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3D水凝胶支架在细胞生长和增殖过程中的力学和物理化学行为。

Mechanical and physicochemical behavior of a 3D hydrogel scaffold during cell growth and proliferation.

作者信息

Rivero Rebeca E, Capella Virginia, Cecilia Liaudat A, Bosch Pablo, Barbero Cesar A, Rodríguez Nancy, Rivarola Claudia R

机构信息

Chemistry Department, Faculty of Exact, Physical-Chemical and Natural Sciences, Institute of Research in Energy Technologies and Advanced Materials (IITEMA), National University of Rio Cuarto (UNRC)-National Council of Scientific and Technical Research (CONICET) National Route 36 KM 601 X5804ZAB Rio Cuarto Cordoba Argentina

Molecular Biology Department, Faculty of Exact, Physical Chemical and Natural Sciences, Institute of Environmental Biotechnology and Health (INBIAS), National University of Rio Cuarto (UNRC)-National Council of Scientific and Technical Research (CONICET) National Route 36 KM 601 X5804ZAB Rio Cuarto Cordoba Argentina.

出版信息

RSC Adv. 2020 Feb 5;10(10):5827-5837. doi: 10.1039/c9ra08162c. eCollection 2020 Feb 4.

Abstract

Some of the essential properties for cellular scaffolding are the capability to maintain the three-dimensional (3D) structure, good adhesion, and adequate elastic modulus during cell growth, migration, and proliferation. Biocompatible synthetic hydrogels are commonly used as cellular scaffolds because they can mimic the natural extracellular matrices (ECMs). However, it is possible that the physicochemical and mechanical behavior of the scaffold changes during cell proliferation and loses the scaffold properties but this is rarely monitored. In this work, the physicochemical and mechanical properties of a macroporous soft material based on poly(-isopropyl acrylamide) (PNIPAM) have been studied during a period of 75 days at culture condition while bovine fetal fibroblasts (BFF) were grown within the matrix. The interconnected macroporous hydrogel was obtained by cryogelation at -18 °C. The swelling capacity of the scaffold was not altered during cell proliferation but changes in the mechanical properties were observed, beginning with the high elastic modulus (280 kPa) that progressively decreased until mechanical stability (40 kPa) was achieved after 20 culture days. It was observed that the matrix-cell interactions together with collagen production favor normal cellular processes such as cell morphology, adhesion, migration, and proliferation. Therefore, the observed behavior of macroporous PNIPAM as a 3D scaffold during cell growth indicates that the soft matrix is cytocompatible for a long time and preserves the suitable properties that can be applied in tissue engineering and regenerative medicine.

摘要

细胞支架的一些基本特性包括在细胞生长、迁移和增殖过程中维持三维(3D)结构的能力、良好的粘附性以及足够的弹性模量。生物相容性合成水凝胶通常用作细胞支架,因为它们可以模拟天然细胞外基质(ECM)。然而,在细胞增殖过程中,支架的物理化学和力学行为可能会发生变化并失去支架特性,但这种情况很少受到监测。在这项工作中,研究了一种基于聚(N-异丙基丙烯酰胺)(PNIPAM)的大孔软材料在培养条件下75天内的物理化学和力学性能,同时牛胎儿成纤维细胞(BFF)在基质中生长。通过在-18°C下冷冻凝胶化获得了相互连接的大孔水凝胶。在细胞增殖过程中,支架的溶胀能力没有改变,但观察到力学性能发生了变化,开始时弹性模量较高(280 kPa),随后逐渐降低,直到培养20天后达到力学稳定性(40 kPa)。观察到基质-细胞相互作用以及胶原蛋白的产生有利于正常的细胞过程,如细胞形态、粘附、迁移和增殖。因此,大孔PNIPAM作为细胞生长过程中的三维支架的观察行为表明,这种软基质在很长一段时间内具有细胞相容性,并保留了可应用于组织工程和再生医学的合适特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4952/9049616/022eb063676d/c9ra08162c-s1.jpg

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