Unlocking the structural secrets of complex protein drug targets


Summary: Understanding how the medicines we discover and develop interact with the proteins they are designed to target is vital. 为了获得最大的成功机会, we need to ensure they are not only hitting the right target but that they are having the right effect and are considered safe before entering clinical trials.

The field of structure-based drug design – a cornerstone of modern drug discovery – fundamentally depends on technologies that can unlock the 3D structural secrets of complex proteins. Using the revolutionary technology of cryo-electron microscopy (cryo-EM), 它的发明者因此获得了诺贝尔化学奖, our scientists gain vital clues about a protein’s biological function, its role in disease and its potential interactions with our candidate drugs.


CryoEM is able to uncover exquisite detail of target molecules and how drug candidates can bind an interact to help guide novel drug discovery



Detailed visualisation of the interactions of the target protein with proprietary compounds is critical to guide and accelerate the optimisation of these compounds and progress them to drug candidates.

玛丽亚Flocco 结构副总裁 & 生物物理学,发现科学,R&D

The electron beams setting the world of structural biology alight

低温电子显微镜 works by flash-freezing - fast enough to stop the water present forming ice crystals - a microscopic protein sample in a single-molecule-thick layer of vitreous ice. 使用电子束, hundreds of thousands of images of individual molecules within the sample are captured from multiple viewpoints, allowing the computational construction of an exquisitely detailed 3D model. These atomic resolution models even help reveal how structures within the molecules move and change as they perform their functions.

澳门葡京网赌游戏, cryo-EM has already enabled the identification of a number of world-first protein structures all of which are telling us new information about a range of targets and drug candidates we are working on:

  • In collaboration with the Medical Research Council’s Laboratory of Molecular Biology (LMB), we have determined the structure of human ataxia telangiectasia mutated (ATM), a key trigger protein in the DNA damage response and a prime therapeutic target in oncology1,2
  • In collaboration with SciLifeLab at Stockholm University and the Karolinska Institutet, we have revealed the structure of the receptor tyrosine kinase RET – relevant in neurodegenerative disease and diabetes – and proposed a model for its activation and targeting3
  • A collaboration with University College London has utilised cryo-EM to elucidate the structure of the enzyme phospholipase Cγ1 in complex with a kinase FGFR1, mutations in the former are associated with resistance to certain cancer drugs such as Bruton’s tyrosine kinase (BTK) inhibitors.4
  • A collaboration with the University of 剑桥 to describe a high-resolution cryo-EM structure for the DNA repair enzyme, dna - pk, and uncover intricate details of its interactions with other proteins involved in DNA repair pathways.5

分享知识,团结科学,推动发现

结构生物学团队的发现科学,R&D at AstraZeneca has access to two state-of-the-art cryo-electron microscopes through the 剑桥 Pharmaceutical 低温电子显微镜 Consortium, 与剑桥大学的合作, LMB实验室的, leading manufacturer Thermo Fisher and four other pharmaceutical companies in the 剑桥 area. This Consortium allows us to not only access the very highest-level technology but facilitates our culture of keeping doors and minds open so we can achieve all we want to achieve in pushing the boundaries of science to deliver life-changing medicines. 在瑞典, AstraZeneca’s collaboration with SciLifeLab at Stockholm University and the Karolinska Institutet has provided similar benefits.





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Veeva ID: Z4-46766
筹备日期:2022年8月