Gorlani Andrea, Brouwers Joachim, McConville Christopher, van der Bijl Pieter, Malcolm Karl, Augustijns Patrick, Quigley Anna Forsman, Weiss Robin, De Haard Hans, Verrips Theo
Cellular Architecture and Dynamics, Department of Biology, Faculty of Science, Utrecht University, The Netherlands.
AIDS Res Hum Retroviruses. 2012 Feb;28(2):198-205. doi: 10.1089/aid.2011.0133. Epub 2011 Aug 24.
There is an urgent global need for preventive strategies against HIV-1 infections. Llama heavy-chain antibody fragments (VHH) are a class of molecules recently described as potent cross-clade HIV-1 entry inhibitors. We studied the potential of a VHH-based microbicide in an application-oriented fashion. We show that VHH can be inexpensively produced in high amounts in the GRAS organism Saccharomyces cerevisiae, resulting in a very pure and endotoxin free product. VHH are very stable under conditions they might encounter during transport, storage, or use by women. We developed active formulations of VHH in aqueous gel and compressed and lyophilized tablets for controlled release from an intravaginal device. The release profile of the VHH from, e.g., a vaginal ring suggests sufficient bioavailability and protective concentration of the molecule at the mucosal site at the moment of the infection. The ex vivo penetration kinetics through human tissues show that the VHH diffuse into the mucosal layer and open the possibility to create a second defense layer either by blocking the HIV receptor binding sites or by blocking the receptors of immune cells in the mucosa. In conclusion, our data show that VHH have a high potential for HIV-1 microbicide application because of their low production costs, their high stability, and their favorable release and tissue penetration properties.
全球迫切需要针对HIV-1感染的预防策略。骆驼重链抗体片段(VHH)是一类最近被描述为有效的跨亚型HIV-1进入抑制剂的分子。我们以应用为导向研究了基于VHH的杀微生物剂的潜力。我们表明,VHH可以在GRAS生物酿酒酵母中大量廉价生产,从而得到非常纯净且无内毒素的产品。VHH在运输、储存或女性使用过程中可能遇到的条件下非常稳定。我们开发了VHH的活性制剂,制成水性凝胶以及压缩和冻干片剂,以便从阴道装置中控制释放。例如,VHH从阴道环中的释放曲线表明该分子在感染时在粘膜部位具有足够的生物利用度和保护浓度。通过人体组织的体外渗透动力学表明,VHH扩散到粘膜层中,并有可能通过阻断HIV受体结合位点或通过阻断粘膜中免疫细胞的受体来形成第二层防御层。总之,我们的数据表明,由于VHH生产成本低、稳定性高以及具有良好的释放和组织渗透特性,它们在HIV-1杀微生物剂应用方面具有很高的潜力。