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上海拜力生物科技有限公司
Shanghai Bioleaf Biotech Co.,Ltd
電話 021-33779008
銷售**:4009687988
郵箱 info@bioleaf.com
網(wǎng)址 http://www.bioleaf.com/
地址 上海市閔行區(qū)新源路1356弄1-7號C801
郵編 201108
微信公眾號:拜力生物
| 訂購貨號 | 產(chǎn)品名稱及規(guī)格 | 價格(¥) |
| 15320 | Sulfo-Cyanine7 NHS ester, 1 mg | 2080.00 |
| 25320 | Sulfo-Cyanine7 NHS ester, 5 mg | 5330.00 |
| 45320 | Sulfo-Cyanine7 NHS ester, 25 mg | 11050.00 |
| 55320 | Sulfo-Cyanine7 NHS ester, 50 mg | 19500.00 |
| 65320 | Sulfo-Cyanine7 NHS ester, 100 mg | 31850.00 |
水溶近紅外染料sulfo-Cyanine7,是胺類活性琥珀酸亞胺酯。
Sulfo-Cyanine7是Cy7®熒光團的的改良衍生物,量子產(chǎn)率提高20%,并具有更好的耐光性。該染料尤其適用于NIR成像應用。
近紅外熒光染料利用了生物組織在特定的波長范圍里的透明度。這種方法是無損傷性的,并允許在活體內對多種已標記的生物分子的分布進行跟蹤。
Sulfo-Cyanine7 NHS ester可以很輕松的標記生物分子,如:蛋白質。標記的分子可以用于后續(xù)多種研究及藥物開發(fā)相關的實驗。
這種染料有很高的水溶解度,尤其適用于痕量蛋白質和易變性蛋白質的標記。需有機溶劑才能溶解的非磺化的Cyanine7 NHS ester。
推薦手冊:
氨基分子的NHS酯標記
Cy® is a trademark of GE Healthcare.
General properties
|
Appearance: |
dark green powder |
|
Molecular weight: |
827.94 |
|
Molecular formula: |
C41H46N3NaO10S2 |
|
Solubility: |
good in water, DMF, DMSO |
|
Quality control: |
NMR 1H (95%) and 13C, TLC, functional testing |
|
Storage conditions: |
Storage: 24 months after receival at -20°C in the dark. Transportation: at room temperature for up to 3 weeks. Avoid prolonged exposure to light. Desiccate. |
|
MSDS: |
Download |
Spectral properties
|
Excitation maximum, nm: |
740 |
|
Extinction coefficient at excitation maximum, Lmol-1cm-1: |
240600 |
|
Emission maximum, nm: |
773 |
|
CF260: |
0.04 |
|
CF280: |
0.04 |
Product citations
- Ayala-Orozco, C.; Liu, J.G.; Knight, M.W.; Wang, Y.; Day, J.K.; Nordlander, P.; Halas, N.J. Fluorescence Enhancement of Molecules Inside a Gold Nanomatryoshka. Nano Letters, 2014, 14(5), 2926-2933. doi: 10.1021/nl501027j
- Brand, C.; Abdel-Atti, D.; Zhang, Y.; Carlin, S.; Clardy, S.M.; Keliher, E.J.; Weber, W.A.; Lewis, J.S.; Reiner, T. In Vivo Imaging of GLP-1R with a Targeted Bimodal PET/Fluorescence Imaging Agent.Bioconjugate Chemistry, 2014, 25(7), 1323-1330. doi: 10.1021/bc500178d
- Graen, T.M.D.; Hoefling, M.; Grubmüller, H. AMBER-DYES: Characterization of Charge Fluctuations and Force Field Parameterization of Fluorescent Dyes for Molecular Dynamics Simulations. Journal of Chemical Theory and Computation, 2014, 10(12), 5505-5512. doi: 10.1021/ct500869p
- Li, L.-L.; Xu, J.-H.; Qi, G.-B.; Zhao, X.; Yu, F.; Wang, H. Core-Shell Supramolecular Gelatin Nanoparticles for Adaptive and "On-Demand" Antibiotic Delivery. ACS Nano, 2014, 8(5), 4975-4983. doi:10.1021/nn501040h
- Viehweger, K.; Barbaro, L.; García, K.P.; Joshi, T.; Geipel, G.; Steinbach, J.; Stephan, H.; Spiccia, L.; Graham, B. EGF Receptor-Targeting Peptide Conjugate Incorporating a Near-IR Fluorescent Dye and a Novel 1,4,7-Triazacyclononane-Based 64Cu(II) Chelator Assembled via Click Chemistry.Bioconjugate Chemistry, 2014, 25(5), 1011-1022. doi: 10.1021/bc5001388
- Zhou, Z.; Wu, X.; Kresak, A.; Griswold, M.; Lu, Z.-R. Peptide targeted tripod macrocyclic Gd(III) chelates for cancer molecular MRI. Biomaterials, 2013, 34(31), 7683-7693. doi:10.1016/j.biomaterials.2013.06.057
- Zou, C.; Loka, R.S.; Zhang, Y.; Cairo, C.W. Glycoform Remodeling Generates a Synthetic T Cell Phenotype. Bioconjugate Chemistry, 2013, 24(6), 907-914. doi: 10.1021/bc300599w
- Nakamura, T.; Sugihara, F.; Matsushita, H.; Yoshioka, Y.; Mizukami, S.; Kikuchi, K. Mesoporous silica nanoparticles for 19F magnetic resonance imaging, fluorescence imaging, and drug delivery.Chemical Science, 2015. doi: 10.1039/c4sc03549f
- Aldeek, F.; Hawkins, D.; Palomo, V.; Safi, M.; Palui, G.; Dawson, P.E.; Alabugin, I.V.; Mattoussi, H. UV and Sunlight Driven Photoligation of Quantum Dots: Understanding the Photochemical Transformation of the Ligands. Journal of the American Chemical Society, 2015. doi:10.1021/ja512802x
- Hsueh, P.-Y.; Edman, M.C.; Sun, G.; Shi, P.; Xu, S.; Lin, Y.-a.; Cui, H.; Hamm-Alvarez, S.F.; MacKay, J.A.Tear-mediated delivery of nanoparticles through transcytosis of the lacrimal gland. Journal of Controlled Release, 2015. doi: 10.1016/j.jconrel.2014.12.017
- Wen, A.M.; Infusino, M.; De Luca, A.; Kernan, D.L.; Czapar, A.E.; Strangi, G.; Steinmetz, N.F. Interface of Physics and Biology: Engineering Virus-Based Nanoparticles for Biophotonics. Bioconjugate Chemistry, 2015, 26(1), 51–62. doi: 10.1021/bc500524f
