Role and regulation of heme on acquisition in gram-negative pathogens

被引:94
|
作者
Runyen-Janecky, Laura J. [1 ]
机构
[1] Univ Richmond, Dept Biol, Richmond, VA 23173 USA
关键词
heme; hemin; hem; hemoglobin; iron; pathogens; regulation; Fur; OUTER-MEMBRANE PROTEIN; FERRIC UPTAKE REGULATOR; NONTYPABLE HAEMOPHILUS-INFLUENZAE; ESCHERICHIA-COLI O157-H7; CHOLERAE IRON TRANSPORT; PORPHYROMONAS-GINGIVALIS; PSEUDOMONAS-AERUGINOSA; VIBRIO-CHOLERAE; NEISSERIA-MENINGITIDIS; BINDING-PROTEIN;
D O I
10.3389/fcimb.2013.00055
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Bacteria that reside in animal tissues and/or cells must acquire iron from their host. However, almost all of the host iron is sequestered in iron-containing compounds and proteins, the majority of which is found within heme molecules. Thus, likely iron sources for bacterial pathogens (and non-pathogenic symbionts) are free heme and heme-containing proteins. Furthermore, the cellular location of the bacterial within the host (intra or extracellular) influences the amount and nature of the iron containing compounds available for transport. The low level of free iron in the host, coupled with the presence of numerous different heme sources, has resulted in a wide range of high-affinity iron acquisition strategies within bacteria. However, since excess iron and heme are toxic to bacteria, expression of these acquisition systems is highly regulated. Precise expression in the correct host environment at the appropriate times enables heme iron acquisitions systems to contribute to the growth of bacterial pathogens within the host. This mini-review will highlight some of the recent findings in these areas for gram-negative pathogens.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Heme Uptake and Utilization by Gram-Negative Bacterial Pathogens
    Richard, Kaylie L.
    Kelley, Brittni R.
    Johnson, Jeremiah G.
    [J]. FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2019, 9
  • [2] Multiresistant Gram-Negative Pathogens
    Koeck, Robin
    Herr, Caroline
    Kreienbrock, Lothar
    Schwarz, Stefan
    Tenhagen, Bernd-Alois
    Walther, Birgit
    [J]. DEUTSCHES ARZTEBLATT INTERNATIONAL, 2021, 118 (35-36): : 579 - +
  • [3] Permeability barriers of Gram-negative pathogens
    Zgurskaya, Helen I.
    Rybenkov, Valentin V.
    [J]. ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 2020, 1459 (01) : 5 - 18
  • [4] ANTIMICROBIAL SENSITIVITY OF GRAM-NEGATIVE PATHOGENS
    PETERSDORF, R
    HOOK, EW
    CURTIN, JA
    GROSSBERG, SE
    [J]. BULLETIN OF THE JOHNS HOPKINS HOSPITAL, 1961, 108 (01): : 48 - +
  • [5] Polymyxin Resistance in Gram-negative Pathogens
    Pavithra Srinivas
    Kaitlyn Rivard
    [J]. Current Infectious Disease Reports, 2017, 19
  • [6] What is in the pipeline for Gram-negative pathogens?
    Talbot, George H.
    [J]. EXPERT REVIEW OF ANTI-INFECTIVE THERAPY, 2008, 6 (01) : 39 - 49
  • [7] GRAM-NEGATIVE PATHOGENS IN SEPTICEMIC INFECTIONS
    YOUNG, LS
    STEVENS, P
    KAIJSER, B
    [J]. SCANDINAVIAN JOURNAL OF INFECTIOUS DISEASES, 1982, : 78 - 94
  • [8] Polymyxin Resistance in Gram-negative Pathogens
    Srinivas, Pavithra
    Rivard, Kaitlyn
    [J]. CURRENT INFECTIOUS DISEASE REPORTS, 2017, 19 (11)
  • [9] The role of Gram-negative rods in induction/regulation of apoptosis
    Kwiecinska, Joanna
    Reslinski, Adrian
    Gospodarek, Eugenia
    Grzanka, Alina
    [J]. POSTEPY MIKROBIOLOGII, 2007, 46 (02): : 125 - 137
  • [10] Acquisition of siderophores in Gram-negative bacteria
    Faraldo-Gómez, JD
    Sansom, MSP
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2003, 4 (02) : 105 - 116