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Encapsula/Three-Color Fluoroliposome® Kit/2-ml/CLD-8908-2-ml
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Encapsula/Three-Color Fluoroliposome® Kit/2-ml/CLD-8908-2-ml
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Encapsula
货号 / 
CLD-8908-2-ml
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Description

There are five fluorescent control liposome products (Fluoroliposome®) for Clodrosome® (clodronate liposomes). All five fluorescent liposomes incorporate a lipophilic dye inside their membranes. They are insoluble in water; however, their fluorescence is easily detected when incorporated into membranes. DiI, DiO, DiD, DiR and DiA cover a wide range of excitation and emission wavelengths from 300s to 900s. DiI and DiO have fluorescence excitation and emission maxima separated by about 65 nm, facilitating two-color labeling. The emission spectrum of DiA is very broad, allowing it to be detected as green, orange or even red fluorescence depending on the optical filter used. DiI, DiO, DiD and DiR belong to the dialkylcarbocyanines family of compounds. The spectral properties of the dialkylcarbocyanines are largely independent of the lengths of the alkyl chains. Instead, they are determined by the heteroatoms in the terminal ring systems and the length of the connecting bridge. They have extremely high extinction coefficients, moderate fluorescence quantum yields and short excited state lifetimes in lipid environments (~1 ns). The fluorescence spectrum of each dye is shown below.

You can choose the Fluoroliposome® based on the type of the fluorescent equipment and filters that you use in your lab. Clodronate liposomes cannot be made fluorescent simply due to the potential for inaccurate and/or uninterpretable data being generated by labelled Clodrosome®. For more information, please refer to the technical note section.

Normalized fluorescence emission spectra of DiD, DiI, DiO and DiR
Macrophage uptake of fluorescent liposome containing DiI.

Download Product InsertDownload Safety Datasheet (SDS)

Technical Information

Three-Color Fluoroliposome® Kit

Lipid CompositionConcentration (mg/ml)Concentration (mM)Molar Ratio Percentage
Total23 mg/ml35.1 mM100
L-alpha-Phosphatidylcholine18.824.370
Cholesterol4.210.930
Fluorescent DyeExcitation/Emission (nm)Concentration (mg/ml)Concentration (mM)
1,1'-Dioctadecyl-3,3,3',3'-Tetramethylindodicarbocyanine, 4-Chlorobenzenesulfonate Salt (DiD)644/6650.06250.065
1,1'-Dioctadecyl-3,3,3',3'-Tetramethylindocarbocyanine Perchlorate (DiI)549/5650.06250.065
3,3'-Dilinoleyloxacarbocyanine Perchlorate (DiO)484/5010.06250.071
Buffer and Liposome SizeSpecification
BufferPhosphate Buffered Saline
pH7.4
Liposome Size1.5-2 µm

