{"title":"Exploring the evolutionary landscape and structural resonances of ferritin with insights into functional significance in plant.","authors":"Fahmida Sultana, Ajit Ghosh","doi":"10.1016/j.biochi.2024.07.014","DOIUrl":null,"url":null,"abstract":"<p><p>The mineral iron plays a crucial role in facilitating the optimal functioning of numerous biological processes within the cellular environment. These processes involve the transportation of oxygen, energy production, immune system functioning, cognitive abilities, and muscle function. However, it is crucial to note that excessive levels of iron can result in oxidative damage within cells, primarily through Fenton reactions. Iron availability and toxicity present significant challenges that have been addressed through evolution. Ferritin is an essential protein that stores iron and is divided into different subfamilies, including DNA-binding proteins under starvation (Dps), bacterioferritin, and classical ferritin. Ferritin plays a critical role in maintaining cellular balance and protecting against oxidative damage. This study delves into ferritin's evolutionary dynamics across diverse taxa, emphasizing structural features and regulatory mechanisms. Insights into ferritin's evolution and functional diversity are gained through phylogenetic and structural analysis in bacterial Dps, bacterioferritin, and classical ferritin proteins. Additionally, the involvement of ferritin in plant stress responses and development is explored. Analysis of ferritin gene expression across various developmental stages and stress conditions provides insights into its regulatory roles. This comprehensive exploration enhances our understanding of ferritin's significance in plant biology, offering insights into its evolutionary history, structural diversity, and protective mechanisms against oxidative stress.</p>","PeriodicalId":93898,"journal":{"name":"Biochimie","volume":" ","pages":"217-230"},"PeriodicalIF":0.0000,"publicationDate":"2024-12-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Biochimie","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1016/j.biochi.2024.07.014","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"2024/7/22 0:00:00","PubModel":"Epub","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The mineral iron plays a crucial role in facilitating the optimal functioning of numerous biological processes within the cellular environment. These processes involve the transportation of oxygen, energy production, immune system functioning, cognitive abilities, and muscle function. However, it is crucial to note that excessive levels of iron can result in oxidative damage within cells, primarily through Fenton reactions. Iron availability and toxicity present significant challenges that have been addressed through evolution. Ferritin is an essential protein that stores iron and is divided into different subfamilies, including DNA-binding proteins under starvation (Dps), bacterioferritin, and classical ferritin. Ferritin plays a critical role in maintaining cellular balance and protecting against oxidative damage. This study delves into ferritin's evolutionary dynamics across diverse taxa, emphasizing structural features and regulatory mechanisms. Insights into ferritin's evolution and functional diversity are gained through phylogenetic and structural analysis in bacterial Dps, bacterioferritin, and classical ferritin proteins. Additionally, the involvement of ferritin in plant stress responses and development is explored. Analysis of ferritin gene expression across various developmental stages and stress conditions provides insights into its regulatory roles. This comprehensive exploration enhances our understanding of ferritin's significance in plant biology, offering insights into its evolutionary history, structural diversity, and protective mechanisms against oxidative stress.
矿物质铁在促进细胞环境中许多生物过程的最佳运作方面发挥着至关重要的作用。这些过程涉及氧气运输、能量生产、免疫系统功能、认知能力和肌肉功能。然而,必须注意的是,过量的铁会导致细胞内的氧化损伤,主要是通过芬顿反应。铁的可用性和毒性带来了巨大的挑战,而这些挑战已通过进化得到解决。铁蛋白是一种储存铁的重要蛋白质,分为不同的亚家族,包括饥饿状态下的 DNA 结合蛋白(Dps)、细菌铁蛋白和经典铁蛋白。它在维持细胞平衡和防止氧化损伤方面发挥着至关重要的作用。本研究深入探讨了铁蛋白在不同类群中的进化动态,强调了其结构特征和调控机制。通过对细菌 Dps、细菌铁蛋白和经典铁蛋白的系统发育和结构分析,深入了解铁蛋白的进化和功能多样性。此外,还探讨了铁蛋白在植物胁迫反应和发育中的参与。通过分析铁蛋白基因在不同发育阶段和胁迫条件下的表达,可以深入了解铁蛋白的调控作用。这一全面的探索增强了我们对铁蛋白在植物生物学中的意义的理解,为我们深入了解铁蛋白的进化历史、结构多样性以及对氧化应激的保护机制提供了帮助。