Neural Regeneration Research ›› 2026, Vol. 21 ›› Issue (10): 5063-5070.doi: 10.4103/NRR.NRR-D-25-00034

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Heat shock protein 40 enhances axon regeneration in a mouse model of traumatic optic neuropathy

Jiaxing Wang1, Ying Li1, Felix L. Struebing1, 2, Sandra Jardines1, Su-Ting Lin1, Fangyu Lin1, Eldon E. Geisert1, *   

  1. 1Department of Ophthalmology, Emory University, Atlanta, GA, USA;  2Center for Neuropathology and Prion Research, Ludwig Maximilian University of Munich, Munich, Germany
  • Online:2026-10-15 Published:2026-06-15
  • Contact: Eldon E. Geisert, PhD, egeiser@emory.edu.
  • Supported by:
    This study was supported by grants from the BrightFocus Foundation G2019111 (to EEG) and G20220125 (to JW), Owens Family Glaucoma Research Fund, NEI grant R01EY031042 (to EEG), P30EY06360 (Machelle Pardue), Challenge Grant from Research to Prevent Blindness (Allen Beck), NIH/NCU grant P30CA138292 (Emory Integrated Genomics Core), and Emory Viral Vector Core  https://neurology.emory.edu/ENNCF/viral_vector/).

Abstract: Retinal ganglion cell death occurs following injury to the optic nerve either by trauma or in disease such as glaucoma, leading to severe vision loss. Recent innovations have demonstrated that optic nerve regeneration is feasible; however, the regeneration is limited. The aim of the present study is to identify genomic elements enhancing axon regeneration. We have taken a forward genetics approach using the BXD recombinant mouse strains to identify a gene that increases the extent of optic nerve regeneration. Axon regeneration was induced by knocking down Pten in retinal ganglion cells using adeno-associated virus to deliver an shRNA followed by an intravitreal injection of Zymosan with CPT-cAMP that produced a mild inflammatory response. Retinal ganglion cell axons were damaged by optic nerve crush. Following a 12-day survival period, regenerating axons were labeled by intravitreal injection of Cholera Toxin B conjugated with Alexa Fluor 647. Two days later, labeled axons within the optic nerve were examined to determine the number of regenerating axons and the distance they traveled down the optic nerve. The analysis revealed a surprising difference in the amount of axonal regeneration across all 33 BXD strains. There was a 7.5-fold difference in the number of regenerating axons and a 4-fold difference in the distance traveled by regenerating axons. These data were used to generate an interval map defining genomic loci that modulate enhanced axonal regeneration. A quantitative trait locus modulating axon regeneration was identified on Chromosome 14 (115 to 119 Mb). Within this locus were 16 annotated genes. Subsequent testing revealed that one candidate gene, Dnajc3, modulated axonal regeneration. Dnajc3 encodes heat shock protein 40 (HSP40), a molecular chaperone. Knocking down Dnajc3 in the high regenerative strain (BXD90) led to a decreased regeneration response, whereas, overexpression of Dnajc3 in a low regenerative strain (BXD34) resulted in an increased regeneration response. These findings reveal that Dnajc3 not only increases the number of regenerating axons, but also increases the distance that axons travel. The enhanced regeneration will prove to be critical for functional recovery in humans, where the distance axons travel to their targets is considerably longer than that of mice.

Key words: axon regeneration, complex trait, Dnajc3, genomics, heat shock protein 40, mouse, optic nerve, retinal ganglion cell