Cryopreservation of Stem Cell-Derived β-Like Cells Enriches for Insulin-Producing Cells With Improved Function.

Diabetes Pub Date : 2024-10-01 DOI:10.2337/db24-0346
Jessie M Barra, Austin T Kratz, Roberto Castro-Gutierrez, James Proia, Gurprit Bhardwaj, Edward A Phelps, Holger A Russ
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Abstract

The generation of stem cell-derived β-like cells (sBCs) holds promise as not only an abundant insulin-producing cell source for replacement therapy of type 1 diabetes (T1D) but also as an invaluable model system for investigating human β-cell development, immunogenicity, and function. Several groups have developed methodology to direct differentiate human pluripotent stem cells into pancreatic cell populations that include glucose-responsive sBCs. Nevertheless, the process of generating sBCs poses substantial experimental challenges. It involves lengthy differentiation periods, there is substantial variability in efficiency, and there are inconsistencies in obtaining functional sBCs. Here, we describe a simple and effective cryopreservation approach for sBC cultures that yields homogeneous sBC clusters that are enriched for insulin-expressing cells while simultaneously depleting proliferative progenitors. Thawed sBCs have enhanced glucose-stimulated insulin release compared with controls in vitro and can effectively engraft and function in vivo. Collectively, this approach alleviates current challenges with inefficient and variable sBC generation while improving their functional state. We anticipate that these findings can inform ongoing clinical application of sBCs for the treatment of patients with T1D and serve as an important resource for the wider diabetes field that will allow for accelerated research discoveries.

Article highlights:

对干细胞衍生的β样细胞进行冷冻保存,可获得功能更强的胰岛素分泌细胞。
干细胞衍生β样细胞(sBC)的产生前景极为广阔,它不仅是替代治疗1型糖尿病(T1D)的丰富胰岛素分泌细胞来源,还是研究人类β细胞发育、免疫原性和功能的宝贵模型系统。一些研究小组已开发出将人类多能干细胞直接分化成胰腺细胞群的方法,其中包括葡萄糖反应性 sBC。然而,生成 sBC 的过程带来了巨大的实验挑战。它涉及漫长的分化期、效率的巨大差异以及获得功能性 sBC 的不一致性。在这里,我们介绍了一种简单有效的 sBC 培养物低温保存方法,这种方法能产生均匀的 sBC 簇,这些 sBC 簇富含胰岛素表达细胞,同时还能消耗增殖性祖细胞。与对照组相比,解冻后的 sBC 在体外显示出更强的葡萄糖刺激胰岛素释放能力,并能在体内有效移植和发挥作用。总之,这种方法缓解了当前因 sBC 生成效率低下和可变性而面临的挑战,同时改善了它们的功能状态。我们预计,这些发现将为目前临床应用 sBC 治疗 T1D 患者提供依据,并为更广泛的糖尿病领域提供重要资源,从而加速研究发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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