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Silicon nanopore membrane (SNM) for islet encapsulation and immunoisolation under convective transport

机译:硅纳米孔膜(SNM)用于对流运输中的胰岛包封和免疫隔离

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摘要

Problems associated with islet transplantation for Type 1 Diabetes (T1D) such as shortage of donor cells, use of immunosuppressive drugs remain as major challenges. Immune isolation using encapsulation may circumvent the use of immunosuppressants and prolong the longevity of transplanted islets. The encapsulating membrane must block the passage of host’s immune components while providing sufficient exchange of glucose, insulin and other small molecules. We report the development and characterization of a new generation of semipermeable ultrafiltration membrane, the silicon nanopore membrane (SNM), designed with approximately 7 nm-wide slit-pores to provide middle molecule selectivity by limiting passage of pro-inflammatory cytokines. Moreover, the use of convective transport with a pressure differential across the SNM overcomes the mass transfer limitations associated with diffusion through nanometer-scale pores. The SNM exhibited a hydraulic permeability of 130 ml/hr/m2/mmHg, which is more than 3 fold greater than existing polymer membranes. Analysis of sieving coefficients revealed 80% reduction in cytokines passage through SNM under convective transport. SNM protected encapsulated islets from infiltrating cytokines and retained islet viability over 6 hours and remained responsive to changes in glucose levels unlike non-encapsulated controls. Together, these data demonstrate the novel membrane exhibiting unprecedented hydraulic permeability and immune-protection for islet transplantation therapy.
机译:与1型糖尿病(T1D)的胰岛移植相关的问题,例如供体细胞短缺,使用免疫抑制药物仍然是主要挑战。使用封装的免疫隔离可能会绕过免疫抑制剂的使用,并延长移植胰岛的寿命。封装膜必须阻止宿主免疫成分的通过,同时提供足够的葡萄糖,胰岛素和其他小分子交换。我们报告了新一代半透性超滤膜,硅纳米孔膜(SNM)的开发和表征,该膜设计有约7 nm宽的裂孔,通过限制促炎性细胞因子的通过来提供中分子选择性。此外,对流输运具有跨SNM的压差,克服了与通过纳米级孔扩散相关的传质限制。 SNM的水力渗透率为130µml / hr / m 2 / mmHg,比现有的聚合物膜大3倍以上。筛分系数的分析显示,在对流运输下,穿过SNM的细胞因子减少了80%。 SNM可以保护被包封的胰岛免受细胞因子的浸润,并在6小时内保持胰岛的活力,并且与未包被的对照组相比,它对葡萄糖水平的变化保持响应。总之,这些数据证明了这种新型膜对胰岛移植治疗具有前所未有的水力渗透性和免疫保护性。

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