Towards Iron Biofortification of Banana (Musa spp.): A Comparative Study of Fruit Mineral Micronutrient Concentrations and Phylogenetic Insights Into Iron Homeostasis

IF 4.5 2区 农林科学 Q2 FOOD SCIENCE & TECHNOLOGY
Tal Cooper, Amba Phillips, Jeff Daniells, Zachary Stewart, Moses Matovu, Robert Harding, James Langham Dale, Jean-Yves Paul
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Abstract

Iron deficiency anemia (IDA) is alarmingly prevalent in sub-Saharan Africa, where populations often rely on nutrient-poor staple crops as their primary energy source. The East African highland banana (EAHB), a staple for millions in Uganda and most of East Africa's highlands, contains insufficient iron to meet dietary needs. Based on average daily consumption and recommended iron intake, biofortification of EAHBs with upwards of 18.3 mg/kg DW of iron could significantly reduce IDA in these communities. A comprehensive analysis of 43 Musa genotypes revealed that, although iron concentrations in banana fruit pulp were generally low, significantly higher concentrations were found in the pulp of wild species and Fe'i cultivars compared with other genome groups. In other tissues, such as the peel and seeds of wild fertile diploids, iron concentrations were consistently higher, underscoring the critical role of this mineral in photosynthesis and seed development. Genomic and phylogenetic analyses across five selected banana cultivars identified 37 genes associated with iron homeostasis, spanning six distinct protein families, and revealed distinct differences between Fe'i and the commercially important cultivar, Cavendish. A tissue-specific differential gene expression study in Cavendish further identified key regulators of iron homeostasis in this crop. These findings provide a foundational resource for the biofortification of this important fruit and contribute to addressing a persistent global health challenge.

Abstract Image

香蕉(Musa spp.)的铁生物强化:水果矿物质微量元素浓度的比较研究和铁稳态的系统发育见解
缺铁性贫血(IDA)在撒哈拉以南非洲的流行程度令人震惊,那里的人口往往依赖营养贫乏的主粮作物作为主要能源来源。东非高地香蕉(EAHB)是乌干达和大部分东非高地地区数百万人的主食,它所含的铁不足以满足饮食需求。根据平均每日食用量和推荐铁摄入量,对EAHBs进行生物强化,添加18.3 mg/kg DW以上的铁可以显著减少这些社区的IDA。对43个Musa基因型的综合分析表明,尽管香蕉果肉中的铁含量普遍较低,但野生种和Fe'i栽培品种的果肉铁含量明显高于其他基因组群。在其他组织中,如野生可育二倍体的果皮和种子,铁浓度一直较高,强调了这种矿物质在光合作用和种子发育中的关键作用。对5个选定香蕉品种的基因组和系统发育分析鉴定出37个与铁稳态相关的基因,跨越6个不同的蛋白质家族,并揭示了Fe'i和具有重要商业价值的品种Cavendish之间的明显差异。一项组织特异性差异基因表达研究进一步确定了卡文迪什作物铁稳态的关键调控因子。这些发现为这种重要水果的生物强化提供了基础资源,并有助于解决持续存在的全球健康挑战。
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来源期刊
Food and Energy Security
Food and Energy Security Energy-Renewable Energy, Sustainability and the Environment
CiteScore
9.30
自引率
4.00%
发文量
76
审稿时长
19 weeks
期刊介绍: Food and Energy Security seeks to publish high quality and high impact original research on agricultural crop and forest productivity to improve food and energy security. It actively seeks submissions from emerging countries with expanding agricultural research communities. Papers from China, other parts of Asia, India and South America are particularly welcome. The Editorial Board, headed by Editor-in-Chief Professor Martin Parry, is determined to make FES the leading publication in its sector and will be aiming for a top-ranking impact factor. Primary research articles should report hypothesis driven investigations that provide new insights into mechanisms and processes that determine productivity and properties for exploitation. Review articles are welcome but they must be critical in approach and provide particularly novel and far reaching insights. Food and Energy Security offers authors a forum for the discussion of the most important advances in this field and promotes an integrative approach of scientific disciplines. Papers must contribute substantially to the advancement of knowledge. Examples of areas covered in Food and Energy Security include: • Agronomy • Biotechnological Approaches • Breeding & Genetics • Climate Change • Quality and Composition • Food Crops and Bioenergy Feedstocks • Developmental, Physiology and Biochemistry • Functional Genomics • Molecular Biology • Pest and Disease Management • Post Harvest Biology • Soil Science • Systems Biology
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