Young David M, Parke Donna, Ornston L Nicholas
1Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, Massachusetts 02115, USA.
Annu Rev Microbiol. 2005;59:519-51. doi: 10.1146/annurev.micro.59.051905.105823.
The genetic and physiological properties of Acinetobacter baylyi strain ADP1 make it an inviting subject for investigation of the properties underlying its nutritional versatility. The organism possesses a relatively small genome in which genes for most catabolic functions are clustered in several genetic islands that, unlike pathogenicity islands, give little evidence of horizontal transfer. Coupling mutagenic polymerase chain reaction to natural transformation provides insight into how structure influences function in transporters, transcriptional regulators, and enzymes. With appropriate selection, mutants in which such molecules have acquired novel function may be obtained. The extraordinary competence of A. baylyi for natural transformation and the ease with which it expresses heterologous genes make it a promising platform for construction of novel metabolic systems. Steps toward this goal should take into account the complexity of existing pathways in which transmembrane trafficking plays a significant role.
拜氏不动杆菌ADP1菌株的遗传和生理特性使其成为研究其营养多样性潜在特性的理想对象。该生物体拥有相对较小的基因组,其中大多数分解代谢功能的基因聚集在几个基因岛中,与致病岛不同,这些基因岛几乎没有水平转移的证据。将诱变聚合酶链反应与自然转化相结合,有助于深入了解结构如何影响转运蛋白、转录调节因子和酶的功能。通过适当的筛选,可以获得这些分子获得新功能的突变体。拜氏不动杆菌在自然转化方面的非凡能力以及表达异源基因的简便性,使其成为构建新型代谢系统的有前途的平台。朝着这一目标前进的步骤应考虑到跨膜运输起重要作用的现有途径的复杂性。