在β2-上腺素受体中的外膜域的状态依赖的动态
Siddhanta V Nikte1,2, Manali Joshi3, Durba Sengupta1,2
1Physical and Materials Chemistry Division, National Chemical Laboratory, Pune, India.
Proteins
|October 21, 2023
概括
G蛋白结合受体 (GPCRs) 表现出动态的行为. 这项研究揭示了β-2上腺体受体 (β2AR) 的外膜域动态随着受体状态的变化而变化,并增加了连接体结合的动态.
科学领域:
- 生物化学 生物化学
- 分子生物学分子生物学
- 结构生物学 结构生物学
背景情况:
- G蛋白结合受体 (GPCR) 是关键的膜蛋白,参与细胞信号传递.
- β-2上腺素受体 (β2AR) 是一个经过充分研究的GPCR,但其外膜区域的动态仍然不太了解.
- 了解GPCR的动态是解读其信号机制的关键.
研究的目的:
- 为了研究β2AR的外膜域的依赖状态的结构动态.
- 使用新参数量化受体动态,残留物过剩动态.
- 为了将这些动态与受体的不同功能状态相关联.
主要方法:
- 关于β2AR的原子分子动力学模拟.
- 引入和应用"残留过剩动态"参数.
- 在非活跃状态,联结中间状态和活跃状态之间分析动态.
主要成果:
- 膜外域动力学受到受体的功能状态的显著影响.
- 联体结合的中间状态表现出最高的残留物过剩动态.
- 联体结合增加了动态,随后在G蛋白合时会减少.
- 细胞内循环-3 (ICL3) 域显示在带结合时膜向侧翻转.
- 一个ICL1-螺旋-8相互作用在联体结合状态中被破坏,但在活性状态中保持.
结论:
- 这项研究强调了描述GPCR外膜域的动态的重要性.
- 余量残留的动态为量化受体构造变化提供了有价值的指标.
- 干结合和G蛋白合以不同的方式调节β2AR动态,影响信号传递.
相关概念视频
Adrenergic Receptors: β Subtype
1.7K
β-adrenoceptors have varied sensitivities towards adrenaline, noradrenaline, and isoprenaline. The order of agonist potency is as follows:
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors...
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors...
1.7K
Activation and Inactivation of G Proteins
7.2K
Heterotrimeric G proteins are guanine nucleotide-binding proteins. As the name suggests, heterotrimeric G proteins are composed of three subunits: alpha, beta, and gamma. They remain GDP-bound or GTP-bound inside the cells and switch between inactive/active states. The Gα subunit possesses the nucleotide-binding pocket that binds guanine nucleotides and switches between GDP or GTP-bound states. In contrast, the Gꞵ and Gγ subunits are always bound together with high...
7.2K
The Two-State Receptor Model
2.0K
The two-state receptor model explains a drug's interaction with receptors, such as G protein-coupled receptors and ligand-gated ion channels, to induce or inhibit a biological response. When no natural ligands are present, a receptor exists in an equilibrium of inactive (Ri) and active (Ra) conformations. The inactive form does not produce a response, while the active form generates a basal effect known as constitutive activity.
The binding affinity of a drug determines its interaction with...
The binding affinity of a drug determines its interaction with...
2.0K
Assembly of Signaling Complexes
5.8K
Multiprotein signaling complexes are formed in a dynamic process involving protein-protein interactions at the cytoplasmic domain of transmembrane receptors or enzymatic and non-enzymatic proteins associated with the receptor. These complexes ensure the activation and propagation of intracellular signals that regulate cell functions.
Interaction domains in cell signaling
Interaction domains recognize exposed features of their binding partners containing post-translationally modified sequences,...
Interaction domains in cell signaling
Interaction domains recognize exposed features of their binding partners containing post-translationally modified sequences,...
5.8K
Multi-pass Transmembrane Proteins and β-barrels
5.3K
In multi-pass transmembrane proteins, the polypeptide chain crosses the membrane more than once. The transmembrane polypeptide chain either forms an α-helix or β-strand structure. α-Helix containing multi-pass transmembrane proteins are ubiquitous, whereas β-strand containing ones are mainly found in gram-negative bacteria, mitochondria, and chloroplasts.
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...
5.3K
Amplifying Signals via Enzymatic Cascade
8.5K
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...
8.5K


