自噬和炎症与衰老的关系

IF 0.2 Q4 Biochemistry, Genetics and Molecular Biology
Hrushikesh Bendale, Kavitha Thirumurugan
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引用次数: 0

摘要

自噬是细胞通过溶酶体降解受损细胞器并循环利用细胞内大分子和细胞器产生ATP的分解代谢过程。自噬清除在炎性小体形成中具有潜在作用的细胞质分子。衰老过程中的高炎症可导致炎性体的形成,从而导致多种炎症反应介导的疾病。受损的线粒体可通过活性氧诱导细胞氧化应激,从而激活炎性体。因此,自噬诱导的炎性小体抑制可以减轻氧化应激。衰老过程中的炎症伴随着阿尔茨海默病和帕金森病等疾病。衰老过程中自噬功能的下降是细胞胞质细胞器清除不当,诱发炎症的主要原因。自噬可以通过抑制炎症基因来减缓细胞衰老和许多其他疾病。此外,ROS可以直接激活NLRP3等在衰老过程中增加的促炎通路。抑制炎症小体形成的NLRP3基因可抑制与自噬直接相关的PI3K/mTOR/AKT通路。这种对NLRP3的抑制促进了细胞的寿命。从各种生物数据库中挖掘这些通路之间的相互关系,可以解决自噬与炎症通路之间的复杂联系,从而阐明其在衰老中的作用。通过使用各种生物信息学工具,如DAVID和CYTOSPACE,字符串匹配将确认和支持途径之间的关系。这将使我们更好地了解自噬、炎症和衰老的相关途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Association of Autophagy and Inflammation with Aging
Autophagy is a catabolic process by which cells degrade damaged organelles via lysosomal degradation and recycle intracellular macromolecules and organelles to produce ATP. Autophagy clears cytosolic molecules that have a potential role in inflammasome formation. Hyperinflammation in the aging process can cause inflammasome formation that results in multiple inflammatory response-mediated diseases. Damaged mitochondria may induce oxidative stress in cells via ROS which leads to the activation of the inflammasome. Therefore, mitophagy-induced suppression of inflammasome can reduce oxidative stress. Inflammation in aging comes with diseases such as Alzheimer’s disease and Parkinson’s disease. Decreased function of autophagy in aging is the main reason behind the improper clearing of cytosolic organelles and induction of inflammation. Autophagy can slow down aging in cells and many other disorders by suppressing inflammatory genes. Also, ROS can directly activate NLRP3 and other proinflammatory pathways that increase in aging. Suppression of the NLRP3 gene which is responsible for inflammasome formation showed inhibition of the PI3K/mTOR/AKT pathway, which is directly linked to autophagy. This suppression of NLRP3 promoted longevity in cells. The interrelation between such pathway data mining from various biological databases can resolve the complex interconnection between autophagy and inflammatory pathways which can elucidate its role in aging. By using various bioinformatics tools such as DAVID and CYTOSPACE, string matching will confirm and support a relationship between the pathways. This will give a better level of understanding of interrelated pathways of autophagy, inflammation and aging.
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来源期刊
Research Journal of Biotechnology
Research Journal of Biotechnology 工程技术-生物工程与应用微生物
CiteScore
0.60
自引率
0.00%
发文量
192
审稿时长
1.5 months
期刊介绍: We invite you to contribute Research Papers / Short Communications / Review Papers: -In any field of Biotechnology, Biochemistry, Microbiology and Industrial Microbiology, Soil Technology, Agriculture Biotechnology. -in any field related to Food Biotechnology, Nutrition Biotechnology, Genetic Engineering and Commercial Biotechnology. -in any field of Biotechnology related to Drugs and Pharmaceutical products for human beings, animals and plants. -in any field related to Environmental Biotechnolgy, Waste Treatment of Liquids, Soilds and Gases; Sustainability. -in inter-realted field of Chemical Sciences, Biological Sciences, Environmental Sciences and Life Sciences. -in any field related to Biotechnological Engineering, Industrial Biotechnology and Instrumentation. -in any field related to Nano-technology. -in any field related to Plant Biotechnology.
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