ReadiCleave ROXtra AML-NHS酯 货号7002-AAT Bioquest荧光染料

上海金畔生物科技有限公司代理AAT Bioquest荧光染料全线产品,欢迎访问AAT Bioquest荧光染料官网了解更多信息。

ReadiCleave ROXtra AML-NHS酯

ReadiCleave ROXtra AML-NHS酯

ReadiCleave ROXtra AML-NHS酯    货号7002 货号 7002 存储条件 在零下15度以下保存, 避免光照
规格 1 mg 价格 4836
Ex (nm) Em (nm)
分子量 1379.58 溶剂 DMSO
产品详细介绍

简要概述

产品基本信息

货号:7002

产品名称:ReadiCleave ROXtra AML-NHS酯

规格:1 mg

储存条件:-15℃避光防潮

保质期:12个月

 

产品物理化学光谱特性

分子量:1379.58

外观:固体

溶剂:DMSO

 

产品介绍

荧光法生物检测在灵敏度和便利性的方面具有很大的优势。许多生物分子可以很容易地用荧光标签标记,用于荧光成像和流式细胞仪分析。 然而,大多数现有的荧光标签用于永久性标记生物靶标,从中不能切割添加的荧光标签以进行进一步的下游分析,例如质谱分析。 AAT Bioquest的ReadiCleave 探针使荧光标签与生物靶标结合,可以在需要时从中去除附加的荧光标签。 此ReadiCleave ROXtra 包含一个叠氮基甲基化合物,可以用TCEP裂解该化合物,以从靶分子中除去ROXtra荧光团。 可以通过添加10 mM TCEP溶液(pH 7.5)并在65°C孵育1-5分钟来进行裂解。ROXtra是新研发的荧光团,具有与标准ROX染料相同的光谱,并显著提高了稳定性和水溶性。

 

参考文献

A public website for the automated assessment and validation of SARS-CoV-2 diagnostic PCR assays.
Authors: Li, Po-E and Myers Y Gutiérrez, Adán and Davenport, Karen and Flynn, Mark and Hu, Bin and Lo, Chien-Chi and Player Jackson, Elais and Shakya, Migun and Xu, Yan and Gans, Jason D and Chain, Patrick S G
Journal: Bioinformatics (Oxford, England) (2021): 1024-1025

A real-time multiplex PCR assay for detection of the causative agents of rat bite fever, Streptobacillus moniliformis and zoonoticStreptobacillus species.
Authors: Kelly, Aubree J and Ivey, Melissa L and Gulvik, Christopher A and Humrighouse, Ben W and McQuiston, John R
Journal: Diagnostic microbiology and infectious disease (2021): 115335

A simple quantitative PCR assay to determine TRAMP transgene zygosity.
Authors: Chen, Ruidong and Liang, Xin and Murray, Mollianne M and Karasik, Ellen and Han, Jenny J and Zhu, Ming and Foster, Barbara A and Frigo, Daniel E and Wang, Guocan
Journal: Prostate cancer and prostatic diseases (2021): 358-361

Accuracy and Performance Evaluation of Triplet Repeat Primed PCR as an Alternative to Conventional Diagnostic Methods for Fragile X Syndrome.
Authors: Gu, Hyunjung and Kim, Man Jin and Yang, Dahae and Song, Ji Yun and Cho, Sung Im and Park, Sung Sup and Seong, Moon-Woo
Journal: Annals of laboratory medicine (2021): 394-400

An effective analytical droplet digital PCR approach for identification and quantification of fur-bearing animal meat in raw and processed food.
Authors: Yu, Ning and Ren, Junan and Huang, Wensheng and Xing, Ranran and Deng, Tingting and Chen, Ying
Journal: Food chemistry (2021): 129525

Application of laser capture microdissection and PCR sequencing in the diagnosis of Coccidioides spp. infection: A case report and literature review in China.
Authors: Yang, Xinyu and Song, Yinggai and Liang, TianYu and Wang, Qiqi and Li, Ruoyu and Liu, Wei
Journal: Emerging microbes & infections (2021): 331-341

