一种治疗人偏肺病毒感染的单克隆抗体的研制。

Evelyn D Harris, Morgan McGovern, Sara Pernikoff, Ren Ikeda, Lea Kipnis, William Hannon, Elizabeth B Sobolik, Matthew Gray, Alexander L Greninger, Sijia He, Chen-Ni Chin, Tong-Ming Fu, Marie Pancera, Jim Boonyaratanakornkit
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摘要

人偏肺病毒(HMPV)是呼吸道感染的一个主要原因,特别是在脆弱人群中,但仍然没有有效的治疗方法。单克隆抗体(mab)提供了一种很有前途的治疗和预防方法。在这里,我们描述了4F11的发现和特性,这是一种高效和广泛中和的单克隆抗体,在体外和体内都具有抗HMPV的功效。利用低温电子显微镜,我们定义了4F11结合HMPV的独特机制,这与之前表征的RSV和HMPV单抗不同。4F11靶向位于预融合F蛋白顶端的表位(位点Ø),其化学计量为1:1,不同于其他HMPV位点Ø抗体的3:1化学计量。与其他位点Ø抗体不同,这些抗体穿透Asn57和Asn172之间的聚糖屏蔽,4F11垂直结合并直接与Asn172聚糖相互作用,代表了一种独特的聚糖依赖识别模式。在体外,4F11在多种HMPV毒株中表现出高效和广泛的中和作用。它也显示出较低的耐药倾向,仅鉴定出一个逃逸突变(K179E),这是迄今为止在任何已发表的HMPV序列中未发现的突变。与野生型病毒相比,用K179E逃逸突变拯救的病毒体外适应度显著降低。在仓鼠挑战模型中,4F11显著降低了肺和鼻鼻甲的病毒载量。这些发现突出了4F11作为治疗开发的有希望的候选药物,特别是对于免疫功能低下的个体和其他高危人群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DEVELOPMENT OF A POTENT MONOCLONAL ANTIBODY FOR TREATMENT OF HUMAN METAPNEUMOVIRUS INFECTIONS.

Human metapneumovirus (HMPV) is a major cause of respiratory infections, particularly among vulnerable populations, yet effective therapeutics remain unavailable. Monoclonal antibodies (mAbs) offer a promising approach for both treatment and prevention. Here, we describe the discovery and characterization of 4F11, a highly potent and broadly neutralizing mAb with demonstrated in vitro and in vivo efficacy against HMPV. Using cryo-electron microscopy, we defined a unique mechanism of binding HMPV employed by 4F11, which distinguishes it from previously characterized RSV and HMPV mAbs. 4F11 targets an epitope located at the apex of the prefusion F protein (site Ø) with a 1:1 stoichiometry, distinct from the 3:1 stoichiometry observed with other HMPV site Ø antibodies. Unlike other site Ø antibodies, which penetrate the glycan shield between Asn57 and Asn172, 4F11 binds vertically and directly interacts with the Asn172 glycan, representing a unique glycan-dependent mode of recognition. In vitro, 4F11 displayed high potency and broad neutralization across diverse HMPV strains. It also showed a low propensity for resistance development, with only a single escape mutation (K179E) identified, a mutation not found in any published HMPV sequence to date. Viruses rescued with the K179E escape mutation had significantly decreased fitness in vitro compared to wild-type virus. In a hamster challenge model, 4F11 significantly reduced viral loads in both the lungs and nasal turbinates. These findings highlight 4F11 as a promising candidate for therapeutic development, particularly for immunocompromised individuals and other high-risk groups.

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