Stig W Omholt, Raissa Lejneva, Maria Jose Lagartos Donate, Domenica Caponio, Evandro Fei Fang, Asgeir Kobro-Flatmoen
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引用次数: 0
摘要
在内侧皮层第二层,投射到齿状回和CA3/2海马区的主要神经元明显表达大糖蛋白realin(Re + ECLII神经元)。在啮齿类动物中,位于EC背侧极端的神经元表达水平最高,这些神经元与脊髓裂相邻,表达水平逐渐降低,离脊髓裂越来越远。在这里,我们检验了realin表达与神经元代谢率密切相关这一假说所推导出的两个预测。由于线粒体周转率是能量消耗的代表,有丝分裂率可以说也是能量消耗的代表。由于已知典型的嗜有丝分裂BCL2和腺病毒E1B 19-kDa-interacting蛋白3(Bnip3)的信使RNA在EC中高度表达,我们预测Bnip3将在Re + ECLII神经元中上调,而上调的程度将与这些神经元中realin的表达水平密切相关。我们证实了这两项预测,证明 Re + ECLII 神经元的能量需求通常很高,而且当神经元逐渐靠近菱形裂隙时,代谢率会有系统性的增加。耐人寻味的是,神经元能量需求的系统性变化表现出观察到的缫丝梯度,这似乎与神经元编码外部环境信息的空间和时间细节水平相一致。
Bnip3 expression is strongly associated with reelin-positive entorhinal cortex layer II neurons.
In layer II of the entorhinal cortex, the principal neurons that project to the dentate gyrus and the CA3/2 hippocampal fields markedly express the large glycoprotein reelin (Re + ECLII neurons). In rodents, neurons located at the dorsal extreme of the EC, which border the rhinal fissure, express the highest levels, and the expression gradually decreases at levels successively further away from the rhinal fissure. Here, we test two predictions deducible from the hypothesis that reelin expression is strongly correlated with neuronal metabolic rate. Since the mitochondrial turnover rate serves as a proxy for energy expenditure, the mitophagy rate arguably also qualifies as such. Because messenger RNA of the canonical promitophagic BCL2 and adenovirus E1B 19-kDa-interacting protein 3 (Bnip3) is known to be highly expressed in the EC, we predicted that Bnip3 would be upregulated in Re + ECLII neurons, and that the degree of upregulation would strongly correlate with the expression level of reelin in these neurons. We confirm both predictions, supporting that the energy requirement of Re + ECLII neurons is generally high and that there is a systematic increase in metabolic rate as one moves successively closer to the rhinal fissure. Intriguingly, the systematic variation in energy requirement of the neurons that manifest the observed reelin gradient appears to be consonant with the level of spatial and temporal detail by which they encode information about the external environment.
期刊介绍:
Brain Structure & Function publishes research that provides insight into brain structure−function relationships. Studies published here integrate data spanning from molecular, cellular, developmental, and systems architecture to the neuroanatomy of behavior and cognitive functions. Manuscripts with focus on the spinal cord or the peripheral nervous system are not accepted for publication. Manuscripts with focus on diseases, animal models of diseases, or disease-related mechanisms are only considered for publication, if the findings provide novel insight into the organization and mechanisms of normal brain structure and function.