Gomez-Pinilla Fernando, Yang Xia
Department of Integrative Biology and Physiology, University of California, Los Angeles, Los Angeles, CA, 90095, USA; Department of Neurosurgery, UCLA Brain Injury Research Center, University of California, Los Angeles, Los Angeles, CA, 90095, USA.
Department of Integrative Biology and Physiology, University of California, Los Angeles, Los Angeles, CA, 90095, USA.
Prog Neurobiol. 2018 Oct;169:76-90. doi: 10.1016/j.pneurobio.2018.07.001. Epub 2018 Jul 27.
The surge in meals high in calories has prompted an epidemic of metabolic disorders around the world such that the elevated incidence of obese and diabetic individuals is alarming. New research indicates that metabolic disorders pose a risk for neurological and psychiatric conditions including stroke, Alzheimer's disease, Huntington's disease, and depression, all of which have a metabolic component. These relationships are rooted to a dysfunctional interaction between molecular processes that regulate energy metabolism and synaptic plasticity. The strong adaptive force of dietary factors on shaping the brain during evolution can be manipulated to transform the interaction between cell bioenergetics and epigenome with the aptitude to promote long-lasting brain healthiness. A thorough understanding of the association between the broad action of nutrients and brain fitness requires high level data processing empowered with the capacity to integrate information from a multitude of molecular entities and pathways. Nutritional systems biology is emerging as a viable approach to elucidate the multiple molecular layers involved in information processing in cells, tissues, and organ systems in response to diet. Information about the wide range of cellular and molecular interactions elicited by foods on the brain and cognitive plasticity is crucial for the design of public health initiatives for curtailing the epidemic of metabolic and brain disorders.
高热量食物的激增在全球范围内引发了代谢紊乱的流行,肥胖和糖尿病患者的发病率不断上升,令人担忧。新的研究表明,代谢紊乱会引发包括中风、阿尔茨海默病、亨廷顿舞蹈症和抑郁症在内的神经和精神疾病风险,所有这些疾病都有代谢成分。这些关系源于调节能量代谢和突触可塑性的分子过程之间的功能失调相互作用。在进化过程中,饮食因素对塑造大脑具有强大的适应力,可以通过操纵这种适应力来改变细胞生物能量学和表观基因组之间的相互作用,从而促进大脑的长期健康。要全面了解营养素的广泛作用与大脑健康之间的关联,需要具备整合来自众多分子实体和途径信息能力的高级数据处理。营养系统生物学正在成为一种可行的方法,以阐明细胞、组织和器官系统中响应饮食的信息处理所涉及的多个分子层面。食物对大脑和认知可塑性引发的广泛细胞和分子相互作用的信息,对于制定公共卫生倡议以遏制代谢和脑部疾病的流行至关重要。