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探索抗体 - 抗原复合物的能量景观:蛋白质动力学、灵活性与分子识别

Exploring the energy landscape of antibody-antigen complexes: protein dynamics, flexibility, and molecular recognition.

作者信息

Thielges Megan C, Zimmermann Jörg, Yu Wayne, Oda Masayuki, Romesberg Floyd E

机构信息

Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.

出版信息

Biochemistry. 2008 Jul 8;47(27):7237-47. doi: 10.1021/bi800374q. Epub 2008 Jun 13.

Abstract

The production of antibodies that selectively bind virtually any foreign compound is the hallmark of the immune system. While much is understood about how sequence diversity contributes to this remarkable feat of molecular recognition, little is known about how sequence diversity impacts antibody dynamics, which is also expected to contribute to molecular recognition. Toward this goal, we examined a panel of antibodies elicited to the chromophoric antigen fluorescein. On the basis of isothermal titration calorimetry, we selected six antibodies that bind fluorescein with diverse binding entropies, suggestive of varying contributions of dynamics to molecular recognition. Sequencing revealed that two pairs of antibodies employ homologous heavy chains that were derived from common germline genes, while the other two heavy chains and all six of the light chains were derived from different germline genes and are not homologous. Interestingly, more than half of all the somatic mutations acquired during affinity maturation among the six antibodies are located in positions unlikely to contact fluorescein directly. To quantify and compare the dynamics of the antibody-fluorescein complexes, three-pulse photon echo peak shift and transient grating spectroscopy were employed. All of the antibodies exhibited motions on three distinct time scales, ultrafast motions on the <100 fs time scale, diffusive motions on the picosecond time scale, and motions that occur on time scales longer than nanoseconds and thus appear static. However, the exact frequency of the picosecond time scale motion and the relative contribution of the different motions vary significantly among the antibody-chromophore complexes, revealing a high level of dynamic diversity. Using a hierarchical model, we relate the data to features of the antibodies' energy landscapes as well as their flexibility in terms of elasticity and plasticity. In all, the data provide a consistent picture of antibody flexibility, which interestingly appears to be correlated with binding entropy as well as with germline gene use and the mutations introduced during affinity maturation. The data also provide a gauge of the dynamic diversity of the antibody repertoire and suggest that this diversity might contribute to molecular recognition by facilitating the recognition of the broadest range of foreign molecules.

摘要

产生能够选择性结合几乎任何外来化合物的抗体是免疫系统的标志。虽然人们对序列多样性如何促成这一非凡的分子识别壮举已有很多了解,但对于序列多样性如何影响抗体动力学却知之甚少,而抗体动力学也被认为对分子识别有贡献。为了实现这一目标,我们研究了一组针对发色抗原荧光素产生的抗体。基于等温滴定量热法,我们选择了六种与荧光素结合且具有不同结合熵的抗体,这表明动力学对分子识别的贡献各不相同。测序结果显示,两对抗体采用了源自共同种系基因的同源重链,而另外两条重链以及所有六条轻链均源自不同的种系基因,且彼此不同源。有趣的是,在这六种抗体亲和力成熟过程中获得的所有体细胞突变中,超过一半位于不太可能直接与荧光素接触的位置。为了量化和比较抗体 - 荧光素复合物的动力学,我们采用了三脉冲光子回波峰移和瞬态光栅光谱技术。所有抗体都表现出三种不同时间尺度的运动,即小于100飞秒时间尺度的超快运动、皮秒时间尺度的扩散运动以及时间尺度超过纳秒因而看似静止的运动。然而,皮秒时间尺度运动的确切频率以及不同运动的相对贡献在抗体 - 发色团复合物之间有显著差异,揭示出高度的动态多样性。我们使用层次模型将这些数据与抗体能量景观的特征以及它们在弹性和可塑性方面的灵活性联系起来。总体而言,这些数据提供了抗体灵活性的一致图景,有趣的是,这种灵活性似乎与结合熵以及种系基因的使用和亲和力成熟过程中引入的突变相关。这些数据还提供了一个衡量抗体库动态多样性的指标,并表明这种多样性可能通过促进对最广泛的外来分子的识别而有助于分子识别。

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