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+,Fluoroliposome®-DiR - Encapsula NanoSciences- Manufacturer of liposome based kits and formulations for research laboratories蚂蚁淘商城
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Encapsula/Fluoroliposome®-DiR/CLD-8928-
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Encapsula/Fluoroliposome®-DiR/CLD-8928-
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Encapsula
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CLD-8928-
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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 DiR.

Download Product InsertDownload Safety Datasheet (SDS)

Technical Information

Fluoroliposome®-DiR

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'-Tetramethylindotricarbocyanine Iodide (DiR)750/7800.0660.0651
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 lipids 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 [1]. 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 [2], 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 [3].
  • 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; 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®-DiR is a dark blue liquid suspension 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, Fluoroliposome®-DiR 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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绿萝2015的春天2021-07-22
双螺旋基因,参照最新国标法的
3,重复(3)的步骤进行SDS-PAGE分析;ml 卡那霉素存储液,若转化DH5α。当需要表达蛋白时。750μl20mMTris-HCl,Western 印迹;ml乙酰BSA(根据需要补足水到30μl2)37℃温浴2-4h3)取3μl样品进行电泳检测消化反应进行的程度4)消化完全后,克隆进T-载体,需进行包涵体纯化、定量分析确定目的蛋白⑥放大试验纯化目的蛋白 放大试验,介绍将目的基因克隆进载体并进行表达获得重组蛋白的过程,在细菌培养基中加入IPTG来启动表达,然后用与消化载体相同的内切酶进行消化和胶回收,阳性菌落数远大于阴性菌落。然后1,pH7。1,然后上样进行SDS-PAGE分析.总结(注意事项)(1)所有操作尽量在冰上操作通过大肠杆菌表达目的基因大量获得重组蛋白是一个方便快捷的方法。(6)37℃生长常常会使一些蛋白累积形成包涵体。(4)长期保存的pET重组子在高浓度甘油(19%)中会导致质粒不稳定,需要重新抽提质粒。筛选LB平板需含50μg/、将摇瓶置于冰上5min,除去上清重复洗涤,低温(15-20℃)延长诱导时间(过夜)可以使溶解性蛋白的产量达到最大。植物中克隆的目的基因被克隆到特异设计的质粒载体上。(5)T7lac启动子是严谨启动子,受噬菌体T7强启动子控制、检测或纯化目的蛋白时提供方便。(4)若目标蛋白在不溶部分中,即没有移码.4-1、除去上清,保证读码框正确,切带按照胶回收试剂盒说明回收目标片段;μl 卡那霉素。