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模拟微重力通过增强产酸加速了曲霉属对合金的腐蚀。

Simulated Microgravity Accelerates Alloy Corrosion by Aspergillus sp. via the Enhanced Production of Organic Acids.

机构信息

Key Laboratory for Space Bioscience and Space Biotechnology, School of Life Sciences, Northwestern Polytechnical Universitygrid.440588.5, Xi'an, Shaanxi Province, China.

State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering, Northwestern Polytechnical Universitygrid.440588.5, Xi'an, Shaanxi Province, China.

出版信息

Appl Environ Microbiol. 2022 Oct 11;88(19):e0091222. doi: 10.1128/aem.00912-22. Epub 2022 Sep 13.

Abstract

Metal corrosion caused by Aspergillus sp. was shown to be significantly enhanced on a space station, but its mechanism is still unknown. To simulate this on earth, the corrosion capability of A. carbonarius on five metal sheets was investigated under simulated microgravity. Also, the effect of metal ions on growth and organic acid production was determined. Results showed that could corrode all five types of metal, including Ti alloy, aluminum alloy, iron, and aluminum and copper sheet, and the corrosion was intensified under simulated microgravity. Energy dispersive X-ray spectrometry (EDS) analysis showed that metal ions enriched on spores, especially iron, aluminum ions, and copper ions, indicating that can use these metal ions. In particular, the content of oxalic acid was significantly increased after cocultured with five metal materials under simulated microgravity. Al, Fe, and Cu at the concentration of 0.3 mg/mL and Mg at 0.8 mg/mL significantly promoted the growth and oxalic acid and citric acid production of and A. niger under normal gravity and simulated microgravity. Comparing the impact of metal ions and metal sheets on the production of organic acids, it can be inferred that oxalic acid may dominate in the corrosion process of . In summary, molds promoted metal corrosion by producing organic acids, and the released metal ions will further promote the growth of mold and the accumulation of organic acids. This may be an important reason for the intensification of mold corrosion under microgravity. The space station and other long-term manned spacecrafts will experience the risk of microbial corrosion, especially mold, which will be harmful to the platform system and astronauts. Aspergillus sp. has been widely reported to produce organic acids that corrode and destroy materials, and the ability of these crafts to fly through space can be significantly affected. Research on the mechanism that causes enhanced corrosion ability of fungi in space stations is important to control their growth. Our research focuses on the interaction between mold and metals. In particular, it is found that metal ions promote mold growth and produce organic acids, thus accelerating mold corrosion of metals. Our results provide a new perspective for the control of fungal corrosion under simulated microgravity.

摘要

曲霉引起的金属腐蚀在空间站中被证明显著增强,但其机制仍不清楚。为了在地球上模拟这一现象,研究了在模拟微重力下黑曲霉对五种金属片的腐蚀能力,同时还确定了金属离子对生长和有机酸产生的影响。结果表明,黑曲霉能够腐蚀包括钛合金、铝合金、铁、铝和铜在内的所有五种类型的金属,并且在模拟微重力下腐蚀加剧。能谱分析(EDS)表明,金属离子富集在黑曲霉孢子上,特别是铁、铝离子和铜离子,表明黑曲霉可以利用这些金属离子。特别是,在模拟微重力下与五种金属材料共培养后,草酸的含量显著增加。在正常重力和模拟微重力下,浓度为 0.3mg/mL 的 Al、Fe 和 Cu 以及 0.8mg/mL 的 Mg 显著促进了黑曲霉和黑曲霉的生长以及草酸和柠檬酸的产生。比较金属离子和金属片对有机酸产生的影响,可以推断草酸可能在黑曲霉的腐蚀过程中起主导作用。总之,霉菌通过产生有机酸来促进金属腐蚀,而释放的金属离子将进一步促进霉菌的生长和有机酸的积累。这可能是霉菌在微重力下腐蚀加剧的一个重要原因。空间站和其他长期载人航天器将面临微生物腐蚀的风险,特别是霉菌,这将对平台系统和宇航员造成危害。曲霉已被广泛报道能产生腐蚀和破坏材料的有机酸,而这些飞行器在太空中的飞行能力会受到显著影响。研究空间站中真菌增强腐蚀能力的机制对于控制它们的生长非常重要。我们的研究重点是霉菌与金属之间的相互作用。特别是发现金属离子促进霉菌生长并产生有机酸,从而加速金属的霉菌腐蚀。我们的研究结果为模拟微重力下真菌腐蚀的控制提供了新的视角。

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本文引用的文献

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The Role of Metal Ions in Fungal Organic Acid Accumulation.金属离子在真菌有机酸积累中的作用
Microorganisms. 2021 Jun 10;9(6):1267. doi: 10.3390/microorganisms9061267.
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Copper Acquisition and Utilization in Fungi.真菌中的铜获取和利用。
Annu Rev Microbiol. 2017 Sep 8;71:597-623. doi: 10.1146/annurev-micro-030117-020444.
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Spaceflight and modeled microgravity effects on microbial growth and virulence.航天飞行和模拟微重力对微生物生长和毒力的影响。
Appl Microbiol Biotechnol. 2010 Jan;85(4):885-91. doi: 10.1007/s00253-009-2237-8. Epub 2009 Oct 22.
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Survey of environmental biocontamination on board the International Space Station.国际空间站上的环境生物污染调查。
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