Application of newly developed SARS-CoV2 serology test along with real-time PCR for early detection in health care workers and on-time plasma donation.
Authors: Soltani-Zangbar, Mohammad Sadegh and Aghebati-Maleki, Leili and Hajivalili, Mahsa and Haji-Fatahaliha, Mostafa and Motavalli, Roza and Mahmoodpoor, Ata and Kafil, Hossein Samadi and Farhang, Sara and Pourakbari, Ramin and Jadidi-Niaragh, Farhad and Roshangar, Leila and Heris, Javad Ahmadian and Kamrani, Amin and Siahmansouri, Homayoon and Hosseini, Maryam and Miahipour, Abolfazl and Shareghi-Oskoue, Oldouz and Parhizkar, Forough and Yousefi, Mehdi
Journal: Gene reports (2021): 101140

Characterization of the adiponectin promoter + Cre recombinase insertion in the Tg(Adipoq-cre)1Evdr mouse by targeted locus amplification and droplet digital PCR.
Authors: Wong, Adrian M and Patel, Tushar P and Altman, Elizabeth K and Tugarinov, Nicol and Trivellin, Giampaolo and Yanovski, Jack A
Journal: Adipocyte (2021): 21-27

Comparative evaluation of a dual-target real-time RT-PCR assay for COVID-19 diagnosis and assessment of performance in pooled saliva and nasopharyngeal swab samples.
Authors: Yip, Cyril C Y and Leung, Kit-Hang and Ng, Anthony C K and Chan, Kwok-Hung and To, Kelvin K W and Chan, Jasper F W and Hung, Ivan F N and Cheng, Vincent C C and Sridhar, Siddharth
Journal: Expert review of molecular diagnostics (2021)

Comparison of the AdvanSure RV Plus Real-Time RT-PCR and Real-Q RV II Detection Assays for Respiratory Viruses.
Authors: Chung, Yoo Na and Yoo, In Young and Yun, Sun Ae and Kim, Ji-Youn and Lee, Nam Yong and Huh, Hee Jae
Journal: Annals of laboratory medicine (2021): 506-509

说明书
ReadiCleave ROXtra AML-NHS酯.pdf

ReadiCleave ROXtra AML-NHS酯 货号7002-AAT Bioquest荧光染料

上海金畔生物科技有限公司代理AAT Bioquest荧光染料全线产品,欢迎访问AAT Bioquest荧光染料官网了解更多信息。

ReadiCleave ROXtra AML-NHS酯

ReadiCleave ROXtra AML-NHS酯

ReadiCleave ROXtra AML-NHS酯    货号7002 货号 7002 存储条件 在零下15度以下保存, 避免光照
规格 1 mg 价格 4836
Ex (nm) Em (nm)
分子量 1379.58 溶剂 DMSO
产品详细介绍

简要概述

产品基本信息

货号:7002

产品名称:ReadiCleave ROXtra AML-NHS酯

规格:1 mg

储存条件:-15℃避光防潮

保质期:12个月

 

产品物理化学光谱特性

分子量:1379.58

外观:固体

溶剂:DMSO

 

产品介绍

荧光法生物检测在灵敏度和便利性的方面具有很大的优势。许多生物分子可以很容易地用荧光标签标记,用于荧光成像和流式细胞仪分析。 然而,大多数现有的荧光标签用于永久性标记生物靶标,从中不能切割添加的荧光标签以进行进一步的下游分析,例如质谱分析。 AAT Bioquest的ReadiCleave 探针使荧光标签与生物靶标结合,可以在需要时从中去除附加的荧光标签。 此ReadiCleave ROXtra 包含一个叠氮基甲基化合物,可以用TCEP裂解该化合物,以从靶分子中除去ROXtra荧光团。 可以通过添加10 mM TCEP溶液(pH 7.5)并在65°C孵育1-5分钟来进行裂解。ROXtra是新研发的荧光团,具有与标准ROX染料相同的光谱,并显著提高了稳定性和水溶性。

 

参考文献

A public website for the automated assessment and validation of SARS-CoV-2 diagnostic PCR assays.
Authors: Li, Po-E and Myers Y Gutiérrez, Adán and Davenport, Karen and Flynn, Mark and Hu, Bin and Lo, Chien-Chi and Player Jackson, Elais and Shakya, Migun and Xu, Yan and Gans, Jason D and Chain, Patrick S G
Journal: Bioinformatics (Oxford, England) (2021): 1024-1025

