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枯草芽孢杆菌中的转化:参与供体DNA结合与进入的一种75,000道尔顿蛋白质复合物的进一步特性分析。

Transformation in Bacillus subtilis: further characterization of a 75,000-dalton protein complex involved in binding and entry of donor DNA.

作者信息

Smith H, Wiersma K, Venema G, Bron S

出版信息

J Bacteriol. 1985 Oct;164(1):201-6. doi: 10.1128/jb.164.1.201-206.1985.

Abstract

A 75,000-dalton protein complex purified from membranes of competent Bacillus subtilis cells was previously shown to be involved in both binding and entry of donor DNA during transformation. The complex, consisting of two polypeptides, a and b, in approximately equal amounts, showed strong DNA binding as well as nuclease activity (H. Smith, K. Wiersma, S. Bron, and G. Venema, J. Bacteriol. 156:101-108, 1983). In the present experiments, peptide mapping indicated that the two polypeptides are not related. Chromatography on benzoylated, naphthoylated DEAE-cellulose showed that polypeptide b generated single-stranded regions in double-stranded DNA. A considerable amount of the DNA was rendered acid soluble by polypeptide b. The nuclease activity of polypeptide b was reduced in the presence of polypeptide a. This resulted in an increased fraction of high-molecular-weight double-stranded DNA containing single-stranded regions. The acid-soluble DNA degradation products formed by polypeptide b consisted exclusively of oligonucleotides. In contrast to its nuclease activity, which was specifically directed toward double-stranded DNA, the DNA binding of the native 75,000-dalton complex to single-stranded DNA was at least as efficient as to double-stranded DNA.

摘要

先前已表明,从感受态枯草芽孢杆菌细胞的膜中纯化出的一种75,000道尔顿的蛋白质复合物,在转化过程中参与供体DNA的结合和进入。该复合物由两种多肽a和b组成,含量大致相等,具有很强的DNA结合能力以及核酸酶活性(H. 史密斯、K. 维尔斯马、S. 布朗和G. 维内马,《细菌学杂志》156:101 - 108,1983年)。在本实验中,肽图谱分析表明这两种多肽没有相关性。在苯甲酰化、萘甲酰化的二乙氨基乙基纤维素上进行色谱分析表明,多肽b在双链DNA中产生单链区域。相当数量的DNA被多肽b变成酸溶性。在多肽a存在的情况下,多肽b的核酸酶活性降低。这导致含有单链区域的高分子量双链DNA的比例增加。多肽b形成的酸溶性DNA降解产物仅由寡核苷酸组成。与其专门针对双链DNA的核酸酶活性相反,天然的75,000道尔顿复合物与单链DNA的结合效率至少与与双链DNA的结合效率相同。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb11/214230/4d9b5496e271/jbacter00215-0212-a.jpg

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