Technical Notes

  • The issue with fluorescent Clodrosome® has to do with the potential for inaccurate and/or uninterpretable data being generated by labelled Clodrosome®. When Clodrosome® induces macrophage apoptosis, the fluorescent lipid incorporated into the Clodrosome® is disrupted and metabolized in the phagolysosome will be dispersed among the residual apoptotic bodies which are subsequently phagocytosed by other macrophages. Therefore, fluorescent lipid may be detected in phagocytic cells which never phagocytosed Clodrosome® especially when FACS or fluoroscopy are utilized to detect fluorescent cells (FACS) or fluorescence levels in a tissue homogenate (fluoroscopy). Another potential artifact arises from fluorescent lipid remaining in the extracellular “garbage”, which has not yet been cleared by other phagocytes, generating a high background fluorescence. However, experienced confocal microscopist may be able to differentiate between the punctate fluorescence, resulting from fluorescent intact liposomes versus the more diffuse fluorescence characteristic of disrupted liposomes and some have successfully used fluorescent clodronate liposomes to visualize the cellular location of these liposomes by confocal microscopy in vivo [2]. A further complicating factor is that published data varies widely as to exactly when clodronate liposomes begin to induce apoptosis in macrophages. Mönkönnnen et al. show that macrophage death is measurable within the first hour after clodronate liposome treatment on RAW264 cells in vitro [3], while many others have reported no signs of macrophage apoptosis until several hours after treatment in vivo. The variability in the data is likely due to different liposomal formulations of clodronate as well as the vastly different experimental conditions. Therefore, as with most biological studies, especially those involving liposomes, the amount of time between treating the animal or cells with clodronate liposomes and the onset of apoptosis will need to be established in each experimental model. If the nature of the research demands that Clodrosome® be tracked rather than the control, Encapsula can provide DiI-labelled Clodrosome® upon request, and assuming that the Clodrosome® distribution can definitively be assessed prior to the onset of apoptosis, clear and valid data on the biodistribution of fluorescent Clodrosome® should be obtainable. Still, for most purposes, Fluoroliposome® (fluorescent control liposomes) will provide the required data with far fewer potential artifacts.
  • When monitoring monocyte uptake in vivo in normal animals, the circulating monocytes may “disappear” or show reduced counts within the first 2 h post-injection due to margination of the monocytes post-liposome phagocytosis. These cells will re-enter the circulation within a few hours. Sunderkötter et al. demonstrate this phenomenon and discuss the behavior in detail. Also consider that circulating monocytes have a lifetime of about 24 h so labeled monocytes will be continually leaving the circulation, even in normal animals, due to aging of the monocytes [4].
  • Liposomes may settle when left undisturbed for more than a few hours. Immediately prior to use, in order to ensure a homogeneous liposome suspension, slowly invert the vial several times until the suspension appears homogeneous by visual inspection. Vigorous or erratic shaking will not damage the liposomes but may induce foaming and bubble formation making it more difficult to accurately measure the desired dosage.
  • If the personnel performing intravenous injections are not experienced in or familiar with, precautions for injecting larger volumes (~10% animal weight in ml), viscous liquids or particulate suspensions, consider having extra animals available in case serious injection-related adverse events occur. Dose control animals first to become familiar with large volume injections.
  • When dosing intravenously, use standard precautions for dosing larger volumes to animals including the following: a) warm product to room temperature prior to dosing; b) ensure that all air bubbles are removed from the syringe prior to dosing. Intravenous injection of air bubbles may result in air emboli which can kill or seriously injure animals; c) inject product at a slow, steady rate of no more than 1 ml/min; d) decrease infusion rate if animals display any atypical reactions such as unusual agitation.
  • Infusion-related adverse reactions usually involve the animal gasping for air or other seizure-like movements. Animals often recover with no apparent permanent injury, but any potential effects on experimental results must be assessed by the researcher.
  • Liposomes should be kept at 4°C and NEVER be frozen.

Dosage

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Appearance

Fluoroliposome®-DiD, Fluoroliposome®-DiI, and Fluoroliposome®-DiO are blue, pink and yellow liquid suspensions, respectively. These Fluoroliposome® products are made of large micron size multilamellar liposomes. Due to their large size, some liposomes might settle to the bottom of the vial. If left sitting idle in the refrigerator, they will phase separate and form pellets in the bottom of the vial, leaving a clear solution on top. Therefore, the vial should be shaken to form a homogeneous solution prior to use.

Educational Videos

Ordering/Shipping Information

  • All liposome based formulations are shipped on blue ice at 4°C in insulated packages using overnight shipping or international express shipping.
  • Liposomes should NEVER be frozen. Ice crystals that form in the lipid membrane can rupture the membrane, change the size of the liposomes and cause the encapsulated drug to leak out. Liposomes in liquid form should always be kept in the refrigerator.
  • Clients who order from outside of the United States of America are responsible for their government import taxes and customs paperwork. Encapsula NanoSciences is NOT responsible for importation fees to countries outside of the United States of America.
  • We strongly encourage the clients in Japan, Korea, Taiwan and China to order via a distributor. Tough customs clearance regulations in these countries will cause delay in custom clearance of these perishable formulations if ordered directly through us. Distributors can easily clear the packages from customs. To see the list of the distributors click here.
  • Clients ordering from universities and research institutes in Australia should keep in mind that the liposome formulations are made from synthetic material and the formulations do not require a “permit to import quarantine material”. Liposomes are NOT biological products.
  • If you would like your institute’s FedEx or DHL account to be charged for shipping, then please provide the account number at the time of ordering.
  • Encapsula NanoSciences has no control over delays due to inclement weather or customs clearance delays. You will receive a FedEx or DHL tracking number once your order is confirmed. Contact FedEx or DHL in advance and make sure that the paperwork for customs is done on time. All subsequent shipping inquiries should be directed to Federal Express or DHL.

Storage and Shelf Life

Storage

Fluoroliposome® products should always be stored at in the dark at 4°C, except when brought to room temperature for brief periods prior to animal dosing. DO NOT FREEZE. ENS is not responsible for results generated by frozen product.

Shelf Life

Fluoroliposome® products are made on daily basis. The batch that is shipped is manufactured on the same day. It is advised to use the products within 60 days of the manufacturing date.

