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首页> 外文期刊>The Journal of Nutritional Biochemistry >Maternal iron supplementation attenuates the impact of perinatal copper deficiency but does not eliminate hypotriiodothyroninemia nor impaired sensorimotor development
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Maternal iron supplementation attenuates the impact of perinatal copper deficiency but does not eliminate hypotriiodothyroninemia nor impaired sensorimotor development

机译:孕妇补充铁可减轻围产期铜缺乏的影响,但不能消除三碘甲状腺素血症,也不损害感觉运动发育

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摘要

Copper, iron and iodine/thyroid hormone (TH) deficiencies disrupt brain development. Neonatal Cu deficiency causes Fe deficiency and may impact thyroidal status. One purpose of these studies was to determine the impact of improved iron status following Cu deficiency by supplementing the diet with iron. Cu deficiency was produced in pregnant Holtzman [Experiment 1 (Exp. 1)] or Sprague-Dawley [Experiment 2 (Exp. 2)] rats using two different diets. In Exp. 2, dietary Fe content was increased from 35 to 75 mg/kg according to NRC guidelines for reproduction. Cu-deficient (CuD) Postnatal Day 24 (P24) rats from both experiments demonstrated lower hemoglobin, serum Fe and serum triiodothyronine (T3) concentrations. However, brain Fe was lower only in CuD P24 rats in Exp. 1. Hemoglobin and serum Fe were higher in Cu adequate (CuA) P24 rats from Exp. 2 compared to Exp. 1. Cu- and TH-deficient rats from Exp. 2 exhibited a similar sensorimotor functional deficit following 3 months of repletion. Results suggest that Cu deficiency may impact TH status independent of its impact on iron biology. Further research is needed to clarify the individual roles for Cu, Fe and TH in brain development
机译:铜,铁和碘/甲状腺激素(TH)缺乏会破坏大脑发育。新生儿铜缺乏会导致铁缺乏,并可能影响甲状腺状态。这些研究的目的之一是通过向饮食中补充铁来确定缺铜后铁状态改善的影响。使用两种不同的饮食在怀孕的Holtzman [实验1(实验1)]或Sprague-Dawley [实验2(实验2)]大鼠中产生了铜缺乏症。在实验中如图2所示,根据NRC繁殖指南,饮食中的铁含量从35毫克/千克增加到75毫克/千克。来自两个实验的缺铜(CuD)产后第24天(P24)大鼠均显示出较低的血红蛋白,血清铁和血清三碘甲状腺素(T3)浓度。但是,仅在Exp中,仅在CuD P24大鼠中脑铁降低。 1. Exp。的Cu充足(CuA)P24大鼠的血红蛋白和血清Fe较高。 2与经验值相比。 1. Exp。缺乏Cu和TH的大鼠。补充3个月后,2表现出相似的感觉运动功能障碍。结果表明,铜缺乏可能会影响TH的状态,而不受其对铁生物学的影响。需要进一步研究以阐明铜,铁和TH在大脑发育中的个体作用

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