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弧菌科中lux基因水平转移发生率的系统发育分析。

Phylogenetic analysis of the incidence of lux gene horizontal transfer in Vibrionaceae.

作者信息

Urbanczyk Henryk, Ast Jennifer C, Kaeding Allison J, Oliver James D, Dunlap Paul V

机构信息

Department of Ecology and Evolutionary Biology, 830 North University Avenue, University of Michigan, Ann Arbor, MI 48109-1048, USA.

出版信息

J Bacteriol. 2008 May;190(10):3494-504. doi: 10.1128/JB.00101-08. Epub 2008 Mar 21.

Abstract

Horizontal gene transfer (HGT) is thought to occur frequently in bacteria in nature and to play an important role in bacterial evolution, contributing to the formation of new species. To gain insight into the frequency of HGT in Vibrionaceae and its possible impact on speciation, we assessed the incidence of interspecies transfer of the lux genes (luxCDABEG), which encode proteins involved in luminescence, a distinctive phenotype. Three hundred three luminous strains, most of which were recently isolated from nature and which represent 11 Aliivibrio, Photobacterium, and Vibrio species, were screened for incongruence of phylogenies based on a representative housekeeping gene (gyrB or pyrH) and a representative lux gene (luxA). Strains exhibiting incongruence were then subjected to detailed phylogenetic analysis of horizontal transfer by using multiple housekeeping genes (gyrB, recA, and pyrH) and multiple lux genes (luxCDABEG). In nearly all cases, housekeeping gene and lux gene phylogenies were congruent, and there was no instance in which the lux genes of one luminous species had replaced the lux genes of another luminous species. Therefore, the lux genes are predominantly vertically inherited in Vibrionaceae. The few exceptions to this pattern of congruence were as follows: (i) the lux genes of the only known luminous strain of Vibrio vulnificus, VVL1 (ATCC 43382), were evolutionarily closely related to the lux genes of Vibrio harveyi; (ii) the lux genes of two luminous strains of Vibrio chagasii, 21N-12 and SB-52, were closely related to those of V. harveyi and Vibrio splendidus, respectively; (iii) the lux genes of a luminous strain of Photobacterium damselae, BT-6, were closely related to the lux genes of the lux-rib(2) operon of Photobacterium leiognathi; and (iv) a strain of the luminous bacterium Photobacterium mandapamensis was found to be merodiploid for the lux genes, and the second set of lux genes was closely related to the lux genes of the lux-rib(2) operon of P. leiognathi. In none of these cases of apparent HGT, however, did acquisition of the lux genes correlate with phylogenetic divergence of the recipient strain from other members of its species. The results indicate that horizontal transfer of the lux genes in nature is rare and that horizontal acquisition of the lux genes apparently has not contributed to speciation in recipient taxa.

摘要

水平基因转移(HGT)被认为在自然界的细菌中频繁发生,并在细菌进化中发挥重要作用,有助于新物种的形成。为了深入了解弧菌科中HGT的频率及其对物种形成的可能影响,我们评估了lux基因(luxCDABEG)的种间转移发生率,该基因编码参与发光的蛋白质,这是一种独特的表型。我们筛选了303株发光菌株,其中大多数是最近从自然界分离出来的,代表了11个嗜盐弧菌属、发光杆菌属和弧菌属的物种,以检测基于一个代表性管家基因(gyrB或pyrH)和一个代表性lux基因(luxA)的系统发育不一致性。然后,对表现出不一致性的菌株,使用多个管家基因(gyrB、recA和pyrH)和多个lux基因(luxCDABEG)进行水平转移的详细系统发育分析。在几乎所有情况下,管家基因和lux基因的系统发育都是一致的,没有一个发光物种的lux基因取代另一个发光物种的lux基因的情况。因此,lux基因在弧菌科中主要是垂直遗传的。这种一致性模式的少数例外情况如下:(i)创伤弧菌唯一已知的发光菌株VVL1(ATCC 43382)的lux基因在进化上与哈维弧菌的lux基因密切相关;(ii)查加斯弧菌的两株发光菌株21N - 12和SB - 52的lux基因分别与哈维弧菌和灿烂弧菌的lux基因密切相关;(iii)美人鱼发光杆菌的一株发光菌株BT - 6的lux基因与颌下发光杆菌lux - rib(2)操纵子的lux基因密切相关;(iv)发现发光细菌曼氏发光杆菌的一个菌株的lux基因是部分二倍体,第二套lux基因与颌下发光杆菌lux - rib(2)操纵子的lux基因密切相关。然而,在这些明显的HGT案例中,没有一个案例中lux基因的获得与受体菌株与其物种其他成员的系统发育分歧相关。结果表明,自然界中lux基因的水平转移很少见,并且lux基因的水平获得显然没有促进受体分类群的物种形成。

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