在构成性活跃的罗多普辛中,激素诱导激活的结构基础
Jörg Standfuss1, Patricia C Edwards, Aaron D'Antona
1Paul Scherrer Institut, 5232 Villigen PSI, Switzerland.
Nature
|March 11, 2011
概括
这项研究揭示了视觉色素罗多素,一种G蛋白结合受体 (GPCR) 的活性构造. 这些发现阐明了激素激素结合如何触发GPCR激活所需的关键形状变化.
科学领域:
- 结构生物学 结构生物学
- 生物化学 生物化学
- 分子生物学分子生物学
背景情况:
- G-蛋白合受体 (GPCR) 是关键的膜蛋白调解细胞信号.
- 现有的GPCR晶体结构大多代表了不活跃的状态,缺乏对抗剂结合的 conformations.
- 罗多普辛结构以前仅限于素形式,没有激动剂全转视网膜.
研究的目的:
- 为了确定活跃的罗多素构造的晶体结构.
- 阐明通过激素激剂激活GPCR的分子机制.
主要方法:
- 在3 Å分辨率的X射线晶体学.
- 研究了一种构成性活跃的Rhodopsin突变体 (Glu 113 Gln).
- 复杂的形成与一个转化素G蛋白衍生的.
主要成果:
- 呈现了活性罗多普辛的晶体结构,在光激活后保留了视网膜.
- 确定了视网膜β-离子子环转位和跨膜螺旋体6旋转作为关键激活事件.
- 在视网膜结合口袋中观察到水介导的键的重组.
结论:
- 该结构为激素激发的GPCR激活提供了一个模型.
- 突出了保存的GPCR基因在信号传导中的作用.
- 解释了驱动Rhodopsin激活的结构变化.
相关概念视频
Activation and Inactivation of G Proteins
8.9K
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...
8.9K
IP3/DAG Signaling Pathway
12.6K
Membrane lipids such as phosphatidylinositol (PI) are precursors for several membrane-bound and soluble second messengers. Specific kinases phosphorylate PI and produce phosphorylated inositol phospholipids. One such inositol phospholipids are the phosphatidylinositol-4,5 bisphosphate [PI(4,5)P2], present in the inner half of the lipid bilayer. Upon ligand binding, GPCR stimulates Gq proteins to turn on phospholipase Cꞵ. Activated phospholipase Cꞵ cleaves PI(4,5)P2 and...
12.6K
Drug-Receptor Interaction: Agonist
4.4K
Agonists are drugs that interact with specific receptors in the body to produce a biological response. When an agonist binds to a receptor, it activates or enhances the receptor's function, leading to physiological effects. The interaction between agonist drugs and receptors is crucial for their therapeutic action in various medical treatments.
Agonists can bind to receptors in different ways. Some agonists bind directly to the receptor's active site, mimicking the endogenous...
Agonists can bind to receptors in different ways. Some agonists bind directly to the receptor's active site, mimicking the endogenous...
4.4K
Direct-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship
2.3K
Cholinergic agonists or cholinomimetics mimic the action of acetylcholine to stimulate the parasympathetic nervous system. They are categorized into direct-acting and indirect-acting agents. The direct-acting cholinergic drugs induce the parasympathetic response by directly binding to the muscarinic or nicotine receptors. In comparison, the indirect-acting cholinergic drugs prevent acetylcholine hydrolysis, indirectly contributing to the extended parasympathetic response.
The direct-acting...
The direct-acting...
2.3K
Indirect-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship
1.2K
Indirect-acting cholinergic agonists are agents that interact with the acetylcholinesterase enzyme in the synaptic cleft, preventing the breakdown of acetylcholine into choline and acetate. Consequently, the concentration of acetylcholine in the synaptic cleft increases. These agonists can be classified into reversible and irreversible inhibitors based on their duration of action.
Reversible inhibitors display short to medium durations of action. Short-acting agents include simple alcohols with...
Reversible inhibitors display short to medium durations of action. Short-acting agents include simple alcohols with...
1.2K
Adrenergic Agonists: Chemistry and Structure-Activity Relationship
3.9K
Adrenergic agonists' structure-activity relationship (SAR) determines their selectivity and efficacy. These agonists comprise a phenylethylamine moiety with an aromatic ring and an ethylamine side chain.
Aromatic ring substitutions: Substituting the aromatic ring with –OH groups at positions 3 and 4 yields catecholamines (e.g., epinephrine), which have a high affinity for adrenoceptors. Hydrogen bonding between –OH groups and receptors enhances adrenergic activity.
Separation of...
Aromatic ring substitutions: Substituting the aromatic ring with –OH groups at positions 3 and 4 yields catecholamines (e.g., epinephrine), which have a high affinity for adrenoceptors. Hydrogen bonding between –OH groups and receptors enhances adrenergic activity.
Separation of...
3.9K