A real-time multiplex PCR assay for detection of the causative agents of rat bite fever, Streptobacillus moniliformis and zoonoticStreptobacillus species.
Authors: Kelly, Aubree J and Ivey, Melissa L and Gulvik, Christopher A and Humrighouse, Ben W and McQuiston, John R
Journal: Diagnostic microbiology and infectious disease (2021): 115335

A simple quantitative PCR assay to determine TRAMP transgene zygosity.
Authors: Chen, Ruidong and Liang, Xin and Murray, Mollianne M and Karasik, Ellen and Han, Jenny J and Zhu, Ming and Foster, Barbara A and Frigo, Daniel E and Wang, Guocan
Journal: Prostate cancer and prostatic diseases (2021): 358-361

Accuracy and Performance Evaluation of Triplet Repeat Primed PCR as an Alternative to Conventional Diagnostic Methods for Fragile X Syndrome.
Authors: Gu, Hyunjung and Kim, Man Jin and Yang, Dahae and Song, Ji Yun and Cho, Sung Im and Park, Sung Sup and Seong, Moon-Woo
Journal: Annals of laboratory medicine (2021): 394-400

An effective analytical droplet digital PCR approach for identification and quantification of fur-bearing animal meat in raw and processed food.
Authors: Yu, Ning and Ren, Junan and Huang, Wensheng and Xing, Ranran and Deng, Tingting and Chen, Ying
Journal: Food chemistry (2021): 129525

Application of laser capture microdissection and PCR sequencing in the diagnosis of Coccidioides spp. infection: A case report and literature review in China.
Authors: Yang, Xinyu and Song, Yinggai and Liang, TianYu and Wang, Qiqi and Li, Ruoyu and Liu, Wei
Journal: Emerging microbes & infections (2021): 331-341

Application of newly developed SARS-CoV2 serology test along with real-time PCR for early detection in health care workers and on-time plasma donation.
Authors: Soltani-Zangbar, Mohammad Sadegh and Aghebati-Maleki, Leili and Hajivalili, Mahsa and Haji-Fatahaliha, Mostafa and Motavalli, Roza and Mahmoodpoor, Ata and Kafil, Hossein Samadi and Farhang, Sara and Pourakbari, Ramin and Jadidi-Niaragh, Farhad and Roshangar, Leila and Heris, Javad Ahmadian and Kamrani, Amin and Siahmansouri, Homayoon and Hosseini, Maryam and Miahipour, Abolfazl and Shareghi-Oskoue, Oldouz and Parhizkar, Forough and Yousefi, Mehdi
Journal: Gene reports (2021): 101140

Characterization of the adiponectin promoter + Cre recombinase insertion in the Tg(Adipoq-cre)1Evdr mouse by targeted locus amplification and droplet digital PCR.
Authors: Wong, Adrian M and Patel, Tushar P and Altman, Elizabeth K and Tugarinov, Nicol and Trivellin, Giampaolo and Yanovski, Jack A
Journal: Adipocyte (2021): 21-27

Comparative evaluation of a dual-target real-time RT-PCR assay for COVID-19 diagnosis and assessment of performance in pooled saliva and nasopharyngeal swab samples.
Authors: Yip, Cyril C Y and Leung, Kit-Hang and Ng, Anthony C K and Chan, Kwok-Hung and To, Kelvin K W and Chan, Jasper F W and Hung, Ivan F N and Cheng, Vincent C C and Sridhar, Siddharth
Journal: Expert review of molecular diagnostics (2021)

Comparison of the AdvanSure RV Plus Real-Time RT-PCR and Real-Q RV II Detection Assays for Respiratory Viruses.
Authors: Chung, Yoo Na and Yoo, In Young and Yun, Sun Ae and Kim, Ji-Youn and Lee, Nam Yong and Huh, Hee Jae
Journal: Annals of laboratory medicine (2021): 506-509

说明书
ReadiCleave ROXtra AML-NHS酯.pdf

ReadiCleave iFluor 546 AML-NHS 酯 货号7006-AAT Bioquest荧光染料

上海金畔生物科技有限公司代理AAT Bioquest荧光染料全线产品,欢迎访问AAT Bioquest荧光染料官网了解更多信息。

ReadiCleave iFluor 546 AML-NHS 酯

ReadiCleave iFluor 546 AML-NHS 酯

ReadiCleave  iFluor 546 AML-NHS 酯    货号7006 货号 7006 存储条件 在零下15度以下保存, 避免光照
规格 1 mg 价格 4836
Ex (nm) 541 Em (nm) 557
分子量 1494.76 溶剂 DMSO
产品详细介绍

