Kickhoefer Valerie A, Han Muri, Raval-Fernandes Sujna, Poderycki Michael J, Moniz Raymond J, Vaccari Dana, Silvestry Mariena, Stewart Phoebe L, Kelly Kathleen A, Rome Leonard H
Department of Biological Chemistry, David Geffen School of Medicine at UCLA, Los Angeles, California 90095-1737, USA.
ACS Nano. 2009 Jan 27;3(1):27-36. doi: 10.1021/nn800638x.
As a naturally occurring nanocapsule abundantly expressed in nearly all-eukaryotic cells, the barrel-shaped vault particle is perhaps an ideal structure to engineer for targeting to specific cell types. Recombinant vault particles self-assemble from 96 copies of the major vault protein (MVP), have dimensions of 72.5 x 41 nm, and have a hollow interior large enough to encapsulate hundreds of proteins. In this study, three different tags were engineered onto the C-terminus of MVP: an 11 amino acid epitope tag, a 33 amino acid IgG-binding peptide, and the 55 amino acid epidermal growth factor (EGF). These modified vaults were produced using a baculovirus expression system. Our studies demonstrate that recombinant vaults assembled from MVPs containing C-terminal peptide extensions display these tags at the top and bottom of the vault on the outside of the particle and can be used to specifically bind the modified vaults to epithelial cancer cells (A431) via the epidermal growth factor receptor (EGFR), either directly (EGF modified vaults) or as mediated by a monoclonal antibody (anti-EGFR) bound to recombinant vaults containing the IgG-binding peptide. The ability to target vaults to specific cells represents an essential advance toward using recombinant vaults as delivery vehicles.
作为一种天然存在的纳米胶囊,桶状穹窿体颗粒在几乎所有真核细胞中都大量表达,它可能是一种理想的可设计用于靶向特定细胞类型的结构。重组穹窿体颗粒由96个主要穹窿蛋白(MVP)拷贝自组装而成,尺寸为72.5×41纳米,内部中空,足以容纳数百种蛋白质。在本研究中,三种不同的标签被设计到MVP的C末端:一个11个氨基酸的表位标签、一个33个氨基酸的IgG结合肽和55个氨基酸的表皮生长因子(EGF)。这些修饰的穹窿体颗粒是使用杆状病毒表达系统产生的。我们的研究表明,由含有C末端肽延伸的MVP组装而成的重组穹窿体颗粒在颗粒外部的穹窿体顶部和底部展示这些标签,并且可以通过表皮生长因子受体(EGFR)将修饰的穹窿体颗粒特异性地结合到上皮癌细胞(A431)上,要么直接结合(EGF修饰的穹窿体颗粒),要么通过与含有IgG结合肽的重组穹窿体颗粒结合的单克隆抗体(抗EGFR)介导。将穹窿体颗粒靶向特定细胞的能力代表了将重组穹窿体颗粒用作递送载体的一项重要进展。