Characterising murine hippocampal iron homeostasis, in relation to markers of brain inflammation and metabolism, during ageing.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Metallomics Pub Date : 2022-10-08 DOI:10.1093/mtomcs/mfac064
Gaewyn Ellison, Lelinh Duong, Ashley Hollings, Daryl Howard, Connie Jackaman, Mark J Hackett
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Abstract

Metal ions (Fe, Cu, and Zn) are essential to a healthy brain function, with the amount, localisation, and chemical form often tightly controlled. Evidence points towards loss of metal ion homeostasis within the ageing brain; in particular brain Fe accumulation appears to be a hallmark of ageing, which may place the brain at a greater risk of neurodegenerative disease. Unfortunately, the cause or consequence of altered brain metal ion homeostasis during ageing remains unknown, and there is a lack of data comparing brain metal ion homeostasis with other events of the ageing process (e.g. brain metabolism, brain inflammation). This study has utilised a multi-modal approach that incorporated: X-ray fluorescence microscopy for elemental mapping of metal ion homeostasis, Perl's Fe histochemistry, FTIR spectroscopic biochemical imaging of lactate and protein aggregates, and immuno-fluorescence analysis of markers of brain inflammation and Fe storage proteins (heavy-chain ferritin, light-chain ferritin, and mitochondrial ferritin). Interestingly, while age-related Fe accumulation was observed in corpus callosum white matter of murine (C56BL/6J) brain tissue (concomitant with elevated levels of markers of brain inflammation and altered metabolism), Fe content was not altered within the hippocampus (a decrease in total Zn within the mossy fibres was observed). Ultimately, the results of this study demonstrate an important association between elevated brain Fe and brain inflammation during natural ageing. This study also highlights that future research is required to image different chemical forms of Fe with respect to changes in brain metabolism and inflammation, as well as localising these changes to specific cell types.

表征小鼠海马铁稳态,与大脑炎症和代谢标志物有关,在衰老过程中。
金属离子(铁、铜和锌)对健康的大脑功能至关重要,其数量、位置和化学形态往往受到严格控制。有证据表明,老化的大脑会失去金属离子平衡;特别是大脑铁的积累似乎是衰老的标志,这可能使大脑面临更大的神经退行性疾病的风险。不幸的是,衰老过程中脑金属离子稳态改变的原因或后果仍然未知,并且缺乏将脑金属离子稳态与衰老过程中的其他事件(如脑代谢、脑炎症)进行比较的数据。本研究采用了多模式方法,包括:用于金属离子稳态元素定位的x射线荧光显微镜,Perl的铁组织化学,乳酸和蛋白质聚集体的FTIR光谱生化成像,以及脑炎症和铁储存蛋白(重链铁蛋白,轻链铁蛋白和线粒体铁蛋白)标记物的免疫荧光分析。有趣的是,虽然在小鼠(C56BL/6J)脑组织的胼胝体白质中观察到与年龄相关的铁积累(同时伴有脑炎症标志物水平升高和代谢改变),但海马体内的铁含量并未改变(观察到苔藓纤维中总锌减少)。最终,这项研究的结果表明,在自然衰老过程中,脑铁含量升高与脑炎症之间存在重要联系。这项研究还强调,未来的研究需要对不同化学形式的铁在脑代谢和炎症中的变化进行成像,并将这些变化定位到特定的细胞类型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Metallomics
Metallomics 生物-生化与分子生物学
CiteScore
7.00
自引率
5.90%
发文量
87
审稿时长
1 months
期刊介绍: Global approaches to metals in the biosciences
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