简要概述

许多生物分子可以很容易地用荧光标签进行标记,用于荧光成像和流式细胞术分析。然而,大多数现有的荧光标签用于永久标记生物靶标,添加的荧光标签无法从这些靶标上切割下来用于进一步的下游分析,例如质谱分析或其他检测。 AAT Bioquest 的 ReadiCleave 探针能够将荧光标签与生物靶标结合,需要时可以从生物靶标上去除添加的荧光标签。 ReadiCleave iFluor 546 AML 包含一个叠氮甲基探针,可以用 TCEP 切割以从目标分子中去除 iFluor 546 荧光团。可以通过添加 10-100 mM TCEP 溶液 (pH 7.5) 并在 65°C 下孵育 1-5 分钟来进行裂解。 iFluor 546 是 Alexa Fluor® 546 的卓越替代品。 iFluor 546 和 Alexa Fluor® 546 具有非常相似的光谱特性。

点击查看光谱

产品说明书

样品分析方案

储备溶液配制

1. 蛋白质原液(溶液 A)
将 100 µL 反应缓冲液(例如,1 M 碳酸钠溶液或 1 M 磷酸盐缓冲液,pH ~ 9.0)与 900 µL 目标蛋白溶液(例如抗体,如果可能,蛋白质浓度 >2 mg/mL)混合,得到 1 mL 蛋白质标记原液。
注意蛋白质溶液(溶液 A)的 pH 值应为 8.5 ± 0.5。如果蛋白质溶液的 pH 值低于 8.0,则使用 1 M 碳酸氢钠溶液或 1 M pH 9.0 磷酸盐缓冲液将 pH 值调整到 8.0-9.0 的范围内。
注意 蛋白质应溶于 1X 磷酸盐缓冲盐水 (PBS),pH 7.2-7.4。如果蛋白质溶解在 Tris 或甘氨酸缓冲液中,则必须用 1X PBS,pH 7.2-7.4 进行透析,以去除用于蛋白质沉淀的游离胺或铵盐(如硫酸铵和醋酸铵)。
注意 如果蛋白质浓度低于 2 mg/mL,缀合效率会明显降低。为获得最佳标记效率,建议最终蛋白质浓度范围为 2-10 mg/mL。

 

2. ReadiCleave iFluor 546 AML-NHS 酯储备溶液(溶液 B)
将无水 DMSO 添加到 ReadiCleave iFluor 546 AML-NHS 酯小瓶中,制成 10 mM 储备溶液。 通过移液或涡旋混合均匀。
注意 在开始偶联之前准备染料储备溶液(溶液 B),并及时使用。 染料原液的长期储存可能会降低染料活性。 溶液 B 在避光和防潮的情况下可以在冰箱中储存两周。 避免冻融循环。

 

操作步骤

该标记方案是为山羊抗小鼠 IgG 与 ReadiCleave iFluor 546 AML-NHS 酯的偶联而开发的。您可能需要进一步优化您的特定蛋白质。 注意 每种蛋白质需要不同的染料/蛋白质比例,这也取决于染料的特性。蛋白质的过度标记会对其结合亲和力产生不利影响,而低染料/蛋白质比率的蛋白质缀合物会降低灵敏度。

 

1.进行缀合反应
使用 10:1 的溶液 B(染料)/溶液 A(蛋白质)的摩尔比作为起点:将 5 μL 的染料储备溶液(溶液 B,假设染料库存溶液为 10 mM)在有效摇动下倒入蛋白质溶液(95 µL 溶液 A)小瓶中。 假设蛋白质浓度为 10 mg/mL 且蛋白质的分子量为 ~200KD,则蛋白质的浓度为 ~0.05 mM。
注意 我们建议使用 10:1 摩尔比的溶液 B(染料)/溶液 A(蛋白质)。 如果太低或太高,分别确定最佳染料/蛋白质比例为 5:1、15:1 和 20:1。

