Institute of Applied Bioresource Research, College of Animal Science, Key Laboratory of Silkworm and Bee Resource Utilization and Innovation of Zhejiang Province, Hangzhou, 310058, Zhejiang, China.
Institute of Biotechnology, College of Agriculture and Biotechnology, Zhejiang University, Hangzhou, 310058, Zhejiang, China.
J Nanobiotechnology. 2024 Mar 14;22(1):111. doi: 10.1186/s12951-024-02359-x.
Brain damage is a common tissue damage caused by trauma or diseases, which can be life-threatening. Stem cell implantation is an emerging strategy treating brain damage. The stem cell is commonly embedded in a matrix material for implantation, which protects stem cell and induces cell differentiation. Cell differentiation induction by this material is decisive in the effectiveness of this treatment strategy. In this work, we present an injectable fibroin/MXene conductive hydrogel as stem cell carrier, which further enables in-vivo electrical stimulation upon stem cells implanted into damaged brain tissue. Cell differentiation characterization of stem cell showed high effectiveness of electrical stimulation in this system, which is comparable to pure conductive membrane. Axon growth density of the newly differentiated neurons increased by 290% and axon length by 320%. In addition, unfavored astrocyte differentiation is minimized. The therapeutic effect of this system is proved through traumatic brain injury model on rats. Combined with in vivo electrical stimulation, cavities formation is reduced after traumatic brain injury, and rat motor function recovery is significantly promoted.
脑损伤是一种常见的由创伤或疾病引起的组织损伤,可能危及生命。干细胞移植是一种新兴的治疗脑损伤的策略。干细胞通常嵌入基质材料中进行移植,这种基质材料既能保护干细胞又能诱导细胞分化。这种材料对细胞分化的诱导在治疗策略的有效性方面起着决定性的作用。在这项工作中,我们提出了一种可注射的丝素/MXene 导电水凝胶作为干细胞载体,进一步实现了将干细胞植入受损脑组织后进行体内电刺激。干细胞的细胞分化特性表明,该系统中的电刺激非常有效,可与纯导电膜相媲美。新分化神经元的轴突生长密度增加了 290%,轴突长度增加了 320%。此外,还最大限度地减少了不希望的星形胶质细胞分化。通过大鼠创伤性脑损伤模型证明了该系统的治疗效果。结合体内电刺激,创伤性脑损伤后腔形成减少,大鼠运动功能恢复显著促进。