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糖尿病对小胶质细胞生理学的影响:体外、临床前和临床研究的系统评价。

Effects of diabetes on microglial physiology: a systematic review of in vitro, preclinical and clinical studies.

机构信息

Division of Physiology, School of Medicine, Universidad de Cadiz, Cadiz, Spain.

Instituto de Investigacion e Innovacion en Ciencias Biomedicas de la Provincia de Cadiz (INIBICA), Cadiz, Spain.

出版信息

J Neuroinflammation. 2023 Mar 3;20(1):57. doi: 10.1186/s12974-023-02740-x.

Abstract

Diabetes mellitus is a heterogeneous chronic metabolic disorder characterized by the presence of hyperglycemia, commonly preceded by a prediabetic state. The excess of blood glucose can damage multiple organs, including the brain. In fact, cognitive decline and dementia are increasingly being recognized as important comorbidities of diabetes. Despite the largely consistent link between diabetes and dementia, the underlying causes of neurodegeneration in diabetic patients remain to be elucidated. A common factor for almost all neurological disorders is neuroinflammation, a complex inflammatory process in the central nervous system for the most part orchestrated by microglial cells, the main representatives of the immune system in the brain. In this context, our research question aimed to understand how diabetes affects brain and/or retinal microglia physiology. We conducted a systematic search in PubMed and Web of Science to identify research items addressing the effects of diabetes on microglial phenotypic modulation, including critical neuroinflammatory mediators and their pathways. The literature search yielded 1327 records, including 18 patents. Based on the title and abstracts, 830 papers were screened from which 250 primary research papers met the eligibility criteria (original research articles with patients or with a strict diabetes model without comorbidities, that included direct data about microglia in the brain or retina), and 17 additional research papers were included through forward and backward citations, resulting in a total of 267 primary research articles included in the scoping systematic review. We reviewed all primary publications investigating the effects of diabetes and/or its main pathophysiological traits on microglia, including in vitro studies, preclinical models of diabetes and clinical studies on diabetic patients. Although a strict classification of microglia remains elusive given their capacity to adapt to the environment and their morphological, ultrastructural and molecular dynamism, diabetes modulates microglial phenotypic states, triggering specific responses that include upregulation of activity markers (such as Iba1, CD11b, CD68, MHC-II and F4/80), morphological shift to amoeboid shape, secretion of a wide variety of cytokines and chemokines, metabolic reprogramming and generalized increase of oxidative stress. Pathways commonly activated by diabetes-related conditions include NF-κB, NLRP3 inflammasome, fractalkine/CX3CR1, MAPKs, AGEs/RAGE and Akt/mTOR. Altogether, the detailed portrait of complex interactions between diabetes and microglia physiology presented here can be regarded as an important starting point for future research focused on the microglia-metabolism interface.

摘要

糖尿病是一种异质性的慢性代谢紊乱,其特征是存在高血糖,通常在出现糖尿病前期状态之前。过多的血糖会损害包括大脑在内的多个器官。事实上,认知能力下降和痴呆症越来越被认为是糖尿病的重要合并症。尽管糖尿病与痴呆症之间存在很大的关联,但糖尿病患者神经退行性变的根本原因仍有待阐明。几乎所有神经疾病的共同因素是神经炎症,这是中枢神经系统中一种复杂的炎症过程,主要由小胶质细胞协调,小胶质细胞是大脑中免疫系统的主要代表。在这种情况下,我们的研究问题旨在了解糖尿病如何影响大脑和/或视网膜小胶质细胞的生理学。我们在 PubMed 和 Web of Science 中进行了系统搜索,以确定研究糖尿病对小胶质细胞表型调节影响的项目,包括关键的神经炎症介质及其途径。文献检索得到了 1327 条记录,包括 18 项专利。根据标题和摘要,从 830 篇论文中筛选出 830 篇论文,其中 250 篇原始研究论文符合入选标准(有患者或严格无合并症糖尿病模型的原始研究文章,其中包括大脑或视网膜中小胶质细胞的直接数据),并通过向前和向后引用纳入了 17 篇额外的研究论文,共纳入 267 篇原始研究论文进行范围系统综述。我们回顾了所有研究糖尿病及其主要病理生理特征对小胶质细胞影响的原始出版物,包括体外研究、糖尿病的临床前模型和糖尿病患者的临床研究。尽管由于其适应环境的能力及其形态、超微结构和分子动力学的多样性,严格分类小胶质细胞仍然难以实现,但糖尿病调节小胶质细胞表型状态,引发包括活性标志物(如 Iba1、CD11b、CD68、MHC-II 和 F4/80)上调、形态向阿米巴样形状转变、分泌各种细胞因子和趋化因子、代谢重编程和氧化应激普遍增加在内的特定反应。糖尿病相关条件通常激活的途径包括 NF-κB、NLRP3 炎性小体、 fractalkine/CX3CR1、MAPKs、AGEs/RAGE 和 Akt/mTOR。总之,这里呈现的糖尿病与小胶质细胞生理学之间复杂相互作用的详细情况可以被视为未来专注于小胶质细胞-代谢界面的研究的重要起点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/187c/9983227/0e5dfeb80bbf/12974_2023_2740_Fig1_HTML.jpg

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