2.在室温下继续旋转或摇动反应混合物 30-60 分钟。

纯化结合
以下方案是使用 Sephadex G-25 柱进行染料-蛋白质缀合物纯化的示例。
1.根据说明准备 Sephadex G-25 柱。
2.将反应混合物(来自“进行缀合反应”)加载到 Sephadex G-25 列的顶部。
3.样品刚好在顶部树脂表面下方运行时,立即添加 PBS (pH 7.2-7.4)。
4.向所需样品中添加更多 PBS (pH 7.2-7.4) 以完成柱纯化。 结合含有所需染料-蛋白质缀合物的组分。
注意 要立即使用,染料-蛋白质缀合物需要用染色缓冲液稀释,并分装多次使用。
注意 对于长期储存,染料-蛋白质缀合物溶液需要浓缩或冷冻干燥。

 

数据分析

1.表征所需的染料-蛋白质缀合物
取代度 (DOS) 是表征染料标记蛋白质的最重要因素。 较低 DOS 的蛋白质通常具有较弱的荧光强度,但较高 DOS 的蛋白质(例如 DOS > 6)也往往具有较低的荧光强度。 大多数抗体的最佳 DOS 建议在 2 到 10 之间,具体取决于染料和蛋白质的特性。为了有效标记,应控制取代度,使 6-8 摩尔 ReadiCleave iFluor 546 AML-NHS 酯与 1 摩尔抗体相配。 以下步骤用于确定 ReadiCleave iFluor 546 AML-NHS 酯标记蛋白质的 DOS。

2.吸收检测
要检测染料-蛋白质缀合物的吸收光谱,建议将样品浓度保持在 1-10 µM 的范围内,具体取决于染料的消光系数。

读取 280 nm 处的 OD(吸光度)和染料最大吸光度(对于 ReadiCleave iFluor 546 AML-NHS 酯染料,ƛmax = 541 nm)
对于大多数分光光度计,样品(来自色谱柱馏分)需要用去离子水稀释,以便 OD 值在 0.1 到 0.9 的范围内。 OD(吸光度)在 280 nm 是蛋白质的最大吸收,而 541 nm 是 ReadiCleave iFluor 546 AML-NHS 酯的最大吸收。 要获得准确的 DOS,请确保缀合物中不含非结合染料。

3.计算DOS

您可以通过点击链接使用我们的工具计算DOS计算

 

参考文献

Effects of Viscosity and Refractive Index on the Emission and Diffusion Properties of Alexa Fluor 405 Using Fluorescence Correlation and Lifetime Spectroscopies.
Authors: van Zanten, Camila and Melnikau, Dzmitry and Ryder, Alan G
Journal: Journal of fluorescence (2021): 835-845

Evaluation of Blood-Brain Barrier Integrity Using Vascular Permeability Markers: Evans Blue, Sodium Fluorescein, Albumin-Alexa Fluor Conjugates, and Horseradish Peroxidase.
Authors: Ahishali, Bulent and Kaya, Mehmet
Journal: Methods in molecular biology (Clifton, N.J.) (2021): 87-103

Molecular and Spectroscopic Characterization of Green and Red Cyanine Fluorophores from the Alexa Fluor and AF Series*.
Authors: Gebhardt, Christian and Lehmann, Martin and Reif, Maria M and Zacharias, Martin and Gemmecker, Gerd and Cordes, Thorben
Journal: Chemphyschem : a European journal of chemical physics and physical chemistry (2021)

Hot-Band Anti-Stokes Fluorescence Properties of Alexa Fluor 568.
Authors: Gajdos, Tamás and Hopp, Béla and Erdélyi, Miklós
Journal: Journal of fluorescence (2020): 437-443

A combined solvatochromic shift and TDDFT study probing solute-solvent interactions of blue fluorescent Alexa Fluor 350 dye: Evaluation of ground and excited state dipole moments.
Authors: Patil, Mallikarjun K and Kotresh, M G and Inamdar, Sanjeev R
Journal: Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy (2019): 142-152

Observing the Reversible Single Molecule Electrochemistry of Alexa Fluor 647 Dyes by Total Internal Reflection Fluorescence Microscopy.
Authors: Fan, Sanjun and Webb, James E A and Yang, Ying and Nieves, Daniel J and Gonçales, Vinicius R and Tran, Jason and Hilzenrat, Geva and Kahram, Mohaddeseh and Tilley, Richard D and Gaus, Katharina and Gooding, J Justin
Journal: Angewandte Chemie (International ed. in English) (2019): 14495-14498

