Darawshe S, Rivas G, Minton A P
Laboratory of Biochemical Pharmacology, National Institute of Diabetes, Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland 20892.
Anal Biochem. 1993 Feb 15;209(1):130-5. doi: 10.1006/abio.1993.1092.
The contents of small centrifuge tubes containing solutions of radiolabeled proteins that had been centrifuged to sedimentation equilibrium were fractionated using a new device based upon the mechanical design of Attri and Minton (Anal. Biochem. 152, 319-328, 1986). Individual fractions, corresponding to laminae of 0.15 mm column height within the tube, were collected using one of two methods: (a) automatic mixing with scintillation fluid and delivery to vials mounted in a fraction collector, or (b) collection of undiluted fractions on scintillation vial caps impregnated with solid scintillator. Gradients of protein concentration were obtained via scintillation counting of sequential fractions. Molecular weights of proteins ranging from 4 x 10(4) to 3.5 x 10(5) were calculated by fitting the theoretical expression for sedimentation equilibrium of an ideal homogeneous solute to the experimental gradients. The values so obtained agree well with values obtained by optical scanning of the unfractionated centrifuge tube, and with values obtained from the literature.
装有已离心至沉降平衡的放射性标记蛋白质溶液的小离心管中的内容物,使用一种基于阿特里和明顿(《分析生物化学》152卷,319 - 328页,1986年)机械设计的新装置进行分级分离。对应于管内0.15毫米柱高薄层的各个级分,通过以下两种方法之一进行收集:(a) 与闪烁液自动混合并输送至安装在馏分收集器中的小瓶,或 (b) 在浸渍有固体闪烁体的闪烁小瓶盖上去收集未稀释的级分。通过对连续级分进行闪烁计数获得蛋白质浓度梯度。通过将理想均匀溶质沉降平衡的理论表达式拟合到实验梯度,计算了分子量范围从4×10⁴到3.5×10⁵的蛋白质的分子量。如此获得的值与通过对未分级离心管进行光学扫描获得的值以及从文献中获得的值非常吻合。