Hegde R, Maiti T K, Podder S K
Department of Biochemistry, Indian Institute of Science, Bangalore.
Anal Biochem. 1991 Apr;194(1):101-9. doi: 10.1016/0003-2697(91)90156-n.
Three toxins, abrin-I, -II, and -III, and two agglutinins, APA-I and -II, were purified from the seeds of Abrus precatorius by lactamyl-Sepharose affinity chromatography followed by gel filtration and DEAE-Sephacel column chromatography. Abrin-I did not bind on DEAE-Sephacel column chromatography and the bound abrin-II, abrin-III, APA-I, and APA-II were eluted with a sodium acetate gradient. The identity of each protein was established by sodium dodecylsulfate-polyacrylamide gel electrophoresis and isoelectric focusing. The relative molecular weights are abrin-I, 64,000; abrin-II and abrin-III, 63,000 each: APA-I, 130,000; and APA-II, 128,000. Isoelectric focusing revealed microheterogeneity due to the presence of isoforms in each protein. Toxicity and binding studies further confirmed the differences among the lectins. The time course of inhibition of protein synthesis in thymocytes by the toxins showed lag times of 78, 61, and 72 min with Ki's of 0.55, 0.99, and 0.74 ms-1 at a 0.63 nM concentration of each of abrin-I, -II, and -III, respectively. A Scatchard plot obtained from the equilibrium measurement for the lectins binding to lactamyl-Sepharose beads showed nonlinearity, indicating a cooperative mode of binding which was not observed for APA-I binding to Sepharose 4B beads. Further, by the criterion of the isoelectric focusing profile, it was shown that the least toxic abrin-I and the highly toxic abrin-II isolated by lactamyl-Sepharose chromatography were not retained on a low-affinity Sepharose 4B matrix, which signifies the necessity of using a high-affinity matrix for the purification of the lectins.
通过内酰胺基琼脂糖亲和层析,随后进行凝胶过滤和DEAE-琼脂糖凝胶柱层析,从相思豆种子中纯化出三种毒素,即相思豆毒素-I、-II和-III,以及两种凝集素,即APA-I和-II。相思豆毒素-I在DEAE-琼脂糖凝胶柱层析中不结合,而结合的相思豆毒素-II、相思豆毒素-III、APA-I和APA-II用醋酸钠梯度洗脱。通过十二烷基硫酸钠-聚丙烯酰胺凝胶电泳和等电聚焦确定了每种蛋白质的身份。相对分子量分别为:相思豆毒素-I,64,000;相思豆毒素-II和相思豆毒素-III,各为63,000;APA-I,130,000;APA-II,128,000。等电聚焦显示由于每种蛋白质中存在同工型而具有微异质性。毒性和结合研究进一步证实了凝集素之间的差异。毒素对胸腺细胞蛋白质合成的抑制时间进程显示,在每种相思豆毒素-I、-II和-III浓度为0.63 nM时,滞后时间分别为78、61和72分钟,抑制常数(Ki)分别为0.55、0.99和0.74 μmol-1。从凝集素与内酰胺基琼脂糖珠结合的平衡测量中获得的Scatchard图显示为非线性,表明存在协同结合模式,而APA-I与琼脂糖4B珠的结合未观察到这种模式。此外,根据等电聚焦图谱标准,显示通过内酰胺基琼脂糖层析分离出的毒性最小的相思豆毒素-I和高毒性的相思豆毒素-II不保留在低亲和力的琼脂糖4B基质上,这表明使用高亲和力基质纯化凝集素的必要性。