Photo-isomerization of the Cyanine Dye Alexa-Fluor 647 (AF-647) in the Context of dSTORM Super-Resolution Microscopy.
Authors: Karlsson, Joshua K G and Laude, Alex and Hall, Michael J and Harriman, Anthony
Journal: Chemistry (Weinheim an der Bergstrasse, Germany) (2019): 14983-14998

Photobleaching Comparison of R-Phycoerythrin-Streptavidin and Streptavidin-Alexa Fluor 568 in a Breast Cancer Cell Line.
Authors: Ostad, Seyed Nasser and Babaei, Sepideh and Bayat, Ali Ahmad and Mahmoudian, Jafar
Journal: Monoclonal antibodies in immunodiagnosis and immunotherapy (2019): 25-29

Temporal Distribution Patterns of Alexa Fluor 647-Conjugated CeNPs in the Mouse Retina After a Single Intravitreal Injection.
Authors: Wong, Lily L and Barkam, Swetha and Seal, Sudipta and McGinnis, James F
Journal: Advances in experimental medicine and biology (2019): 125-130

Comparison between photostability of Alexa Fluor 448 and Alexa Fluor 647 with conventional dyes FITC and APC by flow cytometry.
Authors: Rai, S and Bhardwaj, U and Misra, A and Singh, S and Gupta, R
Journal: International journal of laboratory hematology (2018): e52-e54

说明书
ReadiCleave iFluor 546 AML-NHS 酯.pdf

ReadiCleave FITC AML-NHS酯 货号7004-AAT Bioquest荧光染料

上海金畔生物科技有限公司代理AAT Bioquest荧光染料全线产品,欢迎访问AAT Bioquest荧光染料官网了解更多信息。

ReadiCleave FITC AML-NHS酯

ReadiCleave FITC AML-NHS酯

ReadiCleave FITC AML-NHS酯    货号7004 货号 7004 存储条件 在零下15度以下保存, 避免光照
规格 1 mg 价格 4836
Ex (nm) Em (nm)
分子量 966.98 溶剂 DMSO
产品详细介绍

简要概述

产品基本信息

货号:7004

产品名称:ReadiCleave FITC AML-NHS酯

规格:1mg

储存条件:-15℃避光防潮

保质期:12个月

 

产品物理化学光谱特性

分子量:955.01

外观:固体

溶剂:DMSO

 

产品介绍

荧光法生物检测在灵敏度和便利性的方面具有很大的优势。许多生物分子可以很容易地用荧光标签标记,用于荧光成像和流式细胞仪分析。 然而,大多数现有的荧光标签用于永久性标记生物靶标,从中不能切割添加的荧光标签以进行进一步的下游分析,例如质谱分析。 AAT Bioquest的ReadiCleave 探针使荧光标签与生物靶标结合,可以在需要时从中去除附加的荧光标签。 此ReadiCleave AML FITC包含一个叠氮基甲基化合物,可以用TCEP裂解该化合物,以从靶分子中除去FITC荧光团。 可以通过添加10 mM TCEP溶液(pH 7.5)并在65°C孵育1-5分钟来进行裂解。

点击查看光谱 

 

参考文献

Biomedical and Pharmacological Uses of Fluorescein Isothiocyanate Chitosan-Based Nanocarriers.
Authors: Caprifico, Anna E and Polycarpou, Elena and Foot, Peter J S and Calabrese, Gianpiero
Journal: Macromolecular bioscience (2021): e2000312

Research Note: Modified serum fluorescein isothiocyanate dextran (FITC-d) assay procedure to determine intestinal permeability in poultry fed diets high in natural or synthetic pigments.
Authors: Vuong, Christine N and Mullenix, Garrett J and Kidd, Michael T and Bottje, Walter G and Hargis, Billy M and Tellez-Isaias, Guillermo
Journal: Poultry science (2021): 101138

Development of fluorescein isothiocyanate conjugated gellan gum for application of bioimaging for biomedical application.
Authors: Cho, Hun Hwi and Choi, Joo Hee and Been, Su Young and Kim, Namyeong and Choi, Jeong Min and Kim, Wooyoup and Kim, David and Jung, Jun Jae and Song, Jeong Eun and Khang, Gilson
Journal: International journal of biological macromolecules (2020): 2804-2812

