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Accelerated corrosion of marine-grade steel by a redox-active, cysteine-rich barnacle cement protein

机译:通过氧化还原活性,富含半胱氨酸的晶粒水泥蛋白加速了海洋级钢的腐蚀

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A serious consequence of marine biofouling on metallic structures is the insidious localized corrosion at the attachment sites of fouling organisms, such as barnacles. Albeit known, this phenomenon is poorly understood and currently mitigated using cost- and labor-intensive methods. In this work, we study the contribution to biofouling corrosion by a protein contained in the adhesive cement that barnacles secrete to attach to immersed substrates. We synthesize a specific cement protein of 20 kDa (CP20) from the barnacle Megabalanus rosa and study its corrosion behavior independently of the animal. Our results show that CP20 accelerates the corrosion rate of a marine-grade, mild steel from 0.7 to 1.6 mm year?1 . Through chemical analysis of the corrosion products, protein adsorption studies on the metal surface, and cyclic voltammetry, we elucidate an intricate corrosion mechanism that relies on the strong adhesive properties of CP20 and its electrochemically active disulfide groups. Our results have far-reaching implications on the prediction and mitigation of biocorrosion in marine applications. Moreover, the protein-induced corrosion mechanism unveiled in our study may be extended to other scenarios to understand the degradation of metal alloys used in food storage and biomedical implants.
机译:海洋生物污染对金属结构的严重后果是污垢生物的附件部位的阴险局部腐蚀,例如藤壶。虽然已知,这种现象是较差的理解和目前使用成本和劳动密集型方法来缓解。在这项工作中,我们研究蛋白质粘附水泥中含有的蛋白质的蛋白质腐蚀的贡献,该蛋白质分泌到浸渍基材上。我们从晶片Megabalanus Rosa综合20kDa(CP20)的特定水泥蛋白,并研究其独立于动物的腐蚀行为。我们的研究结果表明,CP20加速了海洋级,低碳钢的腐蚀速率,从0.7至1.6毫米年份达到了0.7毫米?1。通过腐蚀产物的化学分析,蛋白质吸附研究金属表面和循环伏安法,我们阐明了依赖于CP20的强粘合性能的复杂腐蚀机制及其电化学活性二硫化物基团。我们的结果对海洋应用中的生物腐蚀预测和减轻的影响感到深远。此外,在我们的研究中揭示的蛋白质诱导的腐蚀机制可以扩展到其他场景,以了解食品储存和生物医学植入物中使用的金属合金的降解。

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