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Abnormal Thiamine-Dependent Processes in Alzheimer’s Disease. Lessons from Diabetes

机译:阿尔茨海默病患中的异常硫胺素依赖过程。糖尿病的课程

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摘要

Reduced glucose metabolism is an invariant feature of Alzheimer’s Disease (AD) and an outstanding biomarker of disease progression. Glucose metabolism may be an attractive therapeutic target, whether the decline initiates AD pathophysiology or is a critical component of a cascade. The cause of cerebral regional glucose hypometabolism remains unclear. Thiamine-dependent processes are critical in glucose metabolism and are diminished in brains of AD patients at autopsy. Further, the reductions in thiamine-dependent processes are highly correlated to the decline in clinical dementia rating scales. In animal models, thiamine deficiency exacerbates plaque formation, promotes phosphorylation of tau and impairs memory. In contrast, treatment of mouse models of AD with the thiamine derivative benfotiamine diminishes plaques, decreases phosphorylation of tau and reverses memory deficits. Diabetes predisposes to AD, which suggests they may share some common mechanisms. Benfotiamine diminishes peripheral neuropathy in diabetic humans and animals. In diabetes, benfotiamine induces key thiamine-dependent enzymes of the pentose shunt to reduce accumulation of toxic metabolites including advanced glycation end products (AGE). Related mechanisms may lead to reversal of plaque formation by benfotiamine in animals. If so, the use of benfotiamine could provide a safe intervention to reverse biological and clinical processes of AD progression.
机译:葡萄糖代谢降低是阿尔茨海默氏病(AD)的不变特征,也是疾病进展的杰出生物标志物。葡萄糖代谢可能是有吸引力的治疗靶标,无论下降是引发AD病理生理还是级联反应的关键组成部分。脑区域葡萄糖代谢不足的原因尚不清楚。硫胺素依赖性过程对葡萄糖代谢至关重要,尸检时在AD患者的大脑中减弱。此外,硫胺素依赖性过程的减少与临床痴呆评分量表的减少高度相关。在动物模型中,硫胺素缺乏会加剧斑块形成,促进tau的磷酸化并损害记忆。相比之下,用硫胺素衍生物苯伏他胺治疗AD小鼠模型可减少斑块,减少tau的磷酸化并逆转记忆缺陷。糖尿病易患AD,这表明它们可能具有一些共同的机制。苯乙胺明可减轻糖尿病人和动物的周围神经病变。在糖尿病患者中,苯丙胺明会诱发戊糖分流的关键硫胺素依赖性酶,以减少包括高级糖化终产物(AGE)在内的有毒代谢产物的积累。相关的机制可能会导致动物体内苯丁胺导致的斑块形成逆转。如果是这样,则苯乙胺明的使用可以为逆转AD进展的生物学和临床过程提供安全的干预。

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