Department of Pharmacology, Medical School, University of Crete, 71003 Heraklion, Greece.
Institute of Molecular Biology & Biotechnology (IMBB), Foundation for Research and Technology-Hellas (FORTH), 70013 Heraklion, Greece.
Int J Mol Sci. 2023 Jul 20;24(14):11683. doi: 10.3390/ijms241411683.
Neuronal cell fate is predominantly controlled based on the effects of growth factors, such as neurotrophins, and the activation of a variety of signaling pathways acting through neurotrophin receptors, namely Trk and p75 (p75NTR). Despite their beneficial effects on brain function, their therapeutic use is compromised due to their polypeptidic nature and blood-brain-barrier impermeability. To overcome these limitations, our previous studies have proven that DHEA-derived synthetic analogs can act like neurotrophins, as they lack endocrine side effects. The present study focuses on the biological characterization of a newly synthesized analog, ENT-A044, and its role in inducing cell-specific functions of p75NTR. We show that ENT-A044 can induce cell death and phosphorylation of JNK protein by activating p75NTR. Additionally, ENT-A044 can induce the phosphorylation of TrkB receptor, indicating that our molecule can activate both neurotrophin receptors, enabling the protection of neuronal populations that express both receptors. Furthermore, the present study demonstrates, for the first time, the expression of p75NTR in human-induced Pluripotent Stem Cells-derived Neural Progenitor Cells (hiPSC-derived NPCs) and receptor-dependent cell death induced via ENT-A044 treatment. In conclusion, ENT-A044 is proposed as a lead molecule for the development of novel pharmacological agents, providing new therapeutic approaches and research tools, by controlling p75NTR actions.
神经元的命运主要取决于生长因子的影响,如神经营养因子,以及通过神经营养因子受体(即 Trk 和 p75(p75NTR))激活的各种信号通路的作用。尽管它们对大脑功能有有益的影响,但由于它们的多肽性质和血脑屏障的不可渗透性,其治疗用途受到了限制。为了克服这些限制,我们之前的研究已经证明,DHEA 衍生的合成类似物可以像神经营养因子一样发挥作用,因为它们没有内分泌副作用。本研究重点研究了一种新合成的类似物 ENT-A044 的生物学特性及其在诱导 p75NTR 细胞特异性功能中的作用。我们表明,ENT-A044 通过激活 p75NTR 诱导细胞死亡和 JNK 蛋白的磷酸化。此外,ENT-A044 可以诱导 TrkB 受体的磷酸化,表明我们的分子可以激活两种神经营养因子受体,从而保护表达这两种受体的神经元群体。此外,本研究首次证明了 p75NTR 在人诱导多能干细胞衍生的神经前体细胞(hiPSC 衍生的 NPC)中的表达,以及通过 ENT-A044 处理诱导的受体依赖性细胞死亡。总之,ENT-A044 被提议作为开发新型药理学制剂的先导分子,通过控制 p75NTR 的作用,提供新的治疗方法和研究工具。