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- 保存条件:
常温
- 保质期:
根据瓶身LOT号查询
- 英文名:
Sodium chloride
- 库存:
有现货
- 供应商:
浙江羽翔生物科技有限公司
- CAS号:
7647-14-5
- 规格:
500G
属性
等级
Molecular Biology
质量水平
200
方案
≥99% (titration)
表单
crystalline
杂质
DNAse, none detected
Endonuclease, none detected
NICKase, none detected
RNAse, none detected
protease, none detected
浊度
≤3.5 NTU
pH值(酸碱度)
7
mp
801 °C (lit.)
溶解性
H2O: 1 g/10 mL, clear, colorless
密度
2.16 g/cm3 at 25 °C (77 °F)
痕量阴离子
phosphate (PO43-): ≤5 ppm
痕量阳离子
K: ≤50 ppm
≤5 ppm (Heavy Metals by ICP-OES)
适用性
suitable for Western blot
suitable for mass spectrometry
suitable for molecular biology
应用
cell analysis
异质活性
DNase, RNase, and protease, none detected
SMILES字符串
[Na+].[Cl-]
InChI
1S/ClH.Na/h1H;/q;+1/p-1
InChI key
FAPWRFPIFSIZLT-UHFFFAOYSA-M
应用
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文献和实验Substrate viscosity plays an important role in bacterial adhesion under fluid flow.
Many materials used in the medical settings such as catheters and contact lenses as well as most biological tissues are not purely elastic, but rather viscoelastic. While substrate elasticity has been investigated for its influence on bacterial adhesion, the impact of substrate viscosity has not been explored. Here, the importance of considering substrate viscosity is explored by using polydimethylsiloxane (PDMS) as the substrate material, whose mechanical properties can be tuned from predominantly elastic to viscous by varying cross-linking degree. Interfacial rheology and atomic force microscopy analysis prove that PDMS with a low cross-linking degree exhibits both low stiffness and high viscosity. This degree of viscoelasticity confers to PDMS a remarkable stress relaxation, a good capability to deform and an increased adhesive force. Bacterial adhesion assays were conducted under flow conditions to study the impact of substrate viscosity on Escherichia coli adhesion. The viscous PDMS not only enhanced E. coli adhesion but also conferred greater resistance to desorption against shear stress at air/liquid interface, compared to the PDMS with high crosslinking degree. These findings highlight the importance to consider substrate viscosity while studying bacterial adhesion. The current work provides new insights to an improved understanding of how bacteria interact with complex viscoelastic environments.
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