TY - JOUR
T1 - Multifunctional Diselenide-Based Antioxidative Nanozymes Promote Spinal Cord Repair via Oxidative Stress Alleviation and Immune Modulation
AU - Ma, Yanming
AU - Ju, Cheng
AU - Yu, Xiaojun
AU - Zhao, Yuqi
AU - Liu, Shenghang
AU - Li, Hui
AU - Liu, Youjun
AU - Wang, Zhiyuan
AU - Wu, Weidong
AU - Xu, Hailiang
AU - Xie, Tao
AU - Xu, Ruiqing
AU - Wang, Yinguang
AU - Li, Ruoyu
AU - Wang, Xiaodong
AU - Hu, Huimin
AU - Zhu, Lei
AU - Luo, Rongjin
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/2/10
Y1 - 2026/2/10
N2 - Spinal cord injury could trigger an excessive reactive oxygen species formation and a sustained inflammatory response, both of which disrupt neural repair processes. Therefore, it is urgent that exploiting a therapeutic intervention that can simultaneously neutralize ROS and restore immune balance. This study reports a hyaluronic acid–based diselenide cross-linked nanogel (Se–Se@HA) designed to integrate catalytic ROS scavenging and immunomodulatory properties to reconstruct the damaged microenvironment and promote repair. Se–Se@HA exhibits significant structural stability and selectively responds to ROS, demonstrating strong free radical scavenging capabilities. By inhibiting M1 polarization and enhancing the M2 phenotype, Se–Se@HA reduces the levels of pro-inflammatory cytokines such as TNF-α, IL-1β, and IL-6, exhibiting potent anti-inflammatory effects. In vitro, Se–Se@HA protects neurons from oxidative stress damage and promotes neurite growth and axonal bridging. In vivo, this nanogel has demonstrated strong ROS scavenging and anti-inflammatory effects. Transcriptome analysis revealed downregulation of NF-κB, TNF, and MAPK signaling pathways, while enrichment of gene pathways related to synaptic transmission and regeneration. Functionally, Se–Se@HA significantly improved BMS scores, gait indices, and gait regularity, enhanced motor evoked potentials and electromyographic signals, reduced muscle atrophy; increased axonal continuity, restored serotonergic and synaptic-related signals at the injury site, and reduced scar formation. These findings suggest that Se–Se@HA is a multifunctional nanozyme platform capable of coordinating oxidative stress relief, immune homeostasis, and neuroregeneration, providing a promising therapeutic strategy for SCI.
AB - Spinal cord injury could trigger an excessive reactive oxygen species formation and a sustained inflammatory response, both of which disrupt neural repair processes. Therefore, it is urgent that exploiting a therapeutic intervention that can simultaneously neutralize ROS and restore immune balance. This study reports a hyaluronic acid–based diselenide cross-linked nanogel (Se–Se@HA) designed to integrate catalytic ROS scavenging and immunomodulatory properties to reconstruct the damaged microenvironment and promote repair. Se–Se@HA exhibits significant structural stability and selectively responds to ROS, demonstrating strong free radical scavenging capabilities. By inhibiting M1 polarization and enhancing the M2 phenotype, Se–Se@HA reduces the levels of pro-inflammatory cytokines such as TNF-α, IL-1β, and IL-6, exhibiting potent anti-inflammatory effects. In vitro, Se–Se@HA protects neurons from oxidative stress damage and promotes neurite growth and axonal bridging. In vivo, this nanogel has demonstrated strong ROS scavenging and anti-inflammatory effects. Transcriptome analysis revealed downregulation of NF-κB, TNF, and MAPK signaling pathways, while enrichment of gene pathways related to synaptic transmission and regeneration. Functionally, Se–Se@HA significantly improved BMS scores, gait indices, and gait regularity, enhanced motor evoked potentials and electromyographic signals, reduced muscle atrophy; increased axonal continuity, restored serotonergic and synaptic-related signals at the injury site, and reduced scar formation. These findings suggest that Se–Se@HA is a multifunctional nanozyme platform capable of coordinating oxidative stress relief, immune homeostasis, and neuroregeneration, providing a promising therapeutic strategy for SCI.
KW - cross-linked nanozyme
KW - diselenide
KW - immunoregulation
KW - microenvironment -responsive nanogel
KW - neuroregeneration
KW - spinal cord injury
UR - https://www.scopus.com/pages/publications/105029878884
U2 - 10.1021/acsnano.5c15784
DO - 10.1021/acsnano.5c15784
M3 - 文章
C2 - 41582499
AN - SCOPUS:105029878884
SN - 1936-0851
VL - 20
SP - 4116
EP - 4142
JO - ACS Nano
JF - ACS Nano
IS - 5
ER -