周细胞自噬缺陷会增强辐射诱导的衰老,从而促进辐射性脑损伤。

IF 16.4 1区 医学 Q1 CLINICAL NEUROLOGY
Na Luo, Wenjun Zhu, Xiaoyu Li, Min Fu, Yuanyuan Zhang, Feng Yang, Yiling Zhang, Ziqi Chen, Qiang Zhang, Bi Peng, Qianxia Li, Xin Chen, Yuanhui Liu, Guangyuan Hu, Xiaohong Peng
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引用次数: 0

摘要

背景:放射诱导的脑损伤(RBI)是接受颅脑放疗的癌症患者面临的一大挑战。然而,RBI 的分子机制和治疗策略仍无定论。随着对 RBI 机制的不断探索,越来越多的研究认为脑血管功能障碍是造成 RBI 相关认知障碍的关键因素。由于周细胞是神经血管单元的组成部分,目前的研究对周细胞在 RBI 中的具体作用和功能仍缺乏了解:方法:我们构建了一个体内 RBI 相关认知功能障碍小鼠模型和一个体外辐射诱导的周细胞模型,以探讨衰老的周细胞对血脑屏障和正常中枢神经系统细胞甚至胶质瘤细胞的影响。为了进一步阐明周细胞自噬对衰老的影响,我们在动物和细胞水平上探索了其分子机制。最后,我们使用衰老溶解药物和全反式维甲酸验证了周细胞衰老的清除,以研究辐射诱导的周细胞衰老的作用:结果:我们的研究结果表明,辐射诱导的周细胞衰老在血脑屏障功能障碍中起着关键作用,导致RBI和随后的认知能力下降。令人震惊的是,周细胞衰老还有助于胶质瘤细胞的生长和侵袭。我们进一步证明,周细胞自噬缺陷是周细胞衰老的重要调节机制。此外,雷帕霉素激活的自噬可以逆转周细胞的衰老。值得注意的是,通过溶解衰老的药物消除衰老细胞可显著缓解辐射诱导的认知功能障碍:我们的研究结果表明,周细胞衰老可能是RBI和胶质瘤进展的一个有前景的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Defective autophagy of pericytes enhances radiation-induced senescence promoting radiation brain injury.

Background: Radiation-induced brain injury (RBI) represents a major challenge for cancer patients undergoing cranial radiotherapy. However, the molecular mechanisms and therapeutic strategies of RBI remain inconclusive. With the continuous exploration of the mechanisms of RBI, an increasing number of studies have implicated cerebrovascular dysfunction as a key factor in RBI-related cognitive impairment. As pericytes are a component of the neurovascular unit, there is still a lack of understanding in current research about the specific role and function of pericytes in RBI.

Methods: We constructed a mouse model of RBI-associated cognitive dysfunction in vivo and an in vitro radiation-induced pericyte model to explore the effects of senescent pericytes on the blood-brain barrier (BBB) and normal central nervous system cells, even glioma cells. To further clarify the effects of pericyte autophagy on senescence, molecular mechanisms were explored at the animal and cellular levels. Finally, we validated the clearance of pericyte senescence by using a senolytic drug and all-trans retinoic acid to investigate the role of radiation-induced pericyte senescence.

Results: Our findings indicated that radiation-induced pericyte senescence plays a key role in BBB dysfunction, leading to RBI and subsequent cognitive decline. Strikingly, pericyte senescence also contributed to the growth and invasion of glioma cells. We further demonstrated that defective autophagy in pericytes is a vital regulatory mechanism for pericyte senescence. Moreover, autophagy activated by rapamycin could reverse pericyte senescence. Notably, the elimination of senescent cells by senolytic drugs significantly mitigated radiation-induced cognitive dysfunction.

Conclusions: Our results demonstrated that pericyte senescence may be a promising therapeutic target for RBI and glioma progression.

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来源期刊
Neuro-oncology
Neuro-oncology 医学-临床神经学
CiteScore
27.20
自引率
6.30%
发文量
1434
审稿时长
3-8 weeks
期刊介绍: Neuro-Oncology, the official journal of the Society for Neuro-Oncology, has been published monthly since January 2010. Affiliated with the Japan Society for Neuro-Oncology and the European Association of Neuro-Oncology, it is a global leader in the field. The journal is committed to swiftly disseminating high-quality information across all areas of neuro-oncology. It features peer-reviewed articles, reviews, symposia on various topics, abstracts from annual meetings, and updates from neuro-oncology societies worldwide.
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