SerpinA3N 调节小鼠衰老星形胶质细胞的分泌表型,导致神经退行性变。

Xiaojuan Han, Qing Lei, Huanhuan Liu, Tianying Zhang, Xingchun Gou
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引用次数: 0

摘要

正常衰老过程中大脑中衰老星形胶质细胞的积累是阿尔茨海默病(AD)等与年龄相关的神经退行性疾病的驱动因素。然而,AD 中星形胶质细胞衰老的分子机制尚未完全明了。在这项研究中,我们证实衰老的星形胶质细胞显示出一种被称为衰老相关分泌表型(SASP)的分泌表型,这种表型与各种促炎因子的上调和神经营养生长因子(如 NGF 和 BDNF)的下调有关,导致星形胶质细胞介导的神经保护功能下降和神经变性风险增加。我们发现,在体外连续传代或经 H2O2 处理后,衰老的原代小鼠星形胶质细胞中 SerpinA3N 上调。对其潜在机制的进一步探索发现,SerpinA3N的缺乏可通过抑制SASP相关因子和诱导神经营养性生长因子来防止衰老星形胶质细胞诱导的神经退行性变。AD模型小鼠的脑组织中衰老星形胶质细胞数量增加。此外,衰老星形胶质细胞在体外和体内都表现出上调的 SerpinA3N 表达,证实了我们的细胞模型再现了这些神经退行性疾病的体内病理学。总之,我们的研究揭示了一种调控衰老星形胶质细胞分泌表型的新型分子策略,并暗示 SerpinA3N 及其调控机制可能是延缓大脑衰老和衰老相关神经退行性疾病的潜在靶点。
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SerpinA3N Regulates the Secretory Phenotype of Mouse Senescent Astrocytes Contributing to Neurodegeneration.

Senescent astrocyte accumulation in the brain during normal aging is a driver of age-related neurodegenerative diseases such as Alzheimer's disease. However, the molecular events underlying astrocyte senescence in Alzheimer's disease are not fully understood. In this study, we demonstrated that senescent astrocytes display a secretory phenotype known as the senescence-associated secretory phenotype (SASP), which is associated with the upregulation of various proinflammatory factors and the downregulation of neurotrophic growth factors (eg, NGF and BDNF), resulting in a decrease in astrocyte-mediated neuroprotection and increased risk of neurodegeneration. We found that SerpinA3N is upregulated in senescent primary mouse astrocytes after serial passaging in vitro or by H2O2 treatment. Further exploration of the underlying mechanism revealed that SerpinA3N deficiency protects against senescent astrocyte-induced neurodegeneration by suppressing SASP-related factors and inducing neurotrophic growth factors. Brain tissues from Alzheimer's disease model mice possessed increased numbers of senescent astrocytes. Moreover, senescent astrocytes exhibited upregulated SerpinA3N expression in vitro and in vivo, confirming that our cell model recapitulated the in vivo pathology of these neurodegenerative diseases. Altogether, our study reveals a novel molecular strategy to regulate the secretory phenotype of senescent astrocytes and implies that SerpinA3N and its regulatory mechanisms may be potential targets for delaying brain aging and aging-related neurodegenerative diseases.

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