Clinical Systems Biology Group, Institute for Neuro-Immune Medicine, Nova Southeastern University, Fort Lauderdale, FL, USA.
Department of Psychology and Neuroscience, Nova Southeastern University, Fort Lauderdale, FL, USA.
Sci Rep. 2023 Sep 1;13(1):14406. doi: 10.1038/s41598-023-41600-9.
Natural phenethylamines are trace amine neurotransmitters associated with dopamine transmission and related illnesses such Parkinson's disease, and addiction. Synthetic phenethylamines can have psychoactive and hallucinogenic effects due to their high affinity with the 5-HT receptor. Evidence indicates phenethylamines can directly alter the microtubule cytoskeleton being structurally similar to the microtubule destabilizing agent colchicine, however little work has been done on this interaction. As microtubules provide neuron structure, intracellular transport, and influence synaptic plasticity the interaction of phenethylamines with microtubules is important for understanding the potential harms, or potential pharmaceutical use of phenethylamines. We investigated 110 phenethylamines and their interaction with microtubules. Here we performed molecular docking of these compounds at the colchicine binding site and ranked them via binding energy. The top 10% of phenethylamines were further screened based on pharmacokinetic and physicochemical properties derived from SwissADME and LightBBB. Based on these properties 25B-NBF, 25C-NBF, and DMBMPP were tested in in vitro microtubule polymerization assays showing that they alter microtubule polymerization dynamics in a dose dependent manner. As these compounds can rapidly cross the blood brain barrier and directly affect cytoskeletal dynamics, they have the potential to modulate cytoskeletal based neural plasticity. Further investigations into these mechanisms are warranted.
天然苯乙胺是与多巴胺传递有关的痕量胺神经递质,与帕金森病和成瘾等相关疾病有关。合成苯乙胺由于与 5-HT 受体具有高亲和力,可能具有精神活性和致幻作用。有证据表明,苯乙胺可以直接改变微管细胞骨架,其结构与微管解聚剂秋水仙碱相似,但对此相互作用的研究甚少。由于微管为神经元结构、细胞内运输提供支持,并影响突触可塑性,因此苯乙胺与微管的相互作用对于理解苯乙胺的潜在危害或潜在药物用途非常重要。我们研究了 110 种苯乙胺及其与微管的相互作用。在这里,我们在秋水仙碱结合位点对这些化合物进行了分子对接,并通过结合能对它们进行了排名。根据从 SwissADME 和 LightBBB 获得的药代动力学和物理化学特性,进一步对前 10%的苯乙胺进行了筛选。基于这些特性,我们在体外微管聚合测定中测试了 25B-NBF、25C-NBF 和 DMBMPP,结果表明它们以剂量依赖的方式改变微管聚合动力学。由于这些化合物可以快速穿过血脑屏障并直接影响细胞骨架动力学,因此它们有可能调节基于细胞骨架的神经可塑性。进一步研究这些机制是必要的。