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间酪氨酸对芽孢杆菌属生长和孢子形成的影响。

Effects of m-Tyrosine on Growth and Sporulation of Bacillus Species.

作者信息

Aronson J N, Wermus G R

机构信息

Department of Chemistry, Arizona State University, Tempe, Arizona.

出版信息

J Bacteriol. 1965 Jul;90(1):38-46. doi: 10.1128/jb.90.1.38-46.1965.

Abstract

Aronson, John N. (Arizona State University, Tempe), and Gerald R. Wermus. Effects of m-tyrosine on growth and sporulation of Bacillus species. J. Bacteriol. 90:38-46. 1965.-The aromatic amino acid analogue, dl-beta-(3-hydroxyphenyl)alanine (m-tyrosine), reduced sporulation of a strain of Bacillus subtilis to less than 5% of that of control cultures in a glucose-salts minimal medium. The mass-doubling time increased twofold, but maximal growth equivalent to that of control cultures was eventually attained. A decreased growth rate could be maintained in the presence of the analogue for more than 10 doublings, despite incorporation of m-tyrosine-2-C(14) in place of some of the protein phenylalanine. The organism proliferated to chain lengths of 10 to 15 cells. These cells persisted for many hours after maximal growth had been reached, in contrast to normal cultures which had begun to autolyze and sporulate. The response to m-tyrosine of strains of B. cereus, B. thuringiensis, and B. megaterium was like that of B. subtilis. In addition, B. thuringiensis and B. cereus converted m-tyrosine to dihydroxyphenylalanine, which was further oxidized to a melaninlike substance. Growth of a strain of B. stearothermophilus was not slowed by m-tyrosine, but a strain of Escherichia coli grew at a reduced rate.

摘要

阿伦森,约翰·N.(亚利桑那州立大学,坦佩),以及杰拉尔德·R.韦尔默斯。间酪氨酸对芽孢杆菌属细菌生长和芽孢形成的影响。《细菌学杂志》90:38 - 46。1965年。——芳香族氨基酸类似物,dl-β-(3 - 羟基苯基)丙氨酸(间酪氨酸),在葡萄糖 - 盐基本培养基中,将枯草芽孢杆菌菌株的芽孢形成率降低至对照培养物的5%以下。质量倍增时间增加了两倍,但最终达到了与对照培养物相当的最大生长量。尽管用间酪氨酸 - 2 - C(14)替代了部分蛋白质苯丙氨酸,但在该类似物存在的情况下,生长速率降低的状态可以维持超过10次倍增。该生物体增殖至10到15个细胞的链长。与已开始自溶和形成芽孢的正常培养物相比,这些细胞在达到最大生长后持续存在了许多小时。蜡样芽孢杆菌、苏云金芽孢杆菌和巨大芽孢杆菌菌株对间酪氨酸的反应与枯草芽孢杆菌相似。此外,苏云金芽孢杆菌和蜡样芽孢杆菌将间酪氨酸转化为二羟基苯丙氨酸,后者进一步氧化为类似黑色素的物质。嗜热脂肪芽孢杆菌菌株的生长未因间酪氨酸而减缓,但大肠杆菌菌株的生长速率降低。

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