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疏螺旋体属物种中的嘌呤补救途径。

Purine salvage pathways among Borrelia species.

作者信息

Pettersson Jonas, Schrumpf Merry E, Raffel Sandra J, Porcella Stephen F, Guyard Cyril, Lawrence Kevin, Gherardini Frank C, Schwan Tom G

机构信息

Rocky Mountain Laboratories, 903 S. Fourth Street, Hamilton, MT 59840, USA.

出版信息

Infect Immun. 2007 Aug;75(8):3877-84. doi: 10.1128/IAI.00199-07. Epub 2007 May 14.

Abstract

Genome sequencing projects on two relapsing fever spirochetes, Borrelia hermsii and Borrelia turicatae, revealed differences in genes involved in purine metabolism and salvage compared to those in the Lyme disease spirochete Borrelia burgdorferi. The relapsing fever spirochetes contained six open reading frames that are absent from the B. burgdorferi genome. These genes included those for hypoxanthine-guanine phosphoribosyltransferase (hpt), adenylosuccinate synthase (purA), adenylosuccinate lyase (purB), auxiliary protein (nrdI), the ribonucleotide-diphosphate reductase alpha subunit (nrdE), and the ribonucleotide-diphosphate reductase beta subunit (nrdF). Southern blot assays with multiple Borrelia species and isolates confirmed the presence of these genes in the relapsing fever group of spirochetes but not in B. burgdorferi and related species. TaqMan real-time reverse transcription-PCR demonstrated that the chromosomal genes (hpt, purA, and purB) were transcribed in vitro and in mice. Phosphoribosyltransferase assays revealed that, in general, B. hermsii exhibited significantly higher activity than did the B. burgdorferi cell lysate, and enzymatic activity was observed with adenine, hypoxanthine, and guanine as substrates. B. burgdorferi showed low but detectable phosphoribosyltransferase activity with hypoxanthine even though the genome lacks a discernible ortholog to the hpt gene in the relapsing fever spirochetes. B. hermsii incorporated radiolabeled hypoxanthine into RNA and DNA to a much greater extent than did B. burgdorferi. This complete pathway for purine salvage in the relapsing fever spirochetes may contribute, in part, to these spirochetes achieving high cell densities in blood.

摘要

对两种回归热螺旋体——赫氏疏螺旋体(Borrelia hermsii)和杜氏疏螺旋体(Borrelia turicatae)进行的基因组测序项目显示,与莱姆病螺旋体伯氏疏螺旋体(Borrelia burgdorferi)相比,它们在嘌呤代谢和补救途径相关基因上存在差异。回归热螺旋体含有6个伯氏疏螺旋体基因组中不存在的开放阅读框。这些基因包括次黄嘌呤 - 鸟嘌呤磷酸核糖转移酶(hpt)、腺苷酸琥珀酸合成酶(purA)、腺苷酸琥珀酸裂解酶(purB)、辅助蛋白(nrdI)、核糖核苷酸二磷酸还原酶α亚基(nrdE)和核糖核苷酸二磷酸还原酶β亚基(nrdF)的基因。对多种疏螺旋体物种和分离株进行的Southern杂交分析证实,这些基因存在于回归热螺旋体组中,但在伯氏疏螺旋体及相关物种中不存在。TaqMan实时逆转录PCR表明,染色体基因(hpt、purA和purB)在体外和小鼠体内均有转录。磷酸核糖转移酶分析显示,总体而言,赫氏疏螺旋体的活性显著高于伯氏疏螺旋体细胞裂解物,并且以腺嘌呤、次黄嘌呤和鸟嘌呤作为底物时可观察到酶活性。尽管基因组中缺乏回归热螺旋体hpt基因的可识别直系同源物,但伯氏疏螺旋体对次黄嘌呤仍表现出低但可检测到的磷酸核糖转移酶活性。赫氏疏螺旋体将放射性标记的次黄嘌呤掺入RNA和DNA的程度比伯氏疏螺旋体大得多。回归热螺旋体中这种完整的嘌呤补救途径可能部分有助于这些螺旋体在血液中达到高细胞密度。

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本文引用的文献

1
Diversity and distribution of Borrelia hermsii.
Emerg Infect Dis. 2007 Mar;13(3):436-42. doi: 10.3201/eid1303.060958.
3
The plasma membrane permease PfNT1 is essential for purine salvage in the human malaria parasite Plasmodium falciparum.
Proc Natl Acad Sci U S A. 2006 Jun 13;103(24):9286-91. doi: 10.1073/pnas.0602590103. Epub 2006 Jun 2.
4
Function and evolution of plasmid-borne genes for pyrimidine biosynthesis in Borrelia spp.
J Bacteriol. 2006 Feb;188(3):909-18. doi: 10.1128/JB.188.3.909-918.2006.
7
Horizontally acquired genes for purine salvage in Borrelia spp. causing relapsing fever.
Infect Immun. 2005 Sep;73(9):6165-8. doi: 10.1128/IAI.73.9.6165-6168.2005.
9
Relapsing fever spirochetes contain chromosomal genes with unique direct tandemly repeated sequences.
Infect Immun. 2005 May;73(5):3025-37. doi: 10.1128/IAI.73.5.3025-3037.2005.
10
Comparative analysis of the Borrelia garinii genome.
Nucleic Acids Res. 2004 Nov 16;32(20):6038-46. doi: 10.1093/nar/gkh953. Print 2004.

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