Pediaditakis Iosif, Kourgiantaki Alexandra, Prousis Kyriakos C, Potamitis Constantinos, Xanthopoulos Kleanthis P, Zervou Maria, Calogeropoulou Theodora, Charalampopoulos Ioannis, Gravanis Achille
Department of Pharmacology, School of Medicine, University of CreteHeraklion, Greece; Institute of Molecular Biology and Biotechnology, Foundation of Research and Technology-HellasHeraklion, Greece.
Institute of Biology, Medicinal Chemistry and Biotechnology, National Hellenic Research Foundation Athens, Greece.
Front Pharmacol. 2016 Dec 26;7:512. doi: 10.3389/fphar.2016.00512. eCollection 2016.
Neurotrophin receptors mediate a plethora of signals affecting neuronal survival. The p75 pan-neurotrophin receptor controls neuronal cell fate after its selective activation by immature and mature isoforms of all neurotrophins. It also exerts pleiotropic effects interacting with a variety of ligands in different neuronal or non-neuronal cells. In the present study, we explored the biophysical and functional interactions of a blood-brain-barrier (BBB) permeable, C17-spiroepoxy steroid derivative, BNN27, with p75 receptor. BNN27 was recently shown to bind to NGF high-affinity receptor, TrkA. We now tested the p75-mediated effects of BNN27 in mouse Cerebellar Granule Neurons (CGNs), expressing p75, but not TrkA receptors. Our findings show that BNN27 physically interacts with p75 receptors in specific amino-residues of its extracellular domain, inducing the recruitment of p75 receptor to its effector protein RIP2 and the simultaneous release of RhoGDI in primary neuronal cells. Activation of the p75 receptor by BNN27 reverses serum deprivation-induced apoptosis of CGNs resulting in the decrease of the phosphorylation of pro-apoptotic JNK kinase and of the cleavage of Caspase-3, effects completely abolished in CGNs, isolated from p75 null mice. In conclusion, BNN27 represents a lead molecule for the development of novel p75 ligands, controlling specific p75-mediated signaling of neuronal cell fate, with potential applications in therapeutics of neurodegenerative diseases and brain trauma.
神经营养因子受体介导大量影响神经元存活的信号。p75泛神经营养因子受体在被所有神经营养因子的未成熟和成熟异构体选择性激活后,控制神经元细胞命运。它还通过与不同神经元或非神经元细胞中的多种配体相互作用发挥多效性作用。在本研究中,我们探索了一种血脑屏障(BBB)可渗透的C17-螺环氧类固醇衍生物BNN27与p75受体的生物物理和功能相互作用。最近发现BNN27可与NGF高亲和力受体TrkA结合。我们现在测试了BNN27在表达p75但不表达TrkA受体的小鼠小脑颗粒神经元(CGN)中p75介导的作用。我们的研究结果表明,BNN27在其细胞外结构域的特定氨基酸残基处与p75受体发生物理相互作用,诱导p75受体募集到其效应蛋白RIP2,并同时在原代神经元细胞中释放RhoGDI。BNN27激活p75受体可逆转血清剥夺诱导的CGN凋亡,导致促凋亡JNK激酶磷酸化减少和Caspase-3裂解减少,从p75基因敲除小鼠分离的CGN中这些效应完全消失。总之,BNN27代表了一种新型p75配体开发的先导分子,可控制特定的p75介导的神经元细胞命运信号传导,在神经退行性疾病和脑损伤治疗中具有潜在应用价值。