Evaluation of Blood-Brain Barrier Integrity Using Vascular Permeability Markers: Evans Blue, Sodium Fluorescein, Albumin-Alexa Fluor Conjugates, and Horseradish Peroxidase.
Authors: Ahishali, Bulent and Kaya, Mehmet
Journal: Methods in molecular biology (Clifton, N.J.) (2020)

Fluorescein isothiocyanate and blue light irradiation alter cell-adhesiveness of cross-linked albumin films for cell patterning.
Authors: Tachibana, Akira and Iida, Atsuko and Tanabe, Toshizumi
Journal: Bioscience, biotechnology, and biochemistry (2020): 800-803

Influence of Liver Intoxication by Carbon Tetrachloride or D-Galactosamine on Absorption of Fluorescein Isothiocyanate-Dextran-10 and Other Marker Compounds with Different Molecular Weights from the Rat Liver Surface.
Authors: Miyamoto, Hirotaka and Tsuda, Kayoko and Honda, Tominori and Tokunaga, Ayako and Fumoto, Shintaro and Nishida, Koyo
Journal: Biological & pharmaceutical bulletin (2020): 319-324

Technical note: fluorescein as an indicator of enteric mucosal barrier function in preruminant lambs.
Authors: Duff, Audrey F and Bielke, Lisa R and Relling, Alejandro E
Journal: Journal of animal science (2020)

Competitive and noncompetitive immunoassays for the detection of benzothiostrobin using magnetic nanoparticles and fluorescein isothiocyanate-labeled peptides.
Authors: Chen, He and Yang, Qian and Ding, Yuan and Vasylieva, Natalia and Bever, Candace S and Hua, Xiude and Wang, Minghua and Hammock, Bruce D
Journal: Analytical and bioanalytical chemistry (2019): 527-535

Electromembrane Extraction of Unconjugated Fluorescein Isothiocyanate from Solutions of Labeled Proteins Prior to Flow Induced Dispersion Analysis.
Authors: Restan, Magnus Saed and Pedersen, Morten E and Jensen, Henrik and Pedersen-Bjergaard, Stig
Journal: Analytical chemistry (2019): 6702-6708

Fluorescein- and EGFR-Antibody Conjugated Silica Nanoparticles for Enhancement of Real-time Tumor Border Definition Using Confocal Laser Endomicroscopy in Squamous Cell Carcinoma of the Head and Neck.
Authors: Watermann, Anna and Gieringer, Rita and Bauer, Anna-Maria and Kurch, Sven and Kiesslich, Ralf and Tremel, Wolfgang and Gosepath, Jan and Brieger, Juergen
Journal: Nanomaterials (Basel, Switzerland) (2019)

说明书
ReadiCleave FITC AML-NHS酯.pdf

ReadiCleave Cy5 NHS酯 货号7000-AAT Bioquest荧光染料

上海金畔生物科技有限公司代理AAT Bioquest荧光染料全线产品,欢迎访问AAT Bioquest荧光染料官网了解更多信息。

ReadiCleave Cy5 NHS酯

ReadiCleave Cy5 NHS酯

ReadiCleave Cy5 NHS酯    货号7000 货号 7000 存储条件 在零下15度以下保存, 避免光照
规格 1 mg 价格 5244
Ex (nm) 651 Em (nm) 670
分子量 1204.42 溶剂 DMSO
产品详细介绍

简要概述

产品基本信息

货号:7000

产品名称:ReadiCleave Cy5 NHS酯

规格:1mg

储存条件:-15℃避光防潮

保质期:12个月

 

产品物理化学光谱特性

分子量:1204.42

外观:固体

激发波长(nm):646

发射波长(nm):662

 

