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Allosteric Regulation01:08

Allosteric Regulation

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Allosteric regulation of enzymes occurs when the binding of an effector molecule to a site that is different from the active site causes a change in the enzymatic activity. This alternate site is called an allosteric site, and an enzyme can contain more than one of these sites. Allosteric regulation can either be positive or negative, resulting in an increase or decrease in enzyme activity. Most enzymes that display allosteric regulation are metabolic enzymes involved in the degradation or...
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Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
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Binding sites linkages can regulate a protein's function.  For example, enzyme activity is often regulated through a feedback mechanism where the end product of the biochemical process serves as an inhibitor.
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to  N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis...
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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....
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Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
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一个灵活的,全环调节蛋白质活动,并重新连接静电.

Darex J Vera-Rodríguez1, Paul J Sapienza2, Konstantin I Popov1,2

  • 1Department of Biochemistry and Biophysics, School of Medicine, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.

Protein science : a publication of the Protein Society
|September 24, 2025
PubMed
概括

蛋白质中的灵活循环可以控制酶活性. 一项关于chorismate突变酶的研究表明,以前未见的远端循环通过与活性部位相互作用来影响酶功能,揭示了新的全调节机制.

关键词:
这是NMR的NMR.亚洛斯特菌是什么意思?循环,循环,循环.增强对磁性放松,增强对磁性放松的作用.蛋白质动力学 蛋白质动力学蛋白质电静电学 蛋白质电静电学

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科学领域:

  • 生物化学 生物化学
  • 结构生物学 结构生物学
  • 酶学 是一种酶学.

背景情况:

  • 体调节对蛋白质功能至关重要,传统上与结构区域有关.
  • 远端,柔性环在全卵性发育中的作用尚不清楚.
  • 合乐酸突变酶 (CM) 对于芳香氨基酸生物合成至关重要,并且受到差异调节.

研究的目的:

  • 调查 chorismate 突变酶 (CM) 的全性机制.
  • 在蛋白质调节中探索远端,灵活的循环的功能.
  • 阐明效应因子结合如何通过远程元素影响酶活性.

主要方法:

  • 通过突变发生和NMR光谱学研究胆酸盐突变酶 (CM).
  • 采用了偏磁标签来研究循环动态.
  • 利用一种新的NMR方法来分析静电调制.

主要成果:

  • 灵活循环11-12中的突变显著改变了CM的活性.
  • 循环11-12在托 (Trp) 结合时暂时与活性部位相互作用.
  • 循环11-12调节酶静电,影响活性.

结论:

  • 灵活的远端环可以与效应器结合部位和活性部位进行功能合.
  • 这项研究揭示了一种复杂的全性机制,涉及远程循环动力学和静电学.
  • 这些发现为蛋白质的全osteric调节和灵活区域的功能提供了新的见解.