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TDAG51介导运动神经元衍生细胞中NGF/p75诱导的细胞死亡与GDNF/RET促进的存活之间的负信号串扰。

TDAG51 Mediates Negative Signaling Crosstalk Between NGF/p75-Induced Cell Death and GDNF/RET-Promoted Survival in Motor Neuron-Derived Cells.

作者信息

Federicci Fernando, Ledda Fernanda, Paratcha Gustavo

机构信息

Laboratorio de Neurociencia Molecular y Celular, Instituto de Biología Celular y Neurociencias (IBCN)-CONICET-UBA, Facultad de Medicina, Universidad de Buenos Aires (UBA), Buenos Aires, CP1121, Argentina.

Fundación Instituto Leloir, Instituto de Investigaciones Bioquímicas de Buenos Aires (IIBBA)-CONICET, Buenos Aires, Argentina.

出版信息

Neurochem Res. 2025 Aug 13;50(4):257. doi: 10.1007/s11064-025-04518-4.

DOI:10.1007/s11064-025-04518-4
PMID:40802219
Abstract

GDNF is a potent survival and differentiation factor for motor neurons and other central and peripheral neuronal populations. While the signaling pathways by which GDNF promotes survival/differentiation have been relatively well established, the molecular mechanisms that restrict its biological effects remain unclear. In this study, we show that TDAG51 plays a role in regulating the GDNF-induced PI3K/AKT survival pathway. Our findings demonstrate that treatment of motor neuron-derived MN1 cells with high levels of nerve growth factor (NGF), a treatment that under oxidative conditions promotes p75 neurotrophin receptor (p75)-dependent motor neuron apoptosis, induces TDAG51, which in turn inhibits GDNF/RET-mediated AKT signaling. Moreover, knockdown of Tdag51 potentiates the ability of GDNF to activate AKT and provides protection against NGF-induced p75-dependent cell death in MN1 cells. Mechanistically, short-term GDNF stimulation of MN1 cells expressing high levels of TDAG51 promotes the translocation and recruitment of TDAG51 into detergent-resistant plasma membrane microdomains via a PI3K-dependent mechanism. The NGF/p75 signaling-induced increase in TDAG51 levels antagonizes AKT activation triggered by GDNF/RET signaling, likely by interfering with AKT´s interaction with PIP3. Taken together, our results demonstrate that TDAG51 is a key mediator of the balance between NGF-induced p75-promoted apoptotic pathway and GDNF/RET-mediated survival signaling in MN1 neuronal cells.

摘要

胶质细胞源性神经营养因子(GDNF)是一种对运动神经元以及其他中枢和外周神经元群体具有强大作用的存活和分化因子。虽然GDNF促进存活/分化的信号通路已相对明确,但限制其生物学效应的分子机制仍不清楚。在本研究中,我们表明TDAG51在调节GDNF诱导的PI3K/AKT存活通路中发挥作用。我们的研究结果表明,用高水平神经生长因子(NGF)处理运动神经元衍生的MN1细胞(在氧化条件下这种处理会促进p75神经营养因子受体(p75)依赖性运动神经元凋亡)会诱导TDAG51,而TDAG51反过来会抑制GDNF/RET介导的AKT信号传导。此外,敲低Tdag51可增强GDNF激活AKT的能力,并为MN1细胞提供针对NGF诱导的p75依赖性细胞死亡的保护。从机制上讲,短期用GDNF刺激表达高水平TDAG51的MN1细胞会通过PI3K依赖性机制促进TDAG51易位并募集到抗去污剂的质膜微结构域中。NGF/p75信号传导诱导的TDAG51水平升高拮抗了GDNF/RET信号传导触发的AKT激活,这可能是通过干扰AKT与PIP3的相互作用实现的。综上所述,我们的结果表明TDAG51是MN1神经元细胞中NGF诱导的p75促进的凋亡途径与GDNF/RET介导的存活信号之间平衡的关键调节因子。

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1
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Brain Res Bull. 2023 Mar;194:23-34. doi: 10.1016/j.brainresbull.2023.01.007. Epub 2023 Jan 18.
2
Stressing the endoplasmic reticulum response as a diagnostic tool for sepsis.强调内质网应激作为脓毒症的诊断工具。
Ann Transl Med. 2022 Aug;10(15):812. doi: 10.21037/atm-22-3120.
3
TDAG51-Deficiency Podocytes are Protected from High-Glucose-Induced Damage Through Nrf2 Activation via the AKT-GSK-3β Pathway.
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Inflammation. 2022 Aug;45(4):1520-1533. doi: 10.1007/s10753-022-01638-9. Epub 2022 Feb 17.
4
Lrig1 and Lrig3 cooperate to control Ret receptor signaling, sensory axonal growth and epidermal innervation.Lrig1 和 Lrig3 合作控制 Ret 受体信号、感觉轴突生长和表皮神经支配。
Development. 2021 Aug 15;148(16). doi: 10.1242/dev.197020. Epub 2021 Aug 12.
5
Loss of PHLDA1 has a protective role in OGD/R-injured neurons via regulation of the GSK-3β/Nrf2 pathway.PHLDA1 的缺失通过调节 GSK-3β/Nrf2 通路对 OGD/R 损伤神经元发挥保护作用。
Hum Exp Toxicol. 2021 Nov;40(11):1909-1920. doi: 10.1177/09603271211014596. Epub 2021 May 3.
6
Tetraspanin1 promotes NGF signaling by controlling TrkA receptor proteostasis.四跨膜蛋白 1 通过控制 TrkA 受体的稳态来促进神经生长因子信号转导。
Cell Mol Life Sci. 2020 Jun;77(11):2217-2233. doi: 10.1007/s00018-019-03282-3. Epub 2019 Aug 22.
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TDAG51 is a crucial regulator of maternal care and depressive-like behavior after parturition.TDAG51 是分娩后母性行为和类似抑郁行为的关键调节因子。
PLoS Genet. 2019 Jun 28;15(6):e1008214. doi: 10.1371/journal.pgen.1008214. eCollection 2019 Jun.
8
PHLDA1, another PHLDA family protein that inhibits Akt.PHLDA1,另一种 PHLDA 家族蛋白,能抑制 Akt。
Cancer Sci. 2018 Nov;109(11):3532-3542. doi: 10.1111/cas.13796. Epub 2018 Oct 13.
9
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