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Using Caenorhabditis elegans to Screen for Tissue-Specific Chaperone Interactions
Published on: June 7, 2020
AR-12 Inhibits Multiple Chaperones Concomitant With Stimulating Autophagosome Formation Collectively Preventing Virus
Laurence Booth1, Jane L Roberts1, Heath Ecroyd2
1Department of Biochemistry and Molecular Biology, Virginia Commonwealth University, Richmond, Virginia.
Abstract:
We have recently demonstrated that AR-12 (OSU-03012) reduces the function and ATPase activities of multiple HSP90 and HSP70 family chaperones. Combined knock down of chaperones or AR-12 treatment acted to reduce the expression of virus receptors and essential glucosidase proteins. Combined knock down of chaperones or AR-12 treatment inactivated mTOR and elevated ATG13 S318 phosphorylation concomitant with inducing an endoplasmic reticulum stress response that in an eIF2α-dependent fashion increased Beclin1 and LC3 expression and autophagosome formation. Over-expression of chaperones prevented the reduction in receptor/glucosidase expression, mTOR inactivation, the ER stress response, and autophagosome formation. AR-12 reduced the reproduction of viruses including Mumps, Influenza, Measles, Junín, Rubella, HIV (wild type and protease resistant), and Ebola, an effect replicated by knock down of multiple chaperone proteins. AR-12-stimulated the co-localization of Influenza, EBV and HIV virus proteins with LC3 in autophagosomes and reduced viral protein association with the chaperones HSP90, HSP70, and GRP78. Knock down of Beclin1 suppressed drug-induced autophagosome formation and reduced the anti-viral protection afforded by AR-12. In an animal model of hemorrhagic fever virus, a transient exposure of animals to low doses of AR-12 doubled animal survival from ∼30% to ∼60% and suppressed liver damage as measured by ATL, GGT and LDH release. Thus through inhibition of chaperone protein functions; reducing the production, stability and processing of viral proteins; and stimulating autophagosome formation/viral protein degradation, AR-12 acts as a broad-specificity anti-viral drug in vitro and in vivo. We argue future patient studies with AR-12 are warranted. J. Cell. Physiol. 231: 2286-2302, 2016. © 2016 Wiley Periodicals, Inc.
Insights
The drug AR-12 inhibits heat shock proteins (HSP90, HSP70) and essential viral machinery, demonstrating broad-spectrum antiviral activity by promoting viral protein degradation and increasing survival rates in animal models.
Area of Science:
- Biochemistry
- Virology
- Cell Biology
Background:
- Heat shock proteins (HSP90, HSP70) are crucial for viral replication and protein stability.
- Targeting chaperone proteins offers a potential strategy for broad-spectrum antiviral drug development.
Purpose of the Study:
- To investigate the antiviral effects of AR-12, a novel inhibitor of HSP90 and HSP70 family chaperones.
- To elucidate the molecular mechanisms underlying AR-12's antiviral activity.
Main Methods:
- AR-12 treatment and chaperone knockdown were used to assess effects on viral receptors, host proteins, and cellular pathways.
- Mechanisms including mTOR signaling, endoplasmic reticulum stress, and autophagy were analyzed.
- Viral replication was evaluated across multiple virus families in vitro and in vivo.
Main Results:
- AR-12 reduced viral receptor and essential glucosidase expression, inactivated mTOR, and induced endoplasmic reticulum stress and autophagy.
- AR-12 demonstrated broad-spectrum antiviral activity against Mumps, Influenza, Measles, Junín, Rubella, HIV, and Ebola viruses.
- In a hemorrhagic fever virus model, AR-12 treatment doubled survival rates and reduced liver damage.
Conclusions:
- AR-12 exhibits broad-spectrum antiviral properties by inhibiting chaperone function, disrupting viral protein processing, and promoting autophagosome formation.
- AR-12 represents a promising therapeutic candidate for viral infections, warranting further clinical investigation.
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