Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, United States.
Keck School of Medicine, University of Southern California, Los Angeles, United States.
Elife. 2022 Jan 4;11:e74648. doi: 10.7554/eLife.74648.
Nicotinic partial agonists provide an accepted aid for smoking cessation and thus contribute to decreasing tobacco-related disease. Improved drugs constitute a continued area of study. However, there remains no reductionist method to examine the cellular and subcellular pharmacokinetic properties of these compounds in living cells. Here, we developed new intensity-based drug-sensing fluorescent reporters (iDrugSnFRs) for the nicotinic partial agonists dianicline, cytisine, and two cytisine derivatives - 10-fluorocytisine and 9-bromo-10-ethylcytisine. We report the first atomic-scale structures of liganded periplasmic binding protein-based biosensors, accelerating development of iDrugSnFRs and also explaining the activation mechanism. The nicotinic iDrugSnFRs detect their drug partners in solution, as well as at the plasma membrane (PM) and in the endoplasmic reticulum (ER) of cell lines and mouse hippocampal neurons. At the PM, the speed of solution changes limits the growth and decay rates of the fluorescence response in almost all cases. In contrast, we found that rates of membrane crossing differ among these nicotinic drugs by >30-fold. The new nicotinic iDrugSnFRs provide insight into the real-time pharmacokinetic properties of nicotinic agonists and provide a methodology whereby iDrugSnFRs can inform both pharmaceutical neuroscience and addiction neuroscience.
烟碱部分激动剂为戒烟提供了公认的辅助手段,从而有助于减少与烟草相关的疾病。改进药物仍然是一个持续的研究领域。然而,目前仍然没有一种简化的方法来研究这些化合物在活细胞中的细胞和亚细胞药代动力学特性。在这里,我们为烟碱部分激动剂二甲尼克林、卡替林以及两种卡替林衍生物 - 10-氟卡替林和 9-溴-10-乙基卡替林开发了新的基于强度的药物感应荧光报告子(iDrugSnFRs)。我们报告了配体结合周质结合蛋白的基于荧光的生物传感器的第一个原子尺度结构,加速了 iDrugSnFRs 的发展,并解释了其激活机制。烟碱 iDrugSnFRs 可在溶液中以及细胞系的质膜 (PM) 和内质网 (ER) 中检测到其药物伴侣。在 PM 中,溶液变化的速度限制了荧光响应的增长和衰减速率,几乎在所有情况下都是如此。相比之下,我们发现这些烟碱药物的膜穿透速率差异超过 30 倍。新的烟碱 iDrugSnFRs 深入了解了烟碱激动剂的实时药代动力学特性,并提供了一种方法,通过该方法,iDrugSnFRs 可以为药物神经科学和成瘾神经科学提供信息。