Carvalho Cristiana R, Chang Wei, Silva-Correia Joana, Reis Rui L, Oliveira Joaquim M, Kohn Joachim
3B's Research Group-Biomaterials, Biodegradables and Biomimetics, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, University of Minho, Barco, Guimarães, 4805-017, Portugal.
New Jersey Center for Biomaterials, Rutgers, The State University of New Jersey, Piscataway, NJ, 08854, USA.
Adv Healthc Mater. 2021 Jan;10(2):e2000753. doi: 10.1002/adhm.202000753. Epub 2020 Nov 9.
Artificial nerve conduits capable of adequately releasing neurotrophic factors are extensively studied to bridge nerve defects. However, the lack of neurotrophic factors in the proximal area and their visible effects in axonal retrograde transport following nerve injury is one of the factors causing an incomplete nerve regeneration. Herein, an advanced conduit made of silk fibroin is produced, which can incorporate growth factors and promote an effective regeneration after injury. For that, enzymatically crosslinked silk fibroin-based conduits are developed to be used as a platform for the controlled delivery of neurotrophic factors. Nerve growth factor and glial-cell line derived neurotrophic factor (GDNF) are incorporated using two different methodologies: i) crosslinking and ii) absorption method. The release profile is measured by ELISA technique. The bioactivity of the neurotrophic factors is evaluated in vitro by using primary dorsal root ganglia. When implanted in a 10 mm sciatic nerve defect in rats, GDNF-loaded silk fibroin conduits reveal retrograde neuroprotection as compared to autografts and plain silk fibroin conduit. Therefore, the novel design presents a substantial improvement of retrograde trafficking, neurons' protection, and motor nerve reinnervation.
能够充分释放神经营养因子的人工神经导管被广泛研究用于修复神经缺损。然而,神经损伤后近端区域神经营养因子的缺乏及其在轴突逆行运输中的明显作用是导致神经再生不完全的因素之一。在此,制备了一种由丝素蛋白制成的先进导管,它可以整合生长因子并促进损伤后的有效再生。为此,开发了酶交联的丝素蛋白基导管作为神经营养因子可控递送的平台。使用两种不同方法整合神经生长因子和胶质细胞系源性神经营养因子(GDNF):i)交联法和ii)吸附法。通过ELISA技术测量释放曲线。通过使用原代背根神经节在体外评估神经营养因子的生物活性。当植入大鼠10毫米坐骨神经缺损处时,与自体移植和普通丝素蛋白导管相比,负载GDNF的丝素蛋白导管显示出逆行神经保护作用。因此,这种新颖的设计在逆行运输、神经元保护和运动神经再支配方面有了实质性的改进。