University/British Heart Foundation Centre for Cardiovascular Science, University of Edinburgh, The Queen's Medical Research Institute, 47 Little France Crescent, Edinburgh, EH16 4TJ, UK.
Institute of Metabolism and Systems Research, College of Medical and Dental Sciences, University of Birmingham, Birmingham, UK.
Sci Rep. 2021 Apr 27;11(1):9092. doi: 10.1038/s41598-021-88757-9.
Neonatal encephalopathy due to hypoxia-ischemia is associated with adverse neurodevelopmental effects. The involvement of branched chain amino acids (BCAAs) in this is largely unexplored. Transport of BCAAs at the plasma membrane is facilitated by SLC7A5/SLC3A2, which increase with hypoxia. We hypothesized that hypoxia would alter BCAA transport and metabolism in the neonatal brain. We investigated this using an organotypic forebrain slice culture model with, the SLC7A5/SLC3A2 inhibitor, 2-Amino-2-norbornanecarboxylic acid (BCH) under normoxic or hypoxic conditions. We subsequently analysed the metabolome and candidate gene expression. Hypoxia was associated with increased expression of SLC7A5 and SLC3A2 and an increased tissue abundance of BCAAs. Incubation of slices with C-leucine confirmed that this was due to increased cellular uptake. BCH had little effect on metabolite abundance under normoxic or hypoxic conditions. This suggests hypoxia drives increased cellular uptake of BCAAs in the neonatal mouse forebrain, and membrane mediated transport through SLC7A5 and SLC3A2 is not essential for this process. This indicates mechanisms exist to generate the compounds required to maintain essential metabolism in the absence of external nutrient supply. Moreover, excess BCAAs have been associated with developmental delay, providing an unexplored mechanism of hypoxia mediated pathogenesis in the developing forebrain.
由于缺氧缺血导致的新生儿脑病与不良的神经发育影响有关。支链氨基酸(BCAAs)在此过程中的作用在很大程度上尚未得到探索。SLC7A5/SLC3A2 促进 BCAAs 在质膜中的转运,其表达会随着缺氧而增加。我们假设缺氧会改变新生儿大脑中 BCAAs 的转运和代谢。我们使用器官型大脑前脑切片培养模型进行了研究,该模型使用 SLC7A5/SLC3A2 抑制剂 2-氨基-2-降冰片烷羧酸(BCH)在常氧或缺氧条件下进行实验。随后,我们分析了代谢组学和候选基因表达。缺氧与 SLC7A5 和 SLC3A2 的表达增加以及 BCAAs 的组织丰度增加有关。用 C-亮氨酸孵育切片证实,这是由于细胞摄取增加所致。BCH 在常氧或缺氧条件下对代谢物丰度几乎没有影响。这表明缺氧会增加新生小鼠前脑中 BCAAs 的细胞摄取,而通过 SLC7A5 和 SLC3A2 介导的膜转运对于该过程并非必需。这表明存在机制可以产生维持必需代谢所需的化合物,即使没有外部营养供应也是如此。此外,BCAAs 过多与发育迟缓有关,为缺氧介导的发育中前脑发病机制提供了一个未被探索的机制。