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A review of recent developments in the speciation and location of arsenic and selenium in rice grain

机译:水稻籽粒中砷和硒的形态和位置的最新研究进展

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Rice is a staple food yet is a significant dietary source of inorganic arsenic, a class 1, nonthreshold carcinogen. Establishing the location and speciation of arsenic within the edible rice grain is essential for understanding the risk and for developing effective strategies to reduce grain arsenic concentrations. Conversely, selenium is an essential micronutrient and up to 1 billion people worldwide are selenium-deficient. Several studies have suggested that selenium supplementation can reduce the risk of some cancers, generating substantial interest in biofortifying rice. Knowledge of selenium location and speciation is important, because the anti-cancer effects of selenium depend on its speciation. Germanic acid is an arsenite/silicic acid analogue, and location of germanium may help elucidate the mechanisms of arsenite transport into grain. This review summarises recent discoveries in the location and speciation of arsenic, germanium, and selenium in rice grain using state-of-the-art mass spectrometry and synchrotron techniques, and illustrates both the importance of high-sensitivity and high-resolution techniques and the advantages of combining techniques in an integrated quantitative and spatial approach.
机译:大米是主食,但也是无机砷(第1类非阈值致癌物)的重要饮食来源。在食用米粒中建立砷的位置和形态对于了解风险和制定降低谷物中砷浓度的有效策略至关重要。相反,硒是必需的微量营养素,全世界多达10亿人口缺乏硒。多项研究表明,补充硒可以降低某些癌症的风险,从而引起人们对生物强化稻米的浓厚兴趣。了解硒的位置和形态很重要,因为硒的抗癌作用取决于其形态。锗酸是砷/硅酸的类似物,锗的位置可能有助于阐明砷运入谷物的机理。这篇综述使用最新的质谱和同步加速器技术总结了水稻籽粒中砷,锗和硒的位置和形态的最新发现,并阐明了高灵敏度和高分辨率技术的重要性以及在集成的定量和空间方法中结合技术的优势。

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