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Heme as an iron source and as a target for manganese-mediated regulation of iron metabolism in Bradyrhizobium japonicum.

机译:血红素作为铁源,也是锰缓释根瘤菌中锰介导的铁代谢调控的靶标。

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摘要

Iron is required for a wide variety of biological functions but can be a limiting nutrient in most bacterial niches. Many bacteria can utilize heme as an alternative source of nutritional iron. However heme degrading enzymes called heme oxygenases (HOs) have been identified in only a few bacterial pathogens of animals. Non-pathogenic rhizobia including Bradyrhizobium japonicum can utilize heme as an iron source, but no potential HO candidates have been identified in their annotated genomes. Here, bioinformatics analyses of the B. japonicum genome identified two paralogous genes renamed hmuQ (bll7075) and hmuD (bll7423) that encode proteins with weak similarity to the heme-degrading monooxygenase IsdG from Staphylococcus aureus. The hmuQ gene is clustered with known heme transport genes in the genome. Recombinant HmuQ bound heme with a Kd value of 0.8 muM, and showed spectral properties consistent with a HO. In the presence of a reductant, HmuQ catalyzed the degradation of heme and the formation of biliverdin. The hmuQ and hmuD genes complemented a Corynebacterium ulcerans heme oxygenase mutant in trans for utilization of heme as the sole iron source for growth. Furthermore, homologs of hmuQ and hmuD were identified in many bacterial genera, and the recombinant homolog from Brucella melitensis bound heme and catalyzed its degradation. These findings show that hmuQ and hmuD encode heme oxygenases, and indicate that the IsdG family of heme-degrading monooxygenases is not restricted to Gram positive pathogenic bacteria.In addition to being a source of iron, heme also serves an important signaling function that contributes to the control of iron homeostasis in B. japonicum. The iron response regulator (Irr) protein in this bacterium senses iron through the status of heme biosynthesis to globally regulate iron-dependent gene expression. Heme binds directly to Irr to trigger its degradation. Here, we show that severe manganese limitation created by growth of a Mn 2+ transport mutant in manganese limited media resulted in a cellular iron deficiency. In wild type cells, Irr levels were attenuated under manganese limitation, resulting in reduced promoter occupancy of target genes, and altered iron-dependent gene expression. Irr levels were high regardless of manganese availability in a heme-deficient mutant, indicating that manganese normally affects heme-dependent degradation of Irr. Manganese altered the secondary structure of Irr in vitro, and inhibited binding of heme to the protein. We propose that manganese limitation destabilizes Irr under low iron conditions by lowering the threshold of heme that can trigger Irr degradation. Thus, manganese controls iron homeostasis in B. japonicum by interfering with the signaling activity of the heme molecule.
机译:铁是多种生物学功能所必需的,但在大多数细菌生态位中,铁可能是限制营养。许多细菌可以利用血红素作为营养铁的替代来源。然而,仅在一些动物的细菌病原体中发现了称为血红素加氧酶(HOs)的血红素降解酶。非致病性根瘤菌(包括日本根瘤菌)可以利用血红素作为铁源,但尚未在其注释基因组中鉴定出潜在的HO候选物。在这里,日本血吸虫基因组的生物信息学分析确定了两个同源基因,分别重命名为hmuQ(bll7075)和hmuD(bll7423),它们编码与金黄色葡萄球菌的血红素降解单加氧酶IsdG具有弱相似性的蛋白质。 hmuQ基因与基因组中已知的血红素转运基因聚类。重组HmuQ结合血红素的Kd值为0.8μM,并显示与HO一致的光谱特性。在还原剂的存在下,HmuQ催化血红素的降解和联肝素的形成。 hmuQ和hmuD基因与反式棒状杆菌血红素加氧酶突变体互补,可将血红素用作生长的唯一铁源。此外,在许多细菌属中鉴定出hmuQ和hmuD的同源物,并且来自布鲁氏布鲁氏菌的重组同源物结合血红素并催化其降解。这些发现表明hmuQ和hmuD编码血红素加氧酶,并表明IsdG血红素降解单加氧酶家族不仅限于革兰氏阳性致病菌。血红素不仅是铁的来源,而且还起着重要的信号传导功能。日本血吸虫中铁稳态的控制。该细菌中的铁反应调节剂(Irr)蛋白通过血红素生物合成的状态来感应铁,从而全面调节铁依赖性基因的表达。血红素直接结合Irr触发其降解。在这里,我们显示了由锰限制培养基中Mn 2+转运突变体的生长造成的严重锰限制导致细胞铁缺乏。在野生型细胞中,在锰限制下Irr水平降低,导致靶基因的启动子占有率降低,并改变了铁依赖性基因的表达。无论血红素缺陷型突变体中的锰可用性如何,Irr的水平都很高,这表明锰通常会影响血红素依赖性的Irr降解。锰在体外改变了Irr的二级结构,并抑制了血红素与蛋白质的结合。我们建议锰限制通过降低可触发Irr降解的血红素阈值来降低低铁条件下的Irr稳定性。因此,锰通过干扰血红素分子的信号传导活性来控制日本血吸虫中的铁稳态。

著录项

  • 作者

    Puri, Sumant.;

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Biology Microbiology.Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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