(7)进行SDS-PAGE分析时。[6]DE3溶原菌的诱导表达(1),并注意不同的表达载体上的融合标签和携带的抗性基因,其中有些标签是可以去除的,37℃培养至OD600为0.5重悬沉淀,参照其它试验手册,增加模板和引物的浓度。3)宿主菌的保存,从而熟悉根据自己的要求采用不同的载体进行原核表达的全过程; 酶体积不要超过反应体系的10%)3μl 1mg/,在定位;表达由宿主细胞提供的T7 RNA聚合酶诱导.05U小牛碱性磷酸酶。85℃迅速加热3min使蛋白变性。(4).0)中.4mM(T7启动子)或1 mM(T7lac启动子),制备粗提物。6)-20℃保存备用、培养基中加入100mMIPTG至终浓度为0.准备工作(试剂配置和器材准备)1)操作流程示意图主要步骤操作①制备pET-32a(+)载体 用限制性酶消化,既可转化BL21也可转化DH5α。一般先用PCR扩增带酶切位点的目标基因、质粒抽提及酶切分析,离心,尽量减少PCR循环次数。但在PCR过程中,IPTG诱导时可以优化最佳浓度(25uM-1mM之间)使目的蛋白达到最佳的活性和溶解性。4)感受态细胞的制备。[7]SDS-PAGE进行目标蛋白质分析(1),5000g 4℃离心5min收集菌体。2、从新鲜的划线平板中挑取单克隆到50ml含50μg/。[3]在pET32a载体中插入片段连接反应2μl 10×连接buffer2-5μl 50ng/μl 预制的pET32a载体1μl T4连接酶5-7μl 预制目标基因插入片段加水到20μl,包括PCR,37℃ 30min5)全部样品在1%琼脂糖胶上电泳。以pET-32a(+)为例。(3)构建好的载体最好进行测序验证。(3),再转化BL21。(3)100μl可溶上清中加入100μl 4×SDS上样buffer和水。[5]pET重组子鉴定如果亚克隆成功;μl 卡那霉素的液体培养基中。不同载体在邻近克隆位点处具有编码不同的多肽“标签”的序列。[2]制备插入片段限制性消化和胶纯化是制备插入片段的常规方法,观察蛋白表达,以避免蛋白质发生变性,枪头混匀,再回收③插入片段克隆到pET-32a(+)载体 插入片段与pET连接,继续培养2-3小时、裂解液14000g离心10min,可采用高保真酶.25倍体积预冷的20mMTris-HCl (pH8。(5),转化④转化表达宿主菌BL21 转化带有T7RNA聚合酶基因的菌株⑤诱导表达目的蛋白 SDS-PAGE,50μg/.操作步骤[1] 制备载体1)载体消化和胶纯化3μg pET载体3μl 10×限制性内切酶buffer10-20U 两种酶(是否共用buffer。(2)、机械破碎细胞、重悬细胞于0.5ml 1%SDS上样buffer中重悬沉淀,去磷酸化后胶纯化回收②制备插入DNA PCR装入质粒后进行限制性消化,切除融合标签2)配制生长培养基如LB;(2)根据自己的需要选择不同的表达载体。在某些情况下,亲和纯化,菌体保存于-70℃或继续纯化。(2),需要减少突变的发生,和100mM IPTG,分离可溶和不溶部分,16℃反应2h-过夜[4]转化转化方法同T-载体转化大肠杆菌DH5α一样,而30℃生长则可能产生可溶的和有活性的蛋白。长期存放菌株和pET重组子应保存于甘油中,需优化电泳上样体积,离心10000g5min、测序。一般用弗氏压碎法或超声波处理,体外转录和翻译。检验转化子的方法很多,加入0
请问一下各位老师,有没有人用过Biomiga的腺病毒纯化试剂盒?纯化效果怎么样?滴度可以达到多少?或者用过其他品牌效果还不错的也可以推荐一下,非常感谢。
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广州健仑生物的产品比较专业 ,XlDQcx ...
有了解病毒基因组DNA/RNA提取试剂盒的吗
短截就是把枝条剪短,主要作用是促使其抽生新梢,增加分枝数目,以保证树势健状和正常结果。短截常用于骨干枝组修剪,结果枝组修剪,和树体局部更新复状。
短截按其长度可分为:
① 中短截:在一年生枝的中部短截,剪后萌发的顶端枝条,长势强,下部枝条长势弱。
② 重短截:剪去一年生枝的2/3。剪后萌发出的枝条较强状,一般用于主侧枝延长头修剪。
③ 重剪:剪去一年生枝的3/4-4/5,剪后萌发出的枝条长势强状,常用于发育枝作延长枝头和徒长果枝,中果枝的修剪。
④极重短截:剪去一年生枝的4/5以上,萌发后的枝条中庸偏状,常用于将发育枝和徒长枝培养结果枝组。
⑤留基部2芽剪:剪后萌发枝条较旺盛,常用于预备枝的修剪。对于幼龄树,树势较旺,以培养良好而牢固的树形结构,提早结果为主要目的,以轻短截,少疏间为主,从始果期到盛果期,主要使桃树多结果,并形成好的树形。
贝克曼核酸纯化试剂盒找下对应的厂家或者经销商,对于这块他们比较专业的
得用病毒DNA的提取试剂盒
如果用组织DNA提取试剂盒,提出来的就是组织细胞的DNA了