Department of Neuroscience, Washington University Medical School, St. Louis, Missouri, USA.
Department of Anthropology, Washington University in St. Louis, St. Louis, Missouri, USA.
Evol Anthropol. 2020 Jul;29(4):201-211. doi: 10.1002/evan.21831. Epub 2020 Apr 24.
Because the human brain is considerably larger than those of other primates, it is not surprising that its energy requirements would far exceed that of any of the species within the order. Recently, the development of stem cell technologies and single-cell transcriptomics provides novel ways to address the question of what specific genomic changes underlie the human brain's unique phenotype. In this review, we consider what is currently known about human brain metabolism using a variety of methods from brain imaging and stereology to transcriptomics. Next, we examine novel opportunities that stem cell technologies and single-cell transcriptomics provide to further our knowledge of human brain energetics. These new experimental approaches provide the ability to elucidate the functional effects of changes in genetic sequence and expression levels that potentially had a profound impact on the evolution of the human brain.
由于人类大脑比其他灵长类动物的大脑大得多,因此其能量需求远远超过该目中任何一种物种也就不足为奇了。最近,干细胞技术和单细胞转录组学的发展为解决特定基因组变化是什么导致人类大脑独特表型这一问题提供了新的方法。在这篇综述中,我们使用从脑成像和体视学到转录组学的各种方法,考虑了目前已知的人类大脑代谢情况。接下来,我们研究了干细胞技术和单细胞转录组学提供的新机会,以进一步了解人类大脑的能量代谢。这些新的实验方法提供了阐明遗传序列和表达水平变化的功能影响的能力,这些变化可能对人类大脑的进化产生了深远的影响。