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Updated: Feb 4, 2026

Studies of Chaperone-Cochaperone Interactions using Homogenous Bead-Based Assay
Published on: July 21, 2021
HSP90 is a chaperone for DLK and is required for axon injury signaling
Scott Karney-Grobe1, Alexandra Russo1, Erin Frey1
1Department of Developmental Biology, Washington University School of Medicine, St. Louis, MO 63110.
Abstract:
Peripheral nerve injury induces a robust proregenerative program that drives axon regeneration. While many regeneration-associated genes are known, the mechanisms by which injury activates them are less well-understood. To identify such mechanisms, we performed a loss-of-function pharmacological screen in cultured adult mouse sensory neurons for proteins required to activate this program. Well-characterized inhibitors were present as injury signaling was induced but were removed before axon outgrowth to identify molecules that block induction of the program. Of 480 compounds, 35 prevented injury-induced neurite regrowth. The top hits were inhibitors to heat shock protein 90 (HSP90), a chaperone with no known role in axon injury. HSP90 inhibition blocks injury-induced activation of the proregenerative transcription factor cJun and several regeneration-associated genes. These phenotypes mimic loss of the proregenerative kinase, dual leucine zipper kinase (DLK), a critical neuronal stress sensor that drives axon degeneration, axon regeneration, and cell death. HSP90 is an atypical chaperone that promotes the stability of signaling molecules. HSP90 and DLK show two hallmarks of HSP90-client relationships: (i) HSP90 binds DLK, and (ii) HSP90 inhibition leads to rapid degradation of existing DLK protein. Moreover, HSP90 is required for DLK stability in vivo, where HSP90 inhibitor reduces DLK protein in the sciatic nerve. This phenomenon is evolutionarily conserved in Drosophila Genetic knockdown of Drosophila HSP90, Hsp83, decreases levels of Drosophila DLK, Wallenda, and blocks Wallenda-dependent synaptic terminal overgrowth and injury signaling. Our findings support the hypothesis that HSP90 chaperones DLK and is required for DLK functions, including proregenerative axon injury signaling.
Insights
Heat shock protein 90 (HSP90) is crucial for activating proregenerative signaling after nerve injury by stabilizing the dual leucine zipper kinase (DLK). This discovery offers new therapeutic targets for enhancing axon regeneration.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Peripheral nerve injury triggers a proregenerative response essential for axon regrowth.
- The precise molecular mechanisms activating this regenerative program remain incompletely understood.
Purpose of the Study:
- To identify novel molecular players involved in activating the proregenerative program following nerve injury.
- To investigate the role of heat shock protein 90 (HSP90) in neuronal injury signaling.
Main Methods:
- A pharmacological loss-of-function screen was conducted using cultured adult mouse sensory neurons.
- Inhibitors were applied during injury signaling induction and removed before axon outgrowth assessment.
- Hits were validated by assessing their impact on cJun activation and regeneration-associated gene expression.
Main Results:
- Inhibition of heat shock protein 90 (HSP90) blocked injury-induced neurite regrowth.
- HSP90 inhibition prevented the activation of c-Jun and key regeneration-associated genes.
- HSP90 was found to bind and stabilize dual leucine zipper kinase (DLK), a critical proregenerative kinase, and its inhibition led to DLK degradation.
- This HSP90-DLK interaction and its role in injury signaling were conserved in Drosophila.
Conclusions:
- Heat shock protein 90 (HSP90) acts as a critical chaperone for dual leucine zipper kinase (DLK).
- HSP90 is essential for the stability and function of DLK in proregenerative axon injury signaling.
- Targeting the HSP90-DLK pathway presents a potential therapeutic strategy for promoting nerve regeneration.
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