• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

从收获到健康:开发生物强化主食面临的挑战及其对微量营养素状况的影响

From harvest to health: challenges for developing biofortified staple foods and determining their impact on micronutrient status.

作者信息

Hotz Christine, McClafferty Bonnie

机构信息

HarvestPlus in Washington, DC 20006-1002, USA.

出版信息

Food Nutr Bull. 2007 Jun;28(2 Suppl):S271-9. doi: 10.1177/15648265070282S206.

DOI:10.1177/15648265070282S206
PMID:17658073
Abstract

BACKGROUND

The use of conventional breeding techniques and biotechnology to improve the micronutrient quality of staple crops is a new strategy to address micronutrient deficiencies in developing countries. This strategy, referred to as "biofortification," is being developed and implemented through the international alliance of HarvestPlus to improve iron, zinc, and vitamin A status in low-income populations.

OBJECTIVE

The objective of this paper is to review the challenges faced by nutritionists to determine and demonstrate the ability of biofortified crops to have an impact on the nutritional and health status of target populations.

METHODS

We reviewed available published and unpublished information that is needed to design and evaluate this strategy, including issues related to micronutrient retention in staple foods, micronutrient bioavailability from plant foods, and evidence for the efficacy of high-micronutrient-content staple foods to improve micronutrient status.

RESULTS

Further information is needed on the retention of micronutrients in staple foods, in particular of provitamin A carotenoids, when stored and prepared under different conditions. The low bioavailability of iron from staple foods and the ability to demonstrate an impact on zinc status are specific challenges that need to be addressed. In target countries, infections and other micronutrient deficiencies may confound the ability to affect micronutrient status, and this must be taken into account in community-based studies.

CONCLUSIONS

Information to date suggests that biofortification has the potential to contribute to increased micronutrient intakes and improved micronutrient status. The success of this strategy will require the collaboration between health and agriculture sectors.

摘要

背景

利用传统育种技术和生物技术提高主粮作物的微量营养素质量,是解决发展中国家微量营养素缺乏问题的一项新战略。这一战略被称为“生物强化”,目前正通过“收获加”国际联盟开展和实施,以改善低收入人群的铁、锌和维生素A状况。

目的

本文旨在综述营养学家在确定和证明生物强化作物对目标人群营养和健康状况产生影响方面所面临的挑战。

方法

我们回顾了设计和评估该战略所需的已发表和未发表的可用信息,包括与主粮中微量营养素保留、植物性食物中微量营养素生物利用度以及高微量营养素含量主粮改善微量营养素状况的功效证据相关的问题。

结果

需要进一步了解在不同储存和加工条件下主粮中微量营养素的保留情况,特别是原维生素A类胡萝卜素。主食中铁的生物利用度低以及证明对锌状况有影响的能力是需要解决的具体挑战。在目标国家,感染和其他微量营养素缺乏可能会混淆影响微量营养素状况的能力,在基于社区的研究中必须考虑到这一点。

结论

迄今为止的信息表明,生物强化有潜力促进微量营养素摄入量的增加和微量营养素状况的改善。这一战略的成功将需要卫生和农业部门之间的合作。

相似文献

1
From harvest to health: challenges for developing biofortified staple foods and determining their impact on micronutrient status.从收获到健康:开发生物强化主食面临的挑战及其对微量营养素状况的影响
Food Nutr Bull. 2007 Jun;28(2 Suppl):S271-9. doi: 10.1177/15648265070282S206.
2
Bioavailability of iron, zinc, and provitamin A carotenoids in biofortified staple crops.生物强化主粮作物中铁、锌和维生素A原类胡萝卜素的生物利用率。
Nutr Rev. 2014 May;72(5):289-307. doi: 10.1111/nure.12108. Epub 2014 Apr 1.
3
Breeding strategies for biofortified staple plant foods to reduce micronutrient malnutrition globally.用于生物强化主食植物性食物的育种策略,以减少全球范围内的微量营养素营养不良。
J Nutr. 2002 Mar;132(3):495S-499S. doi: 10.1093/jn/132.3.495S.
4
Reducing Mineral and Vitamin Deficiencies through Biofortification: Progress Under HarvestPlus.通过生物强化减少矿物质和维生素缺乏:“收获计划”下的进展
World Rev Nutr Diet. 2018;118:112-122. doi: 10.1159/000484342. Epub 2018 Apr 13.
5
Biofortification: a new tool to reduce micronutrient malnutrition.生物强化:减少微量营养素营养不良的新工具。
Food Nutr Bull. 2011 Mar;32(1 Suppl):S31-40. doi: 10.1177/15648265110321S105.
6
The potential to improve zinc status through biofortification of staple food crops with zinc.通过主食作物锌生物强化来改善锌营养状况的潜力。
Food Nutr Bull. 2009 Mar;30(1 Suppl):S172-8. doi: 10.1177/15648265090301S109.
7
Micronutrient fortification of plants through plant breeding: can it improve nutrition in man at low cost?通过植物育种对植物进行微量营养素强化:它能否低成本地改善人类营养状况?
Proc Nutr Soc. 2003 May;62(2):403-11. doi: 10.1079/pns2003262.
8
Nutrient biofortification of food crops.粮食作物的营养生物强化
Annu Rev Nutr. 2009;29:401-21. doi: 10.1146/annurev-nutr-080508-141143.
9
Availability, production, and consumption of crops biofortified by plant breeding: current evidence and future potential.通过植物育种进行生物强化的作物的可获得性、生产及消费:当前证据与未来潜力
Ann N Y Acad Sci. 2017 Feb;1390(1):104-114. doi: 10.1111/nyas.13314.
10
Factors influencing micronutrient bioavailability in biofortified crops.影响生物强化作物中微量营养素生物有效性的因素。
Ann N Y Acad Sci. 2017 Feb;1390(1):74-87. doi: 10.1111/nyas.13301. Epub 2016 Dec 23.

