The path to the G protein-coupled receptor structural landscape: Major milestones and future directions.

IF 6.8 2区 医学 Q1 PHARMACOLOGY & PHARMACY
Małgorzata M Kogut-Günthel, Zeenat Zara, Alessandro Nicoli, Alexandra Steuer, Marta Lopez-Balastegui, Jana Selent, Sanjai Karanth, Melanie Koehler, Antonella Ciancetta, Layara Akemi Abiko, Franz Hagn, Antonella Di Pizio
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Abstract

G protein-coupled receptors (GPCRs) play a crucial role in cell function by transducing signals from the extracellular environment to the inside of the cell. They mediate the effects of various stimuli, including hormones, neurotransmitters, ions, photons, food tastants and odorants, and are renowned drug targets. Advancements in structural biology techniques, including X-ray crystallography and cryo-electron microscopy (cryo-EM), have driven the elucidation of an increasing number of GPCR structures. These structures reveal novel features that shed light on receptor activation, dimerization and oligomerization, dichotomy between orthosteric and allosteric modulation, and the intricate interactions underlying signal transduction, providing insights into diverse ligand-binding modes and signalling pathways. However, a substantial portion of the GPCR repertoire and their activation states remain structurally unexplored. Future efforts should prioritize capturing the full structural diversity of GPCRs across multiple dimensions. To do so, the integration of structural biology with biophysical and computational techniques will be essential. We describe in this review the progress of nuclear magnetic resonance (NMR) to examine GPCR plasticity and conformational dynamics, of atomic force microscopy (AFM) to explore the spatial-temporal dynamics and kinetic aspects of GPCRs, and the recent breakthroughs in artificial intelligence for protein structure prediction to characterize the structures of the entire GPCRome. In summary, the journey through GPCR structural biology provided in this review illustrates how far we have come in decoding these essential proteins architecture and function. Looking ahead, integrating cutting-edge biophysics and computational tools offers a path to navigating the GPCR structural landscape, ultimately advancing GPCR-based applications.

G 蛋白偶联受体结构图谱之路:主要里程碑和未来方向。
G 蛋白偶联受体(GPCR)通过将信号从细胞外环境传递到细胞内部,在细胞功能中发挥着至关重要的作用。它们介导各种刺激的效应,包括激素、神经递质、离子、光子、食物味道剂和气味剂,是著名的药物靶标。结构生物学技术的进步,包括 X 射线晶体学和低温电子显微镜(cryo-EM)技术的进步,促使越来越多的 GPCR 结构得以阐明。这些结构揭示了受体活化、二聚化和寡聚化、正交调制和异位调制之间的二分法以及信号转导背后错综复杂的相互作用等新特征,为人们深入了解各种配体结合模式和信号传导途径提供了线索。然而,大部分 GPCR 种类及其激活状态在结构上仍未得到探索。未来的工作应优先考虑从多个维度捕捉 GPCR 的全部结构多样性。为此,必须将结构生物学与生物物理和计算技术结合起来。我们将在这篇综述中介绍核磁共振 (NMR) 在研究 GPCR 的可塑性和构象动力学方面的进展,原子力显微镜 (AFM) 在探索 GPCR 的时空动力学和动力学方面的进展,以及最近人工智能在蛋白质结构预测方面取得的突破,以描述整个 GPCR 的结构特征。总之,本综述提供的 GPCR 结构生物学之旅说明了我们在解码这些重要蛋白质的结构和功能方面取得的进展。展望未来,整合尖端生物物理学和计算工具将为我们提供一条通往 GPCR 结构领域的道路,最终推动基于 GPCR 的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
15.40
自引率
12.30%
发文量
270
审稿时长
2.0 months
期刊介绍: The British Journal of Pharmacology (BJP) is a biomedical science journal offering comprehensive international coverage of experimental and translational pharmacology. It publishes original research, authoritative reviews, mini reviews, systematic reviews, meta-analyses, databases, letters to the Editor, and commentaries. Review articles, databases, systematic reviews, and meta-analyses are typically commissioned, but unsolicited contributions are also considered, either as standalone papers or part of themed issues. In addition to basic science research, BJP features translational pharmacology research, including proof-of-concept and early mechanistic studies in humans. While it generally does not publish first-in-man phase I studies or phase IIb, III, or IV studies, exceptions may be made under certain circumstances, particularly if results are combined with preclinical studies.
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