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在藻酸盐微胶囊的囊内环境中加入细胞外基质分子和坏死抑制素-1,协同保护胰岛 β 细胞免受细胞因子诱导的炎症应激。

Inclusion of extracellular matrix molecules and necrostatin-1 in the intracapsular environment of alginate-based microcapsules synergistically protects pancreatic β cells against cytokine-induced inflammatory stress.

机构信息

Immunoendocrinology, Division of Medical Biology, Department of Pathology and Medical Biology, University of Groningen and University Medical Center Groningen, Hanzeplein 1, EA 11, Groningen 9713 GZ, the Netherlands.

Immunoendocrinology, Division of Medical Biology, Department of Pathology and Medical Biology, University of Groningen and University Medical Center Groningen, Hanzeplein 1, EA 11, Groningen 9713 GZ, the Netherlands; Biological and Environmental Engineering, Cornell University, Ithaca, NY 14853, USA.

出版信息

Acta Biomater. 2022 Jul 1;146:434-449. doi: 10.1016/j.actbio.2022.04.042. Epub 2022 Apr 30.

Abstract

Immunoisolation of pancreatic islets in alginate-based microcapsules is a promising approach for grafting of islets in absence of immunosuppression. However, loss and damage to the extracellular matrix (ECM) during islet isolation enhance susceptibility of islets for inflammatory stress. In this study, a combined strategy was applied to reduce this stress by incorporating ECM components (collagen type IV/RGD) and necroptosis inhibitor, necrostatin-1 (Nec-1) in alginate-based microcapsules in vitro. To demonstrate efficacy, viability and function of MIN6 β-cells and human islets in capsules with collagen type IV/RGD and/or Nec-1 was investigated in presence and absence of IL-1β, IFN-γ and TNF-α. The combination of collagen type IV/RGD and Nec-1 had higher protective effects than the molecules alone. Presence of collagen type IV/RGD and Nec-1 in the intracapsular environment reduced cytokine-induced overproduction of free radical species and unfavorable shifts in mitochondrial dynamics. In addition, the ECM components collagen type IV/RGD prevented a cytokine induced suppression of the FAK/Akt pathway. Our data indicate that the inclusion of collagen type IV/RGD and Nec-1 in the intracapsular environment prevents islet-cell loss when exposed to inflammatory stress, which might contribute to higher survival of β-cells in the immediate period after transplantation. This approach of inclusion of stress reducing agents in the intracapsular environment of immunoisolating devices may be an effective way to enhance the longevity of encapsulated islet grafts. STATEMENT OF SIGNIFICANCE: Islet-cells in immunoisolated alginate-based microcapsules are very susceptible to inflammatory stress which impacts long-term survival of islet grafts. Here we show that incorporation of ECM components (collagen type IV/RGD) and necrostatin-1 (Nec-1) in the intracapsular environment of alginate-based capsules attenuates this susceptibility and promotes islet-cell survival. This effect induced by collagen type IV/RGD and Nec-1 was probably due to lowering free radical production, preventing mitochondrial dysfunction and by maintaining ECM/integrin/FAK/Akt signaling and Nec-1/RIP1/RIP3 signaling. Our study provides an effective strategy to extend longevity of islet grafts which might be of great potential for future clinical application of immunoisolated cells.

摘要

胰岛的海藻酸钠基微胶囊免疫隔离是一种有前途的方法,可在没有免疫抑制的情况下进行胰岛移植。然而,胰岛分离过程中细胞外基质(ECM)的丢失和损伤会增加胰岛对炎症应激的敏感性。在这项研究中,通过在海藻酸钠基微胶囊中加入 ECM 成分(IV 型胶原/RGD)和坏死抑制剂 necrostatin-1(Nec-1),应用了一种联合策略来减少这种应激。为了证明其疗效,研究了在存在和不存在白细胞介素-1β(IL-1β)、干扰素-γ(IFN-γ)和肿瘤坏死因子-α(TNF-α)的情况下,IV 型胶原/RGD 和/或 Nec-1 对 MIN6 β 细胞和人胰岛在胶囊中的活力和功能的影响。结果表明,IV 型胶原/RGD 和 Nec-1 的联合作用比单独使用这些分子具有更高的保护作用。在胶囊内环境中存在 IV 型胶原/RGD 和 Nec-1 可减少细胞因子诱导的自由基过度产生和线粒体动力学的不利变化。此外,ECM 成分 IV 型胶原/RGD 可防止细胞因子诱导的 FAk/Akt 通路抑制。我们的数据表明,将 IV 型胶原/RGD 和 Nec-1 纳入免疫隔离装置的胶囊内环境中,可防止胰岛细胞在炎症应激下的丢失,这可能有助于移植后即刻β细胞的更高存活率。这种在免疫隔离装置的胶囊内环境中加入减轻应激的试剂的方法可能是提高包被胰岛移植物寿命的有效方法。

意义声明

免疫隔离的海藻酸钠基微胶囊中的胰岛细胞非常容易受到炎症应激的影响,这会影响胰岛移植物的长期存活。在这里,我们表明,在海藻酸钠基胶囊的胶囊内环境中加入 ECM 成分(IV 型胶原/RGD)和 necrostatin-1(Nec-1)可减弱这种易感性并促进胰岛细胞的存活。IV 型胶原/RGD 和 Nec-1 诱导的这种作用可能是由于降低了自由基的产生,防止了线粒体功能障碍,并通过维持 ECM/整合素/FAK/Akt 信号和 Nec-1/RIP1/RIP3 信号来实现的。我们的研究为延长胰岛移植物的寿命提供了一种有效的策略,这可能对免疫隔离细胞的未来临床应用具有巨大潜力。

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