Rheological characterization of biological hydrogels in aqueous state

Q3 Biochemistry, Genetics and Molecular Biology Journal of Applied Biotechnology Reports Pub Date : 2020-07-07 DOI:10.30491/JABR.2020.109994
K. Alam, Muhammad Iqbal, A. Hasan, N. Al-Maskari
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引用次数: 8

Abstract

Introduction: Biological hydrogels provide a conducive extracellular environment for encapsulating and growing cells and play an important role in regulating cell behavior. Mechanical and rheological properties of hydrogels can influence cell function, mechanotransduction and cellular behaviors such as growth, migration, adhesion, self-renewal, differentiation, morphology and fate. Determination of rheological properties of biogels is important for printing tissues by controlling physical properties and developing efficient drug delivery systems. The main purpose of the current study was to determine some important rheological properties of two well-known hydrogels (agarose and gelatin methacryloyl [GelMA]). Materials and Methods: Rheological properties of gel solutions with different concentrations were measured using oscillatory rheometry. Agarose gels of 1% and 2% (w/v) concentration were prepared in 100 mL de-ionized water. The GelMA solutions of 10% and 15% concentrations were prepared by dissolving dry GelMA in deionized water. Rheological measurements were performed using a rheometer with cone-plate geometry. Results: Both storage modulus (G′) and loss modulus (G′′) increased with an increase in frequency. Rheological properties of both types of gel solutions were strongly influenced by the amount of concentration. The shear stress profiles demonstrated shear thinning in both types of gels. Viscosity of 1% agarose and 2% agarose was found comparable with 10% GelMA and 15% GelMA , respectively. Conclusions: Results obtained from experiments revealed that rotational rheometry can be confidently used to determine viscous and elastic response of hydrogels in the aqueous state. The results will help to select the right type of gel and amount of concentration for the bio-printing of tissues.
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生物水凝胶在水溶液中的流变特性
简介:生物水凝胶为封装和生长细胞提供了有利的细胞外环境,并在调节细胞行为方面发挥着重要作用。水凝胶的机械和流变特性可以影响细胞功能、机械转导和细胞行为,如生长、迁移、粘附、自我更新、分化、形态和命运。生物凝胶流变特性的测定对于通过控制物理特性和开发有效的药物递送系统来打印组织是重要的。本研究的主要目的是确定两种众所周知的水凝胶(琼脂糖和明胶甲基丙烯酰基[GelMA])的一些重要流变性质。材料和方法:采用振荡流变仪测定不同浓度凝胶溶液的流变特性。在100mL去离子水中制备1%和2%(w/v)浓度的琼脂糖凝胶。通过将干GelMA溶解在去离子水中来制备10%和15%浓度的GelMA溶液。使用具有锥板几何形状的流变仪进行流变测量。结果:储能模量(G′)和损耗模量(G’′)均随频率的增加而增加。两种类型的凝胶溶液的流变性质都受到浓度的强烈影响。剪切应力剖面表明,两种类型的凝胶都存在剪切变薄现象。发现1%琼脂糖和2%琼脂糖的粘度分别与10%GelMA和15%GelMA相当。结论:实验结果表明,旋转流变仪可以可靠地用于测定水凝胶在水溶液状态下的粘性和弹性响应。研究结果将有助于选择合适的凝胶类型和浓度,用于组织的生物打印。
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来源期刊
Journal of Applied Biotechnology Reports
Journal of Applied Biotechnology Reports Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
1.90
自引率
0.00%
发文量
0
期刊介绍: The Journal of Applied Biotechnology Reports (JABR) publishes papers describing experimental work relating to all fundamental issues of biotechnology including: Cell Biology, Genetics, Microbiology, Immunology, Molecular Biology, Biochemistry, Embryology, Immunogenetics, Cell and Tissue Culture, Molecular Ecology, Genetic Engineering and Biological Engineering, Bioremediation and Biodegradation, Bioinformatics, Biotechnology Regulations, Pharmacogenomics, Gene Therapy, Plant, Animal, Microbial and Environmental Biotechnology, Nanobiotechnology, Medical Biotechnology, Biosafety, Biosecurity, Bioenergy, Biomass, Biomaterials and Biobased Chemicals and Enzymes. Journal of Applied Biotechnology Reports promotes a special emphasis on: -Improvement methods in biotechnology -Optimization process for high production in fermentor systems -Protein and enzyme engineering -Antibody engineering and monoclonal antibody -Molecular farming -Bioremediation -Immobilizing methods -biocatalysis
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