize that similar changes are important contributors to inclusion body formation in several diseases.
Insights
Persistent protein changes in liver cells create a "toxic memory" in mice, enabling rapid Mallory-Denk body (MDB) re-formation. This priming effect, involving chaperone proteins, may explain inclusion body formation in liver diseases.
Area of Science:
- Hepatology
- Molecular Biology
- Toxicology
Background:
- Mallory-Denk bodies (MDBs) are cytoplasmic inclusions in hepatocytes, characteristic of liver diseases like steatohepatitis.
- Rapid MDB re-formation occurs in mice after initial induction and recovery, but the underlying molecular mechanisms are unclear.
Purpose of the Study:
- To investigate the molecular basis for rapid MDB reinduction in DDC-primed mice.
- To identify persistent protein alterations contributing to MDB formation.
Main Methods:
- Utilized 2D differential gel electrophoresis and mass spectrometry to analyze liver proteins.
- Employed real-time RT-PCR and immunoblotting to assess protein alterations.
- Assessed chaperone protein function using a complex formation and release assay.
Main Results:
- DDC treatment induced persistent charged isoform changes in chaperone proteins (Hsp25, 60, 70, GRP58, 75, 78) lasting over a month.
- Altered expression and functional impairment of Hsp60 and Hsp70 were observed.
- A
- toxic memory
- enabling rapid MDB reinduction persisted for at least 3 months post-DDC.
Conclusions:
- Persistent posttranslational modifications, altered chaperone expression/function, and protein cross-linking contribute to the DDC-induced
- toxic memory
- .
- These findings suggest similar mechanisms may drive inclusion body formation in various liver diseases.
More Related Videos
Related Concept Videos
Toxic Reactions: Overview
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
Immunological Memory
What is Immunological Memory?
Immunological memory is an integral function of the immune system that allows it to recognize and react more rapidly and effectively to pathogens previously encountered. This feature is...
Restarting Stalled Replication Forks
Replicative Cell Senescence
Neurogenesis and Regeneration of Nervous Tissue
Drug Toxicity: Dose-Dependent Reactions


