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相关概念视频

Protein Networks02:26

Protein Networks

4.0K
An organism can have thousands of different proteins, and these proteins must cooperate to ensure the health of an organism. Proteins bind to other proteins and form complexes to carry out their functions. Many proteins interact with multiple other proteins creating a complex network of protein interactions.
These interactions can be represented through maps depicting protein-protein interaction networks, represented as nodes and edges. Nodes are circles that are representative of a protein,...
4.0K
Oligosaccharide Assembly01:24

Oligosaccharide Assembly

2.9K
Protein glycosylation starts in the ER lumen and continues in the Golgi apparatus. Glycosyltransferases catalyze the addition of sugar molecules or glycosylation of proteins. Usually, these enzymes add sugars to the hydroxyl groups of selected serine or threonine residues to form O-linked glycans or the amino groups of asparagine residues to form N-linked glycans. Different positions on the same polypeptide chain can contain differently linked glycans.
Multiple sugar molecules that may or may...
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Protein-protein Interfaces02:04

Protein-protein Interfaces

12.6K
Many proteins form complexes to carry out their functions, making protein-protein interactions (PPIs) essential for an organism's survival. Most PPIs are stabilized by numerous weak noncovalent chemical forces. The physical shape of the interfaces determines the way two proteins interact. Many globular proteins have closely-matching shapes on their surfaces, which form a large number of weak bonds. Additionally, many PPIs occur between two helices or between a surface cleft and a...
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Proteoglycans01:05

Proteoglycans

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Glycans, a class of complex heterogeneous molecules, can be covalently attached to proteins to form glycosylated proteins that regulate various physiological and pathological processes. Glycosylated proteins or glycoproteins comprise N-linked and O-linked oligosaccharides. O-glycosylation is the most common type of protein glycosylation. Here, glycans attach to the oxygen atom of the hydroxyl groups of Serine or Threonine residues. O-linked glycosylation occurs later in protein processing,...
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有注释的蛋白质网络分析,将口腔疾病联系起来.

Mukesh Kumar Sharma1,2, Vivek Kumar Srivastav1, Chetan Kumar Joshi3

  • 1Department of Biotechnology, Maharaj Vinayak Global University, Jaipur Rajasthan, India.

Bioinformation
|June 16, 2023
PubMed
概括

口腔癌是一个日益严重的全球健康问题. 这项研究绘制了口腔细菌中的蛋白相互作用图,确定了口腔疾病药物发现的潜在治疗点.

关键词:
网络化 网络化 网络化弦乐器 弦乐器细菌 细菌 细菌是一种细菌.囊镜 (cystoscope) 是一种用于检查囊的仪器.口腔癌是指口腔癌的发生.

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科学领域:

  • 分子生物学分子生物学
  • 生物信息学是一种生物信息学.
  • 口腔微生物学 口腔微生物学

背景情况:

  • 口腔癌是一个显著且日益增长的全球健康问题.
  • 了解分子相互作用对于确定治疗点至关重要.
  • 在口腔细菌中阐明蛋白质网络和信号通路是关键.

研究的目的:

  • 为口腔细菌蛋白构建一个蛋白质-蛋白质相互作用网络.
  • 为了确定潜在的治疗药物候选人治疗口腔疾病.
  • 分析功能注释和细胞信号通路.

主要方法:

  • 利用STRING在线软件构建了一个分子遗传学交互网络.
  • 使用Cystoscope软件进行网络分析,识别节点和边缘.
  • 分析网络拓,包括平均节点顺序.

主要成果:

  • 开发了AZURIN分子遗传学相互作用网络,用于口腔细菌蛋白.
  • 在构建的网络中确定了11个节点和16个边缘.
  • 描述了网络属性,例如平均节点顺序为2.91.1.

结论:

  • 这项研究提供了有关口腔细菌中蛋白质与蛋白质相互作用的宝贵数据.
  • 已识别的网络作为发现新型治疗药物候选者的基础.
  • 这项研究有助于了解口腔疾病机制和潜在的干预措施.