López-Romero E, Ruiz-Herrera J
Antonie Van Leeuwenhoek. 1978;44(3-4):329-39. doi: 10.1007/BF00394310.
Properties of beta-glucan synthetase from S. cerevisiae were studied. The enzyme exhibited optimal activity at pH 6.7 and 24 C. Km for UDP-glucose was 0.12 mM. Addition of Mg++ or Mn++ stimulated its activity by 60% and 21% respectively. High concentrations of EDTA and hydroxyquinoline were inhibitory. Glucan synthetase was fully active in cell-free extracts. Small concentrations of trypsin or subtilopeptidase A from Bacillus subtilis, caused only a slight increase in glucosyl transferase activity, but larger concentrations destroyed beta-glucan synthetase. Acid proteases were neither stimulatory nor destructive. Thus it seems unlikely that beta-glucan synthetase exists in a zymogen form. Glucan synthetase was unstable. It was inactivated more rapidly at 28 C than at 0 C. The presence of substrate, beta-glucan or the protease inhibitors PMSF, Antipain or Pepstatin A did not protect beta-glucan synthetase from inactivation. Glucan synthetase was not stimulated by addition of cellobiose or beta-glucans. The synthesis of beta-glucans was competitively inhibited by UDP (Ki = 0.45 mM). Glucono-delta-lactone, a known inhibitor of beta-glucosidases was a strong non-competitive inhibitor of beta-glucan synthetase.
对酿酒酵母β-葡聚糖合成酶的特性进行了研究。该酶在pH 6.7和24℃条件下表现出最佳活性。UDP-葡萄糖的Km值为0.12 mM。添加Mg++或Mn++分别使酶活性提高60%和21%。高浓度的EDTA和羟基喹啉具有抑制作用。葡聚糖合成酶在无细胞提取物中具有完全活性。小浓度的胰蛋白酶或枯草芽孢杆菌的枯草杆菌蛋白酶A只会使葡糖基转移酶活性略有增加,但较高浓度会破坏β-葡聚糖合成酶。酸性蛋白酶既无刺激作用也无破坏作用。因此,β-葡聚糖合成酶似乎不太可能以酶原形式存在。葡聚糖合成酶不稳定。它在28℃比在0℃时失活更快。底物β-葡聚糖或蛋白酶抑制剂PMSF、抗痛素或胃蛋白酶抑制剂A的存在并不能保护β-葡聚糖合成酶不被失活。添加纤维二糖或β-葡聚糖不会刺激葡聚糖合成酶。β-葡聚糖的合成受到UDP的竞争性抑制(Ki = 0.45 mM)。葡萄糖酸-δ-内酯,一种已知的β-葡萄糖苷酶抑制剂,是β-葡聚糖合成酶的强非竞争性抑制剂。