产品介绍

ReadiCleave Cy5 NHS酯是美国AAT Bioquest生产的荧光探针,由于荧光检测的方法在灵敏度方面具有许多生物检测的优点,许多生物分子用荧光标签标记,用于荧光成像和流式细胞术分析。但是,大多数现有的荧光标签用于永久性标记生物靶标,从中不能切割添加的荧光标记用于进一步的下游分析。AAT Bioquest的ReadiCleave 接头可以使荧光标签与生物寡头靶标结合,从而可以在需要时去除添加的荧光标签。该ReadiCleave Cy5含有叠氮甲基接头,可用TCEP切割以从靶分子中除去Cy5荧光团。可以通过添加100mM TCEP溶液(pH9.0),并在65℃下孵育20-30分钟来进行切割。金畔生物是AAT Bioquest的中国代理商,为您提供最优质的ReadiCleave Cy5 NHS酯。 

点击查看光谱

点击查看实验方案

 

参考文献

A rapid test strip for diagnosing glycosylated hemoglobin (HbA1c) based on fluorescent affinity immunochromatography
Authors: Chaoman Ang, Doudou Lou, Linling Hu, Wei Chen, Yefei Zhu, Zhirui Guo, Ning Gu, Yu Zhang
Journal: Analytical Sciences (2018): 18P135

Cube-shaped theranostic paclitaxel prodrug nanocrystals with surface functionalization of SPC and MPEG-DSPE for imaging and chemotherapy
Authors: Fuqiang Guo, Jiajia Shang, Hai Zhao, Kangrong Lai, Yang Li, Zhongxiong Fan, Zhenqing Hou, Guanghao Su
Journal: Colloids and Surfaces B: Biointerfaces (2017)

Light/magnetic hyperthermia triggered drug released from multi-functional thermo-sensitive magnetoliposomes for precise cancer synergetic theranostics
Authors: Yuxin Guo, Yang Zhang, Jinyuan Ma, Qi Li, Yang Li, Xinyi Zhou, Dan Zhao, Hua Song, Qing Chen, Xuan Zhu
Journal: Journal of Controlled Release (2017)

Thermo-sensitive hydrogel PLGA-PEG-PLGA as a vaccine delivery system for intramuscular immunization
Authors: Xiaoyan Wang, Yu Zhang, Wei Xue, Hong Wang, Xiaozhong Qiu, Zonghua Liu
Journal: Journal of Biomaterials Applications (2017): 923–932

Affinity-Controlled Protein Encapsulation into Sub-30 nm Telodendrimer Nanocarriers by Multivalent and Synergistic Interactions
Authors: Xu Wang, Changying Shi, Li Zhang, Alexa Bodman, Dandan Guo, Lili Wang, Walter A Hall, Stephan Wilkens, Juntao Luo
Journal: Biomaterials (2016)

Carboxymethyl Dextran-Stabilized Polyethylenimine-Poly (epsilon-caprolactone) Nanoparticles-Mediated Modulation of MicroRNA-34a Expression via Small-Molecule Modulator for Hepatocellular Carcinoma Therapy
Authors: Xiongwei Deng, Zhaoxia Yin, Zhixiang Zhou, Yihui Wang, Fang Zhang, Qin Hu, Yishu Yang, Jianqing Lu, Yan Wu, Wang Sheng
Journal: ACS applied materials & interfaces (2016): 17068–17079

Click-electron microscopy for imaging metabolically tagged nonprotein biomolecules
Authors: John T Ngo, Stephen R Adams, Thomas J Deerinck, Daniela Boassa, Frances Rodriguez-Rivera, Sakina F Palida, Carolyn R Bertozzi, Mark H Ellisman, Roger Y Tsien
Journal: Nat Chem Biol (2016): 459–465

Design, synthesis and evaluation of VEGF-siRNA/CRS as a novel vector for gene delivery
Authors: Wen Zhao, Yifan Zhang, Xueyun Jiang, Chunying Cui
Journal: Drug Design, Development and Therapy (2016): 3851

Molecular Basis and Consequences of the Cytochrome c-tRNA Interaction
Authors: Cuiping Liu, Aaron J Stonestrom, Thomas Christian, Jeongsik Yong, Ryuichi Takase, Ya-Ming Hou, Xiaolu Yang
Journal: Journal of Biological Chemistry (2016): 10426–10436

Determination of the active transport of fucoidan derived from okinawa mozuku across the human intestinal caco-2 cells as assessed by size-exclusion chromatography
Authors: Takeaki Nagamine, Kou Hayakawa, Kyoumi Nakazato, Masahiko Iha
Journal: Journal of Chromatography B (2015): 187–193

说明书
ReadiCleave Cy5 NHS酯.pdf