Department of Life Science, National Taiwan Normal University, Taipei City, Taiwan, ROC.
Comp Biochem Physiol A Mol Integr Physiol. 2013 Jun;165(2):106-18. doi: 10.1016/j.cbpa.2013.01.025. Epub 2013 Feb 4.
The present study provides in vivo evidence to prove the functional plasticity of monocarboxylate transporters (MCTs) in brains of vertebrates using zebrafish (Danio rerio) as a model. In the mammalian central nervous system (CNS), energy demands are largely met by oxidation of glucose. In recent studies, in addition to glucose, lactate is also considered an energy substrate for the CNS. Astrocytes were demonstrated to play an important role in transporting lactate as metabolic substrate from capillaries to neurons through monocarboxylate transporters (MCTs). The present study was to use zebrafish as an in vivo model to test the hypothesis of whether the various MCT homologs play differential roles in the development and functioning of the CNS. Using RT-PCR and double in situ hybridization coupling with immunocytochemical staining experiments, zebrafish MCTs1-4 were all found to be expressed in brains of embryos, and were further elucidated to be localized in both neurons and astrocytes. Loss-of-functions by morpholino knockdown further provided in vivo evidences to infer that zMCTs1, -2, and -4 may be involved in metabolite transport and functioning in the developing brain. Subsequent rescue experiments with capped mRNAs of specific isoforms further indicated that zMCT2 is an indispensable monocarboxylate-transporting route for CNS development and function in zebrafish. This information is essential for identifying proper candidates of MCT isoforms that are involved in the development and functioning of the CNS.
本研究以斑马鱼(Danio rerio)为模型,提供了体内证据证明脊椎动物脑中单羧酸转运蛋白(MCTs)的功能可塑性。在哺乳动物中枢神经系统(CNS)中,能量需求主要通过葡萄糖的氧化来满足。在最近的研究中,除葡萄糖外,乳酸也被认为是 CNS 的能量底物。星形胶质细胞被证明在通过单羧酸转运蛋白(MCTs)将代谢底物乳酸从毛细血管转运到神经元中发挥重要作用。本研究旨在使用斑马鱼作为体内模型,测试各种 MCT 同源物是否在 CNS 的发育和功能中发挥不同作用的假设。通过 RT-PCR 和双原位杂交结合免疫细胞化学染色实验,发现斑马鱼 MCTs1-4 在胚胎脑中均有表达,并进一步阐明其定位于神经元和星形胶质细胞中。通过形态发生素敲低的功能丧失实验进一步提供了体内证据,推断 zMCTs1、-2 和 -4 可能参与代谢物的转运和发育中大脑的功能。随后用特定同工型的封闭 mRNA 进行的挽救实验进一步表明,zMCT2 是斑马鱼 CNS 发育和功能所必需的单羧酸转运途径。这些信息对于确定参与 CNS 发育和功能的 MCT 同工型的合适候选物至关重要。