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海藻糖诱导小鼠膀胱平滑肌过度收缩:氧化应激和细胞衰老的作用

Trehalose induces bladder smooth muscle hypercontractility in mice: involvement of oxidative stress and cellular senescence.

作者信息

Lemos Guilherme, Fernandes Cícera Madri Alves de Souza, Watanabe Ingrid Kazue Mizuno, Delbin Maria Andreia, Silva Fábio Henrique, Calmasini Fabiano Beraldi

机构信息

Department of Pharmacology, Escola Paulista de Medicina, Universidade Federal de São Paulo, São Paulo, Brazil.

Department of Medicine, Nephrology Division, Universidade Federal de São Paulo, São Paulo, Brazil.

出版信息

Front Physiol. 2025 Apr 4;16:1572139. doi: 10.3389/fphys.2025.1572139. eCollection 2025.

Abstract

Autophagy, a conserved catabolic process, is critical for cellular homeostasis and its dysregulation has been implicated in a number of conditions including hypertension, obesity and bladder dysfunctions. The autophagy inducer trehalose has shown promise in treating diseases; however, some studies have reported detrimental effects in vascular tissue under health conditions. In the bladder, the effects of trehalose remain unclear. Therefore, in the present study, male C57BL6/JUnib mice (8 weeks old) were divided into control and trehalose-treated groups (120 mg/mouse/day via gavage) for 4 weeks. After treatment, bladders were harvested for functional, biochemical, and molecular analyses. The trehalose treatment increased the bladder smooth muscle (BSM) contractility to carbachol (CCh), without altering relaxation response to isoproterenol. The CCh-induced BSM hypercontractility was completely abolished by the incubation of apocynin and diphenyleneiodonium (DPI), implicating NADPH oxidase-derived reactive oxygen species (ROS) on this process. Accordingly, increased levels of superoxide anion (O) were found in the urothelial layer, but not in BSM, of trehalose-treated mice. Trehalose also increased senescence-associated β-galactosidase activity in the bladder but failed to upregulate autophagy-related proteins LAMP1 and Beclin-1 in the bladder. Collectively, we show for the first time that trehalose induces BSM hypercontractility in mice, linked to increased levels of O and senescent cell, independently of autophagy activation. Therefore, trehalose administration is an effective model for studying BSM hypercontractility in mice, particularly associated with oxidative stress and cellular senescence.

摘要

自噬是一种保守的分解代谢过程,对细胞内稳态至关重要,其失调与包括高血压、肥胖和膀胱功能障碍在内的多种病症有关。自噬诱导剂海藻糖在治疗疾病方面显示出前景;然而,一些研究报道了其在健康状况下对血管组织的有害影响。在膀胱中,海藻糖的作用仍不清楚。因此,在本研究中,将雄性C57BL6/JUnib小鼠(8周龄)分为对照组和海藻糖处理组(通过灌胃给予120mg/小鼠/天),持续4周。处理后,收集膀胱进行功能、生化和分子分析。海藻糖处理增加了膀胱平滑肌(BSM)对卡巴胆碱(CCh)的收缩力,而不改变对异丙肾上腺素的舒张反应。阿朴吗啡和二苯基碘鎓(DPI)孵育可完全消除CCh诱导的BSM过度收缩,这表明在此过程中NADPH氧化酶衍生的活性氧(ROS)起作用。相应地,在海藻糖处理小鼠的尿路上皮层中发现超氧阴离子(O)水平升高,但在BSM中未发现。海藻糖还增加了膀胱中衰老相关β-半乳糖苷酶的活性,但未能上调膀胱中自噬相关蛋白LAMP1和Beclin-1的表达。总体而言,我们首次表明海藻糖可诱导小鼠BSM过度收缩,这与O水平升高和衰老细胞增加有关,与自噬激活无关。因此,给予海藻糖是研究小鼠BSM过度收缩的有效模型,特别是与氧化应激和细胞衰老相关的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26ec/12006093/0185e926d885/fphys-16-1572139-g001.jpg

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