在人体血型B组上有银化作用,在红细胞上有ESCHERICHIA COLI和红细胞的活性物质
概括
咖啡豆α-galactosidase酶降解了大肠杆菌O(86) 抗原和传染性单核病受体中的B血型特异性. 这种酶作用释放了银河糖,并揭示了血液组H (O) 的活性.
科学领域:
- 生物化学 生物化学
- 免疫学 免疫学 免疫学
- 微生物学 微生物学
背景情况:
- 血型B的特异性在各种生物相互作用中至关重要.
- 大肠杆菌O ((86) 抗原和传染性单核病受体具有共同的B特异性.
- 酶降解提供了一种研究这些特异性的方法.
研究的目的:
- 为了研究咖啡豆α-galactosidase对B血型特定物质的影响.
- 为了确定酶制品和由此产生的抗原性变化.
主要方法:
- 用咖啡豆α-galactosidase对大肠杆菌O(86) 抗原和牛红细胞受体进行酶治疗.
- 用三种不同的方法对大肠杆菌抗原进行抗原性变化的分析.
- 染色学分析以确定释放的六合体.
主要成果:
- 阿尔法-银酸酶破坏了大肠杆菌O(86) 抗原和牛红细胞受体的B血型特异性.
- 观察到同时出现血型H(O) 活动.
- 银河糖被确定为所有处理物质中唯一释放的黑色素.
结论:
- 咖啡豆α-银酸酶有效地分裂了B型血液的决定因素.
- 酶对B特异性物质的作用导致了H (O) 活性的暴露.
- 银河糖是这些抗原B特异性的关键单糖.
关键词:
关于因素的因素牛 牛 牛 牛 牛红红细胞 红红细胞埃舍里奇亚科利 (Eschericia Coli) 是一个古老的城市.实验室研究实验室研究盖拉克托斯形状利波波利萨萨卡里德斯 (LIPOPOLYSACCHARIDES) 是一个药理学 在药理学方面.聚糖类, 细菌性更多相关视频
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