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转染了簇集蛋白和 S100B 的神经元细胞转录组阐明了冠海豹(Cystophora cristata)大脑对缺氧和氧化应激的保护机制。

Transcriptomes of Clusterin- and S100B-transfected neuronal cells elucidate protective mechanisms against hypoxia and oxidative stress in the hooded seal (Cystophora cristata) brain.

机构信息

Institute of Animal Cell and Systems Biology, Biocenter Grindel, University of Hamburg, 20146, Hamburg, Germany.

Institute of Organismic and Molecular Evolution, Molecular Genetics & Genome Analysis, Johannes Gutenberg University Mainz, 55128, Mainz, Germany.

出版信息

BMC Neurosci. 2022 Oct 15;23(1):59. doi: 10.1186/s12868-022-00744-6.

Abstract

BACKGROUND

The hooded seal (Cystophora cristata) exhibits impressive diving skills and can tolerate extended durations of asphyxia, hypoxia and oxidative stress, without suffering from irreversible neuronal damage. Thus, when exposed to hypoxia in vitro, neurons of fresh cortical and hippocampal tissue from hooded seals maintained their membrane potential 4-5 times longer than neurons of mice. We aimed to identify the molecular mechanisms underlying the intrinsic neuronal hypoxia tolerance. Previous comparative transcriptomics of the visual cortex have revealed that S100B and clusterin (apolipoprotein J), two stress proteins that are involved in neurological disorders characterized by hypoxic conditions, have a remarkably high expression in hooded seals compared to ferrets. When overexpressed in murine neuronal cells (HN33), S100B and clusterin had neuroprotective effects when cells were exposed to hypoxia. However, their specific roles in hypoxia have remained largely unknown.

METHODS

In order to shed light on potential molecular pathways or interaction partners, we exposed HN33 cells transfected with either S100B, soluble clusterin (sCLU) or nuclear clusterin (nCLU) to normoxia, hypoxia and oxidative stress for 24 h. We then determined cell viability and compared the transcriptomes of transfected cells to control cells. Potential pathways and upstream regulators were identified via Gene Ontology (GO) and Ingenuity Pathway Analysis (IPA).

RESULTS

HN33 cells transfected with sCLU and S100B demonstrated improved glycolytic capacity and reduced aerobic respiration at normoxic conditions. Additionally, sCLU appeared to enhance pathways for cellular homeostasis to counteract stress-induced aggregation of proteins. S100B-transfected cells sustained lowered energy-intensive synaptic signaling. In response to hypoxia, hypoxia-inducible factor (HIF) pathways were considerably elevated in nCLU- and sCLU-transfected cells. In a previous study, S100B and sCLU decreased the amount of reactive oxygen species and lipid peroxidation in HN33 cells in response to oxidative stress, but in the present study, these functional effects were not mirrored in gene expression changes.

CONCLUSIONS

sCLU and S100B overexpression increased neuronal survival by decreasing aerobic metabolism and synaptic signaling in advance to hypoxia and oxidative stress conditions, possibly to reduce energy expenditure and the build-up of deleterious reactive oxygen species (ROS). Thus, a high expression of CLU isoforms and S100B is likely beneficial during hypoxic conditions.

摘要

背景

冠海豹(Cystophora cristata)表现出令人印象深刻的潜水技能,能够耐受长时间的窒息、缺氧和氧化应激,而不会遭受不可逆的神经元损伤。因此,当在体外暴露于缺氧环境时,来自冠海豹的新鲜皮质和海马组织的神经元保持其膜电位的时间比来自小鼠的神经元长 4-5 倍。我们旨在确定内在神经元对缺氧耐受性的分子机制。以前对视觉皮层的比较转录组学研究表明,S100B 和簇蛋白(载脂蛋白 J),两种参与缺氧条件下神经紊乱的应激蛋白,在冠海豹中的表达水平明显高于雪貂。当在小鼠神经元细胞(HN33)中过表达时,S100B 和簇蛋白在细胞暴露于缺氧时具有神经保护作用。然而,它们在缺氧中的具体作用在很大程度上仍然未知。

方法

为了阐明潜在的分子途径或相互作用伙伴,我们将转染 S100B、可溶性簇蛋白(sCLU)或核簇蛋白(nCLU)的 HN33 细胞暴露于常氧、缺氧和氧化应激 24 小时。然后,我们测定细胞活力,并将转染细胞的转录组与对照细胞进行比较。通过基因本体论(GO)和Ingenuity 通路分析(IPA)确定潜在途径和上游调节剂。

结果

在常氧条件下,转染 sCLU 和 S100B 的 HN33 细胞表现出增强的糖酵解能力和降低的需氧呼吸。此外,sCLU 似乎增强了细胞内稳态的途径,以对抗应激诱导的蛋白质聚集。S100B 转染的细胞维持着降低能量密集型的突触信号。在缺氧反应中,nCLU 和 sCLU 转染细胞中的缺氧诱导因子(HIF)途径显著升高。在先前的研究中,S100B 和 sCLU 减少了 HN33 细胞中活性氧和脂质过氧化反应的量,但在本研究中,这些功能效应在基因表达变化中没有得到反映。

结论

sCLU 和 S100B 的过表达通过在缺氧和氧化应激条件之前降低需氧代谢和突触信号来增加神经元的存活,可能是为了减少能量消耗和有害活性氧(ROS)的积累。因此,在缺氧条件下,CLU 同工型和 S100B 的高表达可能是有益的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1da8/9571494/36247d158d4e/12868_2022_744_Fig1_HTML.jpg

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