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HSPB2 facilitates neural regeneration through autophagy for sensorimotor recovery after traumatic brain injury
Yichen Huang, Shan Meng, Biwu Wu, Hong Shi, Yana Wang, Jiakun Xiang, Jiaying Li, Ziyu Shi, Gang Wu, Yanchen Lyu, Xu Jia, Jin Hu, Zhi-Xiang Xu, Yanqin Gao
Yichen Huang, Shan Meng, Biwu Wu, Hong Shi, Yana Wang, Jiakun Xiang, Jiaying Li, Ziyu Shi, Gang Wu, Yanchen Lyu, Xu Jia, Jin Hu, Zhi-Xiang Xu, Yanqin Gao
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Research Article Neuroscience

HSPB2 facilitates neural regeneration through autophagy for sensorimotor recovery after traumatic brain injury

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Abstract

Autophagy is a promising target for promoting neural regeneration, which is essential for sensorimotor recovery following traumatic brain injury (TBI). Whether neuronal heat shock protein B2 (HSPB2), a small molecular heat shock protein, reduces injury and promotes recovery following TBI remains unclear. In this study, we demonstrated that HSPB2 was significantly increased in the neurons of a TBI mouse model, patients, and primary neuron cultures subjected to oxygen/glucose deprivation and reperfusion treatment. Upon creating a tamoxifen-induced neuron-specific HSPB2 overexpression transgenic mouse model, we found that elevated HSPB2 levels promoted long-term sensorimotor recovery and alleviated tissue loss after TBI. We also demonstrated that HSPB2 enhanced white matter structural and functional integrity, promoted central nervous system (CNS) plasticity, and accelerated long-term neural remodeling. Moreover, we found that autophagy occurred around injured brain tissues in patients, and the pro-regenerative effects of HSPB2 relied on its autophagy-promoting function. Mechanistically, HSPB2 may regulate autophagy possibly by forming the HSPB2/BCL2-associated athanogene 3/sequestosome-1 complex to facilitate the clearance of erroneously accumulated proteins in the axons. Treatment with the autophagy inhibitor chloroquine during the acute stage or delayed induction of HSPB2 remarkably impeded HSPB2’s long-term reparative function, indicating the importance of acute-stage autophagy in long-term neuro-regeneration. Our findings highlight the beneficial role of HSPB2 in neuro-regeneration and functional recovery following acute CNS injury, thereby emphasizing the therapeutic potential of autophagy regulation for enhancing neuro-regeneration.

Authors

Yichen Huang, Shan Meng, Biwu Wu, Hong Shi, Yana Wang, Jiakun Xiang, Jiaying Li, Ziyu Shi, Gang Wu, Yanchen Lyu, Xu Jia, Jin Hu, Zhi-Xiang Xu, Yanqin Gao

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Figure 5

HSPB2 facilitates axon sprouting in the long term after TBI.

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HSPB2 facilitates axon sprouting in the long term after TBI.
(A) Experim...
(A) Experimental design and sketch of anterograde tracing of CST. (B) Illustration of BDA-labeled axons crossing the midline of C7 at 49 days postinjury; circle indicates the intersection of axon and midline, and line represents the midline for plot profile analysis. (C) Heatmap of BDA fluorescence intensity. (D) Plot profile of the C7 midline in B; arrow indicates the BDA intersection. (E) Quantitative analysis of BDA+ axons crossing the midline in C7 and correlation between BDA+ axons across the midline in C7 and total foot fault rate at day 49. n = 5, analyzed by 1-way ANOVA and post hoc Bonferroni’s test and Spearman’s correlation test. (F) Representative 3D reconstruction of BDA+ axons with synaptophysin+ vesicles in the contralateral C7. Blue, DAPI; red, synaptophysin. (G) Quantitative analysis of synaptophysin+ vesicles in BDA+ axons (n = 5), analyzed by unpaired 2-tailed Student’s t test. *TG versus WT, #TBI versus sham. *: P < 0.05, ###: P < 0.001. BDA, biotin dextran amine; C7, cervical spinal cord segment 7; FN, facial nucleus layer.

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