引用本文的文献

1
Iron Deficiency and Iron Deficiency Anemia: A Comprehensive Overview of Established and Emerging Concepts.缺铁与缺铁性贫血:既定概念与新兴概念的全面概述
Pharmaceuticals (Basel). 2025 Jul 25;18(8):1104. doi: 10.3390/ph18081104.
2
Crops and rising atmospheric CO: friends or foes?农作物与大气中不断上升的二氧化碳:是友还是敌?
Philos Trans R Soc Lond B Biol Sci. 2025 May 29;380(1927):20240230. doi: 10.1098/rstb.2024.0230.
3
Sensory properties of selected biofortified common bean () varieties grown in Burundi.在布隆迪种植的选定生物强化普通豆品种的感官特性。
Food Sci Nutr. 2024 Feb 13;12(5):3199-3213. doi: 10.1002/fsn3.3988. eCollection 2024 May.
4
An Integrated Approach for Biofortification of Carotenoids in Cowpea for Human Nutrition and Health.一种综合方法用于豇豆中类胡萝卜素的生物强化以促进人类营养与健康
Plants (Basel). 2024 Jan 30;13(3):412. doi: 10.3390/plants13030412.
5
Optimization of a formula to develop iron-dense novel composite complementary flour with a reduced phytate/minerals molar ratio from teff-field pea-based blends using a D-optimal mixture design.使用D-最优混合设计优化配方,以开发一种铁含量高的新型复合互补面粉,该面粉由画眉草-豌豆混合粉制成,其植酸盐/矿物质摩尔比降低。
Front Nutr. 2023 Oct 11;10:1244571. doi: 10.3389/fnut.2023.1244571. eCollection 2023.
6
Zinc and Provitamin A Biofortified Maize Genotypes Exhibited Potent to Reduce Hidden-Hunger in Nepal.锌和维生素A原生物强化玉米基因型在尼泊尔显示出有效减少隐性饥饿的作用。
Plants (Basel). 2022 Oct 28;11(21):2898. doi: 10.3390/plants11212898.
7
Ensuring the Efficacious Iron Fortification of Foods: A Tale of Two Barriers.确保食物中铁的有效强化:两个障碍的故事。
Nutrients. 2022 Apr 12;14(8):1609. doi: 10.3390/nu14081609.
8
Transition From Targeted Breeding to Mainstreaming of Biofortification Traits in Crop Improvement Programs.从定向育种到作物改良计划中生物强化性状主流化的转变。
Front Plant Sci. 2021 Sep 14;12:703990. doi: 10.3389/fpls.2021.703990. eCollection 2021.
9
Heat and Drought Stress Impact on Phenology, Grain Yield, and Nutritional Quality of Lentil ( Medikus).高温和干旱胁迫对小扁豆(Medikus)物候、籽粒产量及营养品质的影响
Front Nutr. 2020 Nov 23;7:596307. doi: 10.3389/fnut.2020.596307. eCollection 2020.
10
Genomics-Integrated Breeding for Carotenoids and Folates in Staple Cereal Grains to Reduce Malnutrition.通过基因组学整合的主食谷物类胡萝卜素和叶酸育种以减少营养不良
Front Genet. 2020 May 29;11:414. doi: 10.3389/fgene.2020.00414. eCollection 2020.