Malecki Marek, Hsu Annie, Truong Lynn, Sanchez Sylvia
Molecular Imaging Laboratories, University of California at San Diego, La Jolla, CA 92093, USA.
Proc Natl Acad Sci U S A. 2002 Jan 8;99(1):213-8. doi: 10.1073/pnas.261567298. Epub 2001 Dec 26.
To study the molecular structure and function of gene products in situ, we developed a molecular immunolabeling technology. Starting with cDNA from hybridomas producing monoclonal antibodies against biotin, catalase, and superoxide dismutase, we bioengineered recombinant single-chain variable fragment antibodies (scFv) and their derivatives containing metal-binding domains (scFv:MBD). As tested with surface plasmon resonance and enzyme-linked immunosorbent assay, affinity binding constants of the scFv (5.21 x 10(6) M(-1)) and scFv:MBD (4.17 x 10(6) M(-1)) were close to those of Fab proteolytic fragments (9.78 x 10(6) M(-1)) derived from the parental IgG antibodies. After saturation of MBD with nickel or cobalt, scFv:MBD was imaged with electron spectroscopic imaging at each element's specific energy loss, thus generating the element's map. Immunolabeling with scFv:MBD resulted in a significant improvement of the labeling fidelity over that obtained with Fab or IgG derivatives, as it produced a much heavier specific labeling and label-free background. As determined with radioimmunoassay, labeling effectiveness with scFv:MBD was nearly the same as with scFv, but much higher than with scFv conjugated to colloidal gold, Nanogold, or horseradish peroxidase. This technology opens possibilities for simultaneous imaging of multiple molecules labeled with scFv:MBD at the molecular resolution within the same sample with electron spectroscopic imaging. Moreover, the same scFv:MBD can also be imaged with fluorescence resonance energy transfer and lifetime imaging as well as positron emission tomography and magnetic resonance imaging. Therefore, this technology may serve as an integrative factor in life science endeavors.
为了原位研究基因产物的分子结构和功能,我们开发了一种分子免疫标记技术。从产生抗生物素蛋白、过氧化氢酶和超氧化物歧化酶单克隆抗体的杂交瘤细胞的cDNA开始,我们通过生物工程构建了重组单链可变片段抗体(scFv)及其含有金属结合域的衍生物(scFv:MBD)。经表面等离子体共振和酶联免疫吸附测定测试,scFv(5.21×10⁶ M⁻¹)和scFv:MBD(4.17×10⁶ M⁻¹)的亲和结合常数与源自亲本IgG抗体的Fab蛋白水解片段(9.78×10⁶ M⁻¹)相近。在用镍或钴使MBD饱和后,通过电子能量损失谱成像在每个元素的特定能量损失下对scFv:MBD进行成像,从而生成元素图谱。与Fab或IgG衍生物相比,用scFv:MBD进行免疫标记显著提高了标记保真度,因为它产生了更重的特异性标记和无标记背景。通过放射免疫测定确定,scFv:MBD的标记效率与scFv几乎相同,但远高于与胶体金、纳米金或辣根过氧化物酶偶联的scFv。这项技术为在同一样品中以分子分辨率同时对多个用scFv:MBD标记的分子进行电子能量损失谱成像开辟了可能性。此外,相同的scFv:MBD还可以通过荧光共振能量转移和寿命成像以及正电子发射断层扫描和磁共振成像进行成像。因此,这项技术可能成为生命科学研究中的一个综合因素。