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三维涂有人诱导多能干细胞源性神经干细胞/祖细胞的可吸收神经导管促进大鼠周围神经再生。

Bioabsorbable nerve conduits three-dimensionally coated with human induced pluripotent stem cell-derived neural stem/progenitor cells promote peripheral nerve regeneration in rats.

机构信息

Department of Orthopaedic Surgery, Osaka City University Graduate School of Medicine, 1-4-3 Asahimachi, Abeno-ku, Osaka, 545-8585, Japan.

Department of Orthopaedic Surgery, Osaka General Hospital of West Japan Railway Company, Osaka, Japan.

出版信息

Sci Rep. 2021 Feb 18;11(1):4204. doi: 10.1038/s41598-021-83385-9.

Abstract

Peripheral nerve regeneration using nerve conduits has been less effective than autogenous nerve grafts. To overcome this hurdle, we developed a tissue-engineered nerve conduit coated with mouse induced pluripotent stem cell (iPSC)-derived neurospheres, for the first time, which accelerated nerve regeneration in mice. We previously demonstrated the long-term efficacy and safety outcomes of this hybrid nerve conduit for mouse peripheral nerve regeneration. In this study, we investigated the therapeutic potential of nerve conduits coated with human iPSC (hiPSC)-derived neurospheres in rat sciatic nerve defects, as a translational preclinical study. The hiPSC-derived quaternary neurospheres containing neural stem/progenitor cells were three-dimensionally cultured within the nerve conduit (poly L-lactide and polycaprolactone copolymer) for 14 days. Complete 5-mm defects were created as a small size peripheral nerve defect in sciatic nerves of athymic nude rats and reconstructed with nerve conduit alone (control group), nerve conduits coated with hiPSC-derived neurospheres (iPS group), and autogenous nerve grafts (autograft group) (n = 8 per group). The survival of the iPSC-derived neurospheres was continuously tracked using in vivo imaging. At 12 weeks postoperatively, motor and sensory function and histological nerve regeneration were evaluated. Before implantation, the hiPSC-derived quaternary neurospheres that three-dimensional coated the nerve conduit were differentiated into Schwann-like cells. The transplanted hiPSC-derived neurospheres survived for at least 56 days after implantation. The iPS group showed non-significance higher sensory regeneration than the autograft group. Although there was no actual motor functional nerve regeneration in the three groups: control, iPS, and autograft groups, the motor function in the iPS group recovered significantly better than that in the control group, but it did not recover to the same level as that in the autograft group. Histologically, the iPS group demonstrated significantly higher axon numbers and areas, and lower G-ratio values than the control group, whereas the autograft group demonstrated the highest axon numbers and areas and the lowest G-ratio values. Nerve conduit three-dimensionally coated with hiPSC-derived neurospheres promoted axonal regeneration and functional recovery in repairing rat sciatic nerve small size defects. Transplantation of hiPSC-derived neurospheres with nerve conduits is a promising clinical iPSC-based cell therapy for the treatment of peripheral nerve defects.

摘要

使用神经导管进行周围神经再生的效果不如自体神经移植物。为了克服这一障碍,我们首次开发了一种涂有鼠诱导多能干细胞(iPSC)衍生神经球的组织工程神经导管,这加速了小鼠的神经再生。我们之前已经证明了这种杂交神经导管在小鼠周围神经再生中的长期疗效和安全性。在这项研究中,我们研究了涂有人诱导多能干细胞(hiPSC)衍生神经球的神经导管在大鼠坐骨神经缺损中的治疗潜力,作为转化前临床研究。含有神经干细胞/祖细胞的 hiPSC 衍生的四元神经球在神经导管(聚 L-乳酸和聚己内酯共聚物)内三维培养 14 天。在无胸腺裸鼠的坐骨神经中创建了 5 毫米的完全缺损作为小尺寸周围神经缺损,并单独使用神经导管(对照组)、涂有 hiPSC 衍生神经球的神经导管(iPS 组)和自体神经移植物(自体移植组)进行重建(每组 8 只)。使用体内成像连续跟踪 iPSC 衍生神经球的存活情况。术后 12 周,评估运动和感觉功能以及组织学神经再生。在植入前,三维涂覆神经导管的 hiPSC 衍生四元神经球分化为许旺样细胞。植入后,移植的 hiPSC 衍生神经球至少存活 56 天。iPS 组的感觉再生明显高于自体移植组,但无统计学意义。尽管三组(对照组、iPS 组和自体移植组)均未实际出现运动功能神经再生,但 iPS 组的运动功能恢复明显优于对照组,但未恢复到自体移植组的水平。组织学上,iPS 组的轴突数量和面积明显高于对照组,G 比值值较低,而自体移植组的轴突数量和面积最高,G 比值值最低。三维涂覆有 hiPSC 衍生神经球的神经导管促进了大鼠坐骨神经小尺寸缺损修复中的轴突再生和功能恢复。用神经导管移植 hiPSC 衍生神经球是一种有前途的基于 iPSC 的临床细胞治疗方法,可用于治疗周围神经缺损。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40c3/7893001/d951cdefae07/41598_2021_83385_Fig1_HTML.jpg

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