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相关概念视频

Phosphorylation01:02

Phosphorylation

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The addition or removal of phosphate groups from proteins is the most common chemical modification that regulates cellular processes. These modifications can affect the structure, activity, stability, and localization of proteins within cells as well as their interactions with other proteins.
During phosphorylation, protein kinases transfer the terminal phosphate group of ATP to specific amino acid side chains of substrate proteins. Serine, threonine, and tyrosine are the most commonly...
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Covalently Linked Protein Regulators02:04

Covalently Linked Protein Regulators

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Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein....
6.8K
Protein Kinases and Phosphatases02:54

Protein Kinases and Phosphatases

13.1K
Proteins undergo chemical modifications that trigger changes in the charge, structure, and conformation of the proteins. Phosphorylation, acetylation, glycosylation, nitrosylation, ubiquitination, lipidation, methylation, and proteolysis are various protein modifications that regulate protein activity. Such modifications are usually enzyme-driven.
Protein kinases
Many proteins in the cell are regulated by phosphorylation, the addition of a phosphate group. A family of enzymes called kinases...
13.1K
Amplifying Signals via Enzymatic Cascade01:22

Amplifying Signals via Enzymatic Cascade

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When a ligand binds to a cell-surface receptor, the receptor's intracellular domain changes shape, which may either activate its enzyme function or allow its binding to other molecules. The initial signal is amplified by most signal transduction pathways. This means that a single ligand molecule can activate multiple molecules of a downstream target. Proteins that relay a signal are most commonly phosphorylated at one or more sites, activating or inactivating the protein. Kinases catalyze...
8.4K
Calmodulin-dependent Signaling01:16

Calmodulin-dependent Signaling

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Calmodulin (CaM) is a calcium-binding protein in eukaryotes that controls various calcium-regulated cellular processes. It has four calcium-binding sites that bind calcium to form the calcium-calmodulin ( Ca2+-CaM) complex. GPCR stimulation increases the calcium levels in the cells that bind to CaM and induces a conformational change.
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
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PI3K/mTOR/AKT Signaling Pathway01:22

PI3K/mTOR/AKT Signaling Pathway

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The mammalian target of rapamycin  (mTOR) is a serine/threonine kinase that regulates growth, proliferation, and cell survival in response to hormones, growth factors, or nutrient availability. This kinase exists in two structurally and functionally distinct forms: mTOR complex 1  (mTORC1) and mTOR complex 2  (mTORC2). The first form (mTORC1) is composed of a rapamycin-sensitive Raptor and proline-rich Akt substrate, PRAS40. In contrast,  mTORC2 consists of a...
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相关实验视频

Updated: Jun 13, 2025

Author Spotlight: Polysome Profiling Protocol for Studying Translational Regulation in Arabidopsis Under Heat Stress
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Author Spotlight: Polysome Profiling Protocol for Studying Translational Regulation in Arabidopsis Under Heat Stress

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酸化状态决定了细菌应激酶组装和功能.

Allison Williams, Elizabeth Martinez-Bond, Ivanna Lopez-Ayala

    Research square
    |June 12, 2025
    PubMed
    概括

    细菌的压力酶对生存至关重要,由蛋白质酸化调节. 这项研究揭示了特定的酸化部位如何控制压缩体结构,激活和细菌毒性,提供新的抗菌点.

    科学领域:

    • 细菌病原发生的细菌.
    • 分子微生物学分子微生物学
    • 结构生物学是结构生物学.

    背景情况:

    • 细菌利用压力细胞,大型蛋白质复合体,感知和响应环境压力因素.
    • 压力酶调节了总体应激反应途径,这对于细菌的生存和毒性至关重要.
    • 了解压缩体调节是开发新型抗菌战略的关键.

    研究的目的:

    • 为了阐明Listeria monocytogenes压缩体的原子结构.
    • 确定蛋白质酸化在压缩酶组装,激活和功能中的作用.
    • 为了研究压力细胞调节,细菌适应和病原体之间的联系.

    主要方法:

    • 低温电子显微镜 (cryo-EM) 用于确定压缩体结构.
    • 局部定向突变发生,以产生相仿和缺乏突变物.
    • 功能性测试包括氧化应激抵抗和宿主细胞毒性模型.

    主要成果:

    • 解决了五个Listeria monocytogenes压缩体的原子结构,揭示了不活跃和激活的状态.
    • 在特定的RsbR (T175,T209) 和RsbS (S56) 残留物中的酸化决定了压缩酶组装,结石测量和激活动态.
    • 在T175原数激活时酸化,S56触发RsbT释放,T209微调响应强度.

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  • 模仿酸化的突变物 (T209E,S56D) 增强了抗压能力,但降低了毒性.
  • 缺乏酸化 (T175A,S56A) 的突变体对压力敏感,但保留了毒性.
  • 结论:

    • 酸化作为一个关键的调节开关,控制细菌应激细胞的结构和功能.
    • 压力酶的结构动态直接影响细菌的适应性和毒性.
    • 向压缩酶酸化为开发针对细菌病原体的新抗微生物药物提供了一个有希望的途径.