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基于巯基-甲基亚砜的水凝胶用于细胞包封:芳基-甲基亚砜基质的反应性优化,以实现精细可调的胶凝速率和提高稳定性。

Thiol-Methylsulfone-Based Hydrogels for Cell Encapsulation: Reactivity Optimization of Aryl-Methylsulfone Substrate for Fine-Tunable Gelation Rate and Improved Stability.

机构信息

INM - Leibniz Institute for New Materials, Campus D2-2, 66123, Saarbrücken, Germany.

Saarland University, Chemistry Department, 66123 Saarbrücken, Germany.

出版信息

Biomacromolecules. 2021 Jul 12;22(7):2874-2886. doi: 10.1021/acs.biomac.1c00256. Epub 2021 Jun 6.

Abstract

Hydrogels are widely used as hydrated matrices for cell encapsulation in a number of applications, spanning from advanced 3D cultures and tissue models to cell-based therapeutics and tissue engineering. Hydrogel formation in the presence of living cells requires cross-linking reactions that proceed efficiently under close to physiological conditions. Recently, the nucleophilic aromatic substitution of phenyl-oxadiazole (Ox) methylsulfones (MS) by thiols was introduced as a new cross-linking reaction for cell encapsulation. Reported poly(ethylene glycol) (PEG)-based hydrogels featured tunable gelation times within seconds to a few minutes within pH 8.0 to 6.6 and allowed reasonably good mixing with cells. However, their rapid degradation prevented cell cultures to be maintained beyond 1 week. In this Article, we present the reactivity optimization of the heteroaromatic ring of the MS partner to slow down the cross-linking kinetics and the degradability of the derived hydrogels. New MS substrates based on phenyl-tetrazole (Tz) and benzothiazole (Bt) rings, with lower electrophilicity than Ox, were synthesized by simple pathways. When mixed with PEG-thiol, the novel PEG-MS extended the working time of precursor mixtures and allowed longer term cell culture. The Tz-based MS substrate was identified as the best candidate, as it is accessible by simple chemical reactions from cost-effective reactants, hydrogel precursors show good stability in aqueous solution and keep high chemoselectivity for thiols, and the derived Tz gels support cell cultures for >2 weeks. The Tz system also shows tunable gelation kinetics within seconds to hours and allows comfortable manipulation and cell encapsulation. Our findings expand the toolkit of thiol-mediated chemistry for the synthesis of hydrogels with improved properties for laboratory handling and future automatization.

摘要

水凝胶被广泛用作细胞包封的水合基质,在许多应用中,从先进的 3D 培养物和组织模型到基于细胞的治疗和组织工程。在活细胞存在下形成水凝胶需要交联反应,这些反应在接近生理条件下高效进行。最近,由巯基引发的苯并恶二唑(Ox)甲基磺酰基(MS)的亲核芳香取代反应被引入作为细胞包封的新交联反应。报道的基于聚乙二醇(PEG)的水凝胶具有在 pH 8.0 至 6.6 范围内在几秒钟到几分钟内可调的凝胶时间,并允许与细胞进行合理混合。然而,它们的快速降解阻止了细胞培养物维持超过 1 周。在本文中,我们介绍了 MS 配体中杂芳环的反应性优化,以减慢交联动力学和衍生水凝胶的降解性。通过简单的途径合成了基于苯并四唑(Tz)和苯并噻唑(Bt)环的新型 MS 底物,其电负性低于 Ox。当与 PEG-硫醇混合时,新型 PEG-MS 延长了前体混合物的工作时间,并允许进行更长时间的细胞培养。Tz 基 MS 底物被确定为最佳候选物,因为它可以通过简单的化学反应从具有成本效益的反应物中获得,水凝胶前体在水溶液中表现出良好的稳定性,并且对巯基保持高化学选择性,并且衍生的 Tz 凝胶支持细胞培养>2 周。Tz 系统还具有在几秒钟到几小时内可调的凝胶化动力学,并允许舒适的操作和细胞包封。我们的发现扩展了基于巯基的化学合成水凝胶的工具包,这些水凝胶具有改善的实验室处理和未来自动化性能。

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