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- 保存条件:
常温
- 保质期:
根据瓶身LOT号查询
- 英文名:
Poly(ethylene glycol)
- 库存:
有现货
- 供应商:
浙江羽翔生物科技有限公司
- CAS号:
25322-68-3
- 规格:
1KG
属性
Agency
tested according to Ph. Eur.
质量水平
200
表单
solid
分子量
3500-4500
环保替代产品特性
Safer Solvents and Auxiliaries
Learn more about the Principles of Green Chemistry.
sustainability
Greener Alternative Product
应用
pharmaceutical (small molecule)
环保替代产品分类
Aligned
SMILES字符串
C(CO)O
InChI
1S/C2H6O2/c3-1-2-4/h3-4H,1-2H2
InChI key
LYCAIKOWRPUZTN-UHFFFAOYSA-N
一般描述
应用
- 用于修饰蛋白质形成循环寿命增加、免疫原性和抗原性降低的缀合物。
- 用于蛋白质扩散控制运输的水凝胶的制备。
- 聚(乙二醇)二甲基丙烯酸酯(PEGDM)的制备。
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文献和实验Ultrasound monitoring of cartilaginous matrix evolution in degradable PEG hydrogels.
Ultrasound has potential as a non-destructive analytical technique to provide real-time online assessments of matrix evolution in cell-hydrogel constructs used in tissue engineering. In these studies, chondrocytes were encapsulated in poly(ethylene glycol) hydrogels, and gel degradation was manipulated to provide conditions with varying distribution of the large cartilage extracellular matrix molecule, collagen. Mechanical properties and matrix accumulations were simultaneously measured for each condition during 9.5 weeks of in vitro culture. Ultrasound data were used to construct cross-sectional B-scan images for qualitative observations of evolving constructs. Ultrasound data were also analyzed to calculate the speed of sound (SoS) and slope of attenuation (SoA) in developing constructs and a non-degrading hydrogel control without encapsulated chondrocytes. SoS and SoA were calculated from 50 and 100MHz ultrasound data, and sample correlation coefficients were calculated to identify important relationships between these ultrasound parameters and mechanical/biochemical properties of the evolving matrix. SoA appears to be more sensitive to the density of accumulated matrix molecules than SoS, while SoS appeared to be more sensitive to mechanical modulus than SoA in measurements performed at 100MHz. Correlation analysis revealed that ultrasound measurements at 100MHz are more likely to be good predictors of matrix evolution and neotissue function than measurements at 50MHz. Rigorous studies of the relationships identified in this study will lead to non-destructive real-time monitoring that will be useful in combination with bioreactors used to promote and study cartilage regeneration.
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