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柑橘螺原体运动突变体的分离、特性鉴定及互补作用

Isolation, characterization, and complementation of a motility mutant of Spiroplasma citri.

作者信息

Jacob C, Nouzières F, Duret S, Bové J M, Renaudin J

机构信息

Laboratoire de Biologie Cellulaire et Moléculaire, Institut National de la Recherche Agronomique and Université Victor Segalen Bordeaux 2, Villenave d'Ornon, France.

出版信息

J Bacteriol. 1997 Aug;179(15):4802-10. doi: 10.1128/jb.179.15.4802-4810.1997.

Abstract

The helical mollicute Spiroplasma citri, when growing on low-agar medium, forms fuzzy colonies with occasional surrounding satellite colonies due to the ability of the spiroplasmal cells to move through the agar matrix. In liquid medium, these helical organisms flex, twist, and rotate rapidly. By using Tn4001 insertion mutagenesis, a motility mutant was isolated on the basis of its nondiffuse, sharp-edged colonies. Dark-field microscopy observations revealed that the organism flexed at a low frequency and had lost the ability to rotate about the helix axis. In this mutant, the transposon was shown to be inserted into an open reading frame encoding a putative polypeptide of 409 amino acids for which no significant homology with known proteins was found. The corresponding gene, named scm1, was recovered from the wild-type strain and introduced into the motility mutant by using the S. citri oriC plasmid pBOT1 as the vector. The appearance of fuzzy colonies and the observation that spiroplasma cells displayed rotatory and flexional movements showed the motile phenotype to be restored in the spiroplasmal transformants. The functional complementation of the motility mutant proves the scm1 gene product to be involved in the motility mechanism of S. citri.

摘要

螺旋形的植原体柑橘螺原体在低琼脂培养基上生长时,由于螺原体细胞能够穿过琼脂基质,会形成模糊的菌落,偶尔还有周围的卫星菌落。在液体培养基中,这些螺旋状生物体快速弯曲、扭曲和旋转。通过使用Tn4001插入诱变,基于其不扩散、边缘清晰的菌落分离出一个运动突变体。暗视野显微镜观察显示,该生物体低频弯曲,并且失去了围绕螺旋轴旋转的能力。在这个突变体中,转座子被证明插入到一个开放阅读框中,该开放阅读框编码一个推定的409个氨基酸的多肽,未发现与已知蛋白质有明显同源性。从野生型菌株中回收了相应的基因,命名为scm1,并以柑橘螺原体oriC质粒pBOT1为载体将其导入运动突变体。模糊菌落的出现以及螺原体细胞表现出旋转和弯曲运动的观察结果表明,运动表型在螺原体转化体中得以恢复。运动突变体的功能互补证明scm1基因产物参与柑橘螺原体的运动机制。

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