神经营养反式邦烯的构效关系及生物活性研究

K. Gohil, M. Kazmi, Florence Williams
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引用次数: 0

摘要

神经营养小分子天然产物是被称为神经营养因子的信号蛋白的功能类似物,其在神经细胞中引起促生长、促生存或促分化反应。虽然这些表型反应是对抗神经退行性疾病进展所需要的,但神经营养蛋白具有药代动力学特性,无论是在生物医学研究中还是作为治疗药物,都对其在生物体中的施用提出了挑战。像顺式和反式链烯这样的小分子为激活神经营养反应提供了有吸引力的选择。我们描述了苯烯衍生物的合成和测试,以建立苯烯家族的结构-活性响应。值得注意的是,在我们的研究过程中,反式苯烯被证明能引起神经生长因子(NGF)增强的神经生成,其作用明显强于单独使用反式苯烯的神经生成作用。我们证明了只有(-)反式苯烯具有活性,而其(+)对映体则没有活性,并进一步证明了对反式苯烯环己烯的选择性修饰不会影响其生物活性。最后,为了探究(-)反式苯烯的作用机制与典型的NGF信号转导途径之间的关系,我们采用了靶向Pkc、Akt1/2/3和Erk1/2的激酶抑制剂,旨在抑制NGF诱导的神经营养信号传导。有趣的是,(-)反式苯二烯增强ngf诱导的神经生成不受这些激酶抑制剂的影响。总的来说,这些结果表明(-)反式苯烯具有双重作用模式(既具有神经营养作用,又能强烈增强NGF活性),并且其对Pkc和Erk1/2酶活性的增强作用是独立的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure-Activity-Relationship and Bioactivity of Neurotrophic trans-Banglene
Neurotrophic small molecule natural products are functional analogs of signaling proteins called neurotrophins, which cause a pro-growth, pro-survival, or pro-differentiation response in neuronal cells. While these phenotypic responses are desirable to combat neurodegenerative disease progression, neurotrophin proteins possess pharmacokinetic properties that present challenges to their administration in living organisms, whether in biomedical studies or as therapeutics. Small molecules such as the cis- and trans-banglenes offer attractive alternatives to activate neurotrophic responses. We describe the synthesis and testing of banglene derivatives to establish a structure-activity response for the banglene family. Notably, during the course of our studies trans-banglene was shown to cause nerve growth factor (NGF)-potentiated neuritogenesis that was markedly stronger than the neuritogenic effects of trans-banglene alone. We demonstrate that only (–) trans-banglene is active, while its (+) enantiomer is not, and further demonstrate that select modifications on the cyclohexene ring of trans-banglene does not impair its bioactivity. Finally, to probe the relationship between (–) trans-banglene’s mechanism of ac-tion and canonical NGF signal transduction pathways, we employed kinase inhibitors targeting Pkc, Akt1/2/3 and Erk1/2, designed to inhibit NGF-induced neurotrophic signaling. Interestingly, (–) trans-banglene potentiation of NGF-induced neuri-togenesis was unaffected by the presence of these kinase inhibitors. Collectively, these results suggest a dual-mode of action for (–) trans-banglene (both neurotrophic alone and strongly potentiating of NGF activity), and an independence of its po-tentiating action on Pkc and Erk1/2 enzymatic activity.
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