References and background reading

1. Polfliet MM, Goede PH, van Kesteren-Hendrikx EM, van Rooijen N, Dijkstra CD, van den Berg TK. A method for the selective depletion of perivascular and meningeal macrophages in the central nervous system. J. Neuroimmunol. 2001 Jun 1;116(2):188–95.

2. Mönkkönen J, Liukkonen J, Taskinen M, Heath TD, Urtti A. Studies on liposome formulations for intra-articular delivery of clodronate. Journal of Controlled Release. 1995 Aug;35(2–3):145–54.

3. Sunderkötter C, Nikolic T, Dillon MJ, van Rooijen N, Stehling M, Drevets DA, Leenen P. Subpopulations of Mouse Blood Monocytes Differ in Maturation Stage and Inflammatory Response. J Immunol. 2004 Apr 1;172(7):4410–7.

4. Nagai H, Kuwahira I, Schwenke DO, Tsuchimochi H, Nara A, Ogura S, Sonobe T, Inagaki T, Fujii Y, Yamaguchi R, Wingenfeld L. Pulmonary macrophages attenuate hypoxic pulmonary vasoconstriction via β3AR/iNOS pathway in rats exposed to chronic intermittent hypoxia. PLoS One. 2015 Jul 1;10(7):e0131923.

5. Zhu Y, Soderblom C, Krishnan V, Ashbaugh J, Bethea JR, Lee JK. Hematogenous macrophage depletion reduces the fibrotic scar and increases axonal growth after spinal cord injury. Neurobiology of disease. 2015 Feb 28;74:114-25.

6. Yun MH, Davaapil H, Brockes JP. Recurrent turnover of senescent cells during regeneration of a complex structure. Elife. 2015;4:e05505.

7. Arwert EN, Harney AS, Entenberg D, Wang Y, Sahai E, Pollard JW, Condeelis JS. A Unidirectional Transition from Migratory to Perivascular Macrophage Is Required for Tumor Cell Intravasation. Cell reports. 2018 May 1;23(5):1239-48.

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蛋白质免疫印迹(Western Blot )可以:(1)从蛋白质混合物中检出目标蛋白质;(2)定量或定性确定细胞或组织中蛋白质的表达情况;(3)用于蛋白质-蛋白质、蛋白质-DNA、蛋白质-RNA相互作用后续分析。 查看更多>
通过前期的早期初筛,经过生物信息学分析,会筛选到具有统计学意义的一部分具有表达差异的蛋白。这些蛋白需要经过进一步的优化,寻找到与疾病或某些通路有关的具有表达差异的蛋白,进一步缩小蛋白范围,这时就需要使用结果更为准确的蛋白定量或鉴定工具。经过优化后,需要对得到的更小范围生物标志物进行大样本量的验证,最终确定哪些生物标志物可以用于疾病 查看更多>
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尿素,又称碳酰胺(carbamide),是由碳、氧、氨基组成的有机化合物,是一种白色晶体。最简单的有机化合物之一,是哺乳动物和某些鱼类体内蛋白质代谢分解的主要含氮终产物。也是目前含氮量最高的氮肥。作为一种中性肥料,尿素适用于各种土壤和植物。它易保存,使用方便,对土壤的破坏作用小,是目前使用量较大的一种化学氮肥。工业上用氨气和二氧化碳在一定条件下合成尿素。尿素可与酸作用生成盐。有水解作用。在高温下可进行缩合反应,生成缩二脲、缩三脲和三聚氰酸。加热至160℃分解,产生氨气同时变为异氰酸。因为在人尿中含有这种物质,所以
取名尿素。尿素含氮46%,是固体氮肥中含氮量最高的。尿素在酸、碱、酶作用下(酸、碱需加热)能水解生成氨和二氧化碳。希望我能帮助你解疑释惑。
建议起始浓度1:200开始(当然你也可以1:100,如果你的背景不高的话),倍比稀释,不是再做1:100-1:1000稀释,注意了。其实没有必要分装,一般都会添加保护剂的。如果你一定要分装,建议原液分装或是10稀释后分装。
原液分装。抗体孵育之前稀释。
做WB的浓度不一定需要很高的。可以设置简单梯度1:200;1:500;1:1000 。看结果再优化
天根RNA试剂盒DP419提取的蛋白可以做WB吗:分三层后,上层是RNA,那个中间层的蛋白怎么提出来纯化一下做WB?请高手解答,非常感谢!
最近做WB内参总是不齐,用了康为世纪的BCA法测蛋白定量,把蛋白调了下还是不是很理想,想请问下有哪位小伙伴可以一个推荐相对比较准确的蛋白定量试剂盒!或者有没有其他方法将内参调齐。十分感谢!!!
我做脑组织的炎症因子的WB,但是很可惜,一个都做不出来,不知道什么原因,已经做很久了,怀疑是蛋白提取有问题,我使用的是国产的提取总蛋白试剂盒(RIPA+PMSF),蛋白浓度还可以,有6毫克/毫升,但是目的蛋白丰度比较低,现在想换一种蛋白质提取试剂盒,今天有一个试剂商向我推荐MERK公司的蛋白质提取试剂盒,可以提取膜蛋白、胞浆蛋白、核蛋白和细胞骨架蛋白,但是很贵,要5000多人民币,不知道是否有必要买,难道用总蛋白提取试剂盒不行吗?这个WB让我很苦恼!!!!谢谢。
这个膜的两面是不一样的。一面粗糙,一面光滑吧。如果这个算正反面的话,那么就是有正反面的。但是对于WB来说在转膜前是没有正反面之分的。你用粗糙的面贴着胶转膜和光滑的面贴着胶转膜,蛋白都能转到膜上去的。不会因为你膜贴反了而蛋白转膜不成功啥的。
转膜后就要区分与胶接触的一面与另一面了。话说楼主好奇的话可以跑蛋白的试试看哈。比如目的蛋白的胶用光滑面贴着胶,内参蛋白用粗糙面贴着胶一起转膜试试转膜结果看看呢。
请问哪个公司的WB试剂盒好用?小弟刚接触,做WB的要的材料好多,不知有无合适的试剂盒可以减少工作量,请了解的大侠指教下!!
博凌科为 高纯质粒小量制备试剂盒
原理简介:
本试剂盒采用改进SDS-碱裂解法裂解细胞,离心吸附柱内的硅基质膜在高盐,低pH值状态下选择性地结合溶液中的质粒DNA,再通过去蛋白液和漂洗液将杂质和其它细菌成分去除,最后低盐,高pH值的洗脱缓冲液将纯净质粒DNA从硅基质膜上洗脱。

