Université Paris-Saclay, CEA, CNRS - Institute for Integrative Biology of the Cell (I2BC), 91198, Gif-sur-Yvette, France; Sanofi, Integrated Drug Discovery, 13, quai Jules Guesde 94403, Vitry-sur-Seine, France.
IMPMC-UMR 7590 CNRS, Sorbonne Université, Muséum National d'Histoire Naturelle, 75005, Paris, France.
J Struct Biol. 2024 Jun;216(2):108095. doi: 10.1016/j.jsb.2024.108095. Epub 2024 May 7.
Single particle analysis from cryogenic transmission electron microscopy (cryo-EM) is particularly attractive for complexes for which structure prediction remains intractable, such as antibody-antigen complexes. Here we obtain the detailed structure of a particularly difficult complex between human epidermal growth factor receptor 2 (HER2) and the antigen-binding fragments from two distinct therapeutic antibodies binding to distant parts of the flexible HER2, pertuzumab and trastuzumab (HTP). We highlight the strengths and limitations of current data processing software in dealing with various kinds of heterogeneities, particularly continuous conformational heterogeneity, and in describing the motions that can be extracted from our dataset. Our HTP structure provides a more detailed view than the one previously available for this ternary complex. This allowed us to pinpoint a previously overlooked loop in domain IV that may be involved both in binding of trastuzumab and in HER2 dimerization. This finding may contribute to explain the synergistic anticancer effect of the two antibodies. We further propose that the flexibility of the HTP complex, beyond the difficulties it causes for cryo-EM analysis, actually reflects regulation of HER2 signaling and its inhibition by therapeutic antibodies. Notably we obtain our best data with ultra-thin continuous carbon grids, showing that with current cameras their use to alleviate particle misdistribution is compatible with a protein complex of only 162 kDa. Perhaps most importantly, we provide here a dataset for such a smallish protein complex for further development of software accounting for continuous conformational heterogeneity in cryo-EM images.
低温透射电子显微镜(cryo-EM)的单颗粒分析对于结构预测仍然难以捉摸的复合物特别有吸引力,例如抗体-抗原复合物。在这里,我们获得了人表皮生长因子受体 2(HER2)和两个不同治疗性抗体的抗原结合片段之间特别困难的复合物的详细结构,这两个抗体结合到 HER2 的柔性的不同部位,分别是帕妥珠单抗(pertuzumab)和曲妥珠单抗(trastuzumab)(HTP)。我们强调了当前数据处理软件在处理各种异质性方面的优势和局限性,特别是连续构象异质性,以及在描述可以从我们的数据集提取的运动方面的优势和局限性。我们的 HTP 结构提供了比以前可用于该三元复合物的更详细的视图。这使我们能够确定以前在 IV 结构域中被忽视的一个环,该环可能与 trastuzumab 的结合以及 HER2 二聚化都有关。这一发现可能有助于解释两种抗体的协同抗癌作用。我们进一步提出,HTP 复合物的灵活性,超出了其对低温 EM 分析造成的困难,实际上反映了 HER2 信号的调节及其被治疗性抗体的抑制。值得注意的是,我们使用超薄连续碳网格获得了我们最好的数据,这表明,目前的相机,其用于减轻粒子分布不均的用途与仅 162 kDa 的蛋白质复合物是兼容的。也许最重要的是,我们在这里提供了一个数据集,用于进一步开发软件,以应对低温 EM 图像中的连续构象异质性。