胶体金配体标记和金免疫标记中的探针大小和结合标记构象。

Scanning microscopy. Supplement Pub Date : 1989-01-01
S R Simmons, R M Albrecht
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引用次数: 0

摘要

胶体金的尺寸从1.0nm到150nm不等。所有大小的金都可以结合,主要是通过疏水键,与各种分子结合,包括配体、酶和抗体,以及凝集素和多糖。尽管蛋白质表面积与金颗粒表面积的比例根据颗粒和蛋白质的大小而有很大的不同,但大多数生物分子的活性在与金颗粒结合时仍然保持不变。我们使用了低电压高分辨率扫描电子显微镜,从微观上比较了生物分子的形状,这些分子与非常小的(3nm)金颗粒结合,以及与更大的(18nm-30nm)金颗粒结合。当非常小的金颗粒与大的蛋白质分子结合时,几个颗粒沿着每个分子的长度结合,而较小的蛋白质分子通常包裹在一个小的金颗粒上。在较大的金颗粒中,几个生物分子与一个金颗粒结合。此外,与较大的金颗粒结合的蛋白质分子的形状与与较小的金颗粒结合的分子的形状不同。
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Probe size and bound label conformation in colloidal gold-ligand labels and gold-immunolabels.

Colloidal gold can be produced in sizes ranging from 1.0nm to 150nm. All sizes of gold can be conjugated, principally by hydrophobic bonding, to a variety of molecules including ligands, enzymes and antibodies, as well as lectins and polysaccharides. The activity of most of these biological molecules is retained on conjugation with gold particles irregardless of size range, although the ratio of protein surface area to gold particle surface area varies widely depending on particle and protein size. We have employed low voltage high resolution scanning electron microscopy to compare, microscopically, the shapes of biological molecules unbound, bound to very small (3nm) gold particles, and bound to larger (18nm-30nm) gold particles. When very small gold particles are conjugated to large protein molecules, several particles bind along the length of each molecule, while smaller protein molecules often wrap around a single small gold particle. With larger gold particles, several biological molecules bind to a single gold particle. In addition, the shape of protein molecules bound to larger gold particles differs from that of molecules bound to small gold particles.

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