LanthaScreen™ TR-FRET Progesterone Receptor Coactivator Assay Kit
LanthaScreen™ TR-FRET Progesterone Receptor Coactivator Assay Kit

LanthaScreen™ TR-FRET Progesterone Receptor Coactivator Assay Kit

LanthaScreen™ TR-FRET 黄体酮受体辅激活物检测试剂盒为高通量筛选作为配基依赖的辅激活物招募的激动剂或拮抗剂的潜在黄体酮受体 (PR) 配基提供了一种敏感和稳健的方法。该试剂盒使用了谷胱甘肽 S 转移酶 (GST)(可单独获取了解更多信息
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货号数量
A15903800 x 20 μL assays
货号 A15903
价格(CNY)
29,365.00
Each
添加至购物车
数量:
800 x 20 μL assays
价格(CNY)
29,365.00
Each
添加至购物车
LanthaScreen™ TR-FRET 黄体酮受体辅激活物检测试剂盒为高通量筛选作为配基依赖的辅激活物招募的激动剂或拮抗剂的潜在黄体酮受体 (PR) 配基提供了一种敏感和稳健的方法。该试剂盒使用了谷胱甘肽 S 转移酶 (GST)(可单独获取)、铽 (Tb) 标抗 GST 抗体和荧光标记的辅激活物肽,以一种同质混合可读分析形式标记 PR 配基结合域 (PR-LBD)。

激动剂模式
以激动剂模式进行 LanthaScreen TR-FRET 黄体酮受体辅激活物检测(鉴定激动剂化合物),将 PR-LBD 添加到配基检测化合物中,然后加入荧光素辅激活物肽和 Tb 标的 anti-GST 抗体的混合物。在室温下孵育一段时间后,可计算 520/495 nm TR-FRET 比,还可将其用于根据化合物的剂量反应曲线确定 EC50。基于 PR 辅激活因子肽相互作用的生物学原理,该配基 EC50 为一种复合值,表示与受体结合、影响构象变化和招募辅激活因子肽所需的配基数量(见图)。

拮抗剂模式
以拮抗剂模式使用 LanthaScreen™ TR-FRET 孕酮受体辅激活因子检测试剂(鉴定拮抗剂化合物)时,将 PR-LBD 添加至配基供试化合物中,然后加入激动剂、荧光素标记的辅激活因子肽和铽标记的抗 GST 抗体的混合物(见图)。该模式中使用的激动剂浓度为首次进行激动剂模式检测所确定的 EC80 浓度。
仅供科研使用。不可用于诊断程序。
规格
适用于(应用)辅因子相互作用检测、核受体检测
产品线LanthaScreen™
数量800 x 20 μL assays
类型TR-FRET 孕酮受体辅激活因子检测试剂盒
Unit SizeEach
内容与储存
1 管 PR 配基结合域重组蛋白(储存于 -68 至 -85°C)
1 管多肽(储存于 -5 至 -30°C)
2 瓶 TR-FRET 缓冲液(储存于 -5 至 -30°C)
1 管 Tb-Anti-GST Ab(储存于 -5 至 -30°C)
1 管 DTT(储存于 -5 至 -30°C)

常见问题解答 (FAQ)

How does the LanthaScreen technology compare to other TR-FRET assay formats?

We performed a comparison between the LanthaScreen assay and other commercially available TR-FRET assays from 2 different suppliers for the PKC kinase target. Our data revealed that the assays performed comparably, but that the LanthaScreen assay was simpler to optimize and contained fewer components that required optimization. The LanthaScreen assay is a two component system, whereas the other assay formats utilize a trimolecular mechanism which is more time consuming to optimize and has added costs.

For my kinase assay, can I pre-mix the Tb-Ab and EDTA so that I can stop the kinase assay and begin detection with a single reagent addition?

Yes, this is possible depending on the concentrations of reagents used and the time for which they are mixed. We recommend developing and optimizing the assay by using separate reagent additions, because this method will work under the widest range of conditions. Once the assay is optimized, the performance of the assay using pre-mixed antibody and EDTA can be evaluated. We have successfully developed robust assays in which the antibody and EDTA were pre-mixed and then stored overnight at 4 degrees C prior to use the following day. A loss of signal intensity was observed in this case, however, by using the ratiometric readout, this effect was minimal.

Are the LanthaScreen reagents stable to interference from Mg2+, Mn2+, and EDTA?

The chelate is completely stable to Mg2+. The amount of Mn2+ or EDTA that the chelate can tolerate depends largely on how long they are mixed together and the combination of additives used in the reaction. If a reaction requires either Mg2+ or Mn2+ for activation, it is best to stop the reaction by adding an equimolar amount (or slight excess) of EDTA to chelate the metal ions present. This will then essentially eliminate any interference on the terbium chelate by EDTA or Mn2+. Regardless, when LanthaScreen assays are performed using a ratiometric readout (division of the acceptor signal by the donor signal), any interference caused by Mn2+ or EDTA is largely cancelled out.

What is the optimal and/or maximum distance for a Tb-fluorescein pair?

The Förster radius, the distance at which energy transfer efficiency is half-maximal, is around 50-angstroms for the terbiumÆ fluorescein pair. However, the Förster radius does not give a complete indication of energy transfer efficiency when using long lifetime fluorophores such as terbium chelates. When using terbium chelates, energy transfer efficiency is determined by the distance of closest approach between the donor and acceptor during the excited state lifetime of the donor. In many assay systems, such as those designed using antibodies or peptides, there is a large degree of conformational freedom that allows the donor and acceptor to approach one another, effectively enhancing the FRET signal. Additionally, it is important to note that as the donor/acceptor pair approach one another and the efficiency of energy transfer increases, the fluorescent lifetime decreases to a comparable extent. From a practical standpoint, this means that when energy transfer is extremely efficient, FRET cannot be measured in time-resolved mode (because the energy transfer is complete before the measurement is made). This is another reason why TR-FRET assays based around terbium-labeled antibodies or streptavidin perform so well, because there exist a range of donor/acceptor distances, several of which are optimal for measuring FRET.

How many LanthaScreen assays can I run with a given amount of substrate?

It varies, depending on the concentration of substrate used in the assay. But in general, for the peptide substrates, 1 mg of peptide will run approximately 250,000 wells (10 µL reaction, 200 nM peptide). For Poly GT or GAT, the 1 mL of 30 µM size we sell is approximately 1 mg. With these substrates, 1 mL of 30 µM will run approximately 16,700 wells (10 µL reaction, 200 µM substrate).

20 nmol of our physiological protein substrates is sufficient for approximately 10,000 wells (10 µL reaction, 200 µM substrate).