注意事项:
◆ 第一次使用时,将试剂盒所带全部的RNase A加入溶液P1后(终浓度100ug/ml)置于4℃保存。如果溶液P1中RNase A失活,提取的质粒可能会有混杂有微量RNA残留, 这时可在溶液P1中补加RNase A即可。
◆ 第一次使用前请先在15ml漂洗液WB中加入45ml无水乙醇,加入后请及时在方框打钩标记已加入乙醇,以免多次加入!
◆ 温度低时溶液P2中SDS可能会出现浑浊或者析出沉淀,可在37℃水浴加热几分钟,即可恢复澄清,不要剧烈摇晃,以免形成过量的泡沫。
◆ 避免试剂长时间暴露于空气中产生挥发、氧化、pH值变化,各溶液使用后应及时盖紧盖子。

试剂盒特点:
◆ 产量高---一次提取高达30ug以上的质粒。
◆ 纯度高---OD260/OD280一般为1.80~1.85本试剂盒提取的质粒纯度好,能充分保证测序所需要的读长(用于ABI3730测序一般可达1000bp有效读长)。
◆ 快速,方便,不需要使用有毒的苯酚,氯仿等试剂,也不需要乙醇沉淀。
提示
BIOTEKE的质粒提取试剂盒既适用于革兰氏阴性菌中质粒的提取,同时也可从革兰氏阳性菌中提取质粒。由于革兰氏阳性菌外被一层较厚的细胞壁,会严重阻碍细菌细胞的裂解,因此必须在裂解细胞前破除,方法如下:
收集适量的菌体,加入250ul溶液P2,充分悬浮菌液,加入溶菌酶使其终浓度在10-20mg/ml左右在37℃处理30分钟左右。加入溶菌酶的浓度和处理的时间可根据不同的菌主和具体实验条件进行调整。
电泳液和转膜液都可重复利用3次左右
考马斯亮兰染液也可以重复用。新配的染液10分钟即可,重复3次后要染30分钟。
一抗二抗可以重复利用,但是注意要在5%milk中加入0.2% sodium azide ,并且用完以后放入4度保存,我的经验重复使用4-5次是肯定没有问题的.如果保存不当,就会污染微生物,只能丢弃.
转染后提蛋白,提蛋白后跑wb,inhibitor的趋势不管怎么调整上样量,都是相反的?请问接下来该怎么做?
要做两个蛋白,这个试剂盒够用吗?
不是的看你实验如何做了,试剂盒这块有技术支持的,你可以咨询下厂家,wb的实验需要的东西还是很多的,还是要参考详细的配方再做