Antimicrobial peptides The ancient arm of the human immune system

被引:537
作者
Wiesner, Jochen [1 ]
Vilcinskas, Andreas [1 ]
机构
[1] Fraunhofer Inst Mol Biol & Angew Oekol, Projektgrp Bioressourcen, Giessen, Germany
关键词
antimicrobial peptides; defensins; cathelicidins; kinocidins; innate immunity; drug development; clinical studies; BACTERICIDAL/PERMEABILITY-INCREASING PROTEIN; HISTATIN-CONTAINING MOUTHRINSE; DERMCIDIN-DERIVED PEPTIDES; PAROTID SECRETORY PROTEIN; PROLINE-RICH PROTEINS; LYSOZYME-LIKE PROTEIN; TRAPPIN-2; PRE-ELAFIN; N-TERMINAL PEPTIDE; CANDIDA-ALBICANS; ANTIBACTERIAL ACTIVITY;
D O I
10.4161/viru.1.5.12983
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The production of peptides and small proteins with microbicidal activity collectively called antimicrobial peptides (AMPs) is commonly considered to be a primitive mechanism of immunity and has been extensively studied in insects and other non-vertebrate organisms. In addition, a variety of AMPs present in amphibian skin secretion has been well characterized. There is now increasing evidence that AMPs play a crucial role in human immunity as well. Virtually all human tissues and cells typically exposed to microbes are able to produce AMPs. Important AMPs belonging to two structurally distinct classes, known as the defensins and the cathelicidins, are mainly produced by epithelial cells and neutrophils. AMPs significantly contributing to the chemical skin barrier are represented by dermcidin, psoriasin and RNase 7. The antimicrobial activity of saliva largely depends on histidine-rich AMPs known as histatins. Many more, in part less well-known AMPs and AMP-like proteins exist that exhibit various additional functions, apart from their antimicrobial properties. Among them, the neutrophil granule proteins azurocidin and cathepsin G are members of a family of serine-protease homologues called serprocidins and play a role in the regulation of the immune response and degradation of extracellular matrix proteins respectively. As another AMP-like protein of the neutrophil granule content, bactericidal/ permeability increasing protein (BPI) is both able to permeabilize bacterial membranes and to function as an opsonin. The whey acidic protein (WAP) domain containing class of AMPs, including secretory leukocyte protease inhibitor (SLPI), elafin and trappin-2, is equally important in inhibition of neutrophil serine proteases and killing of microbes. Certain CC or CXC chemokines are known to possess antimicrobial properties and therefore are called kinocidins. Several kinocidins, including thrombocidin-1 and -2, are contained in the alpha-granules of platelets. A cytoplasmic AMP described as ubiquicidin turned out to be identical with the strongly basic ribosomal protein S30. Proteolytic cleavage of the histone protein H2A in the stomach gives rise to an AMP initially described as buforin I. Adrenomedullin is a hormone-like AMP exhibiting vasodilatory and hypotensive effects. Lysozyme is mainly known for its cell wall degrading activity, but is also capable of non-enzymatic killing of bacteria. An iron-binding protein present in milk and other secretions named lactoferrin was shown to possess antimicrobial and antiviral activity and has been implicated in protection against cancer. Clinical studies on the treatment of infectious diseases have been performed with artificial peptides derived from human lactoferrin, histatins and BPI in addition to porcine protegrins, frog magainins and bovine indolicidin. Omiganan, representing an indolicidin derivative, has been demonstrated to be effective in the treatment of acne and catheter-related local infections and is currently considered to be the most promising AMP-based drug candidate.
引用
收藏
页码:440 / 464
页数:25
相关论文
共 237 条
  • [21] Novel innate immune functions of the whey acidic protein family
    Bingle, Colin D.
    Vyakarnam, Annapurna
    [J]. TRENDS IN IMMUNOLOGY, 2008, 29 (09) : 444 - 453
  • [22] Characterisation and expression of SPLUNC2, the human orthologue of rodent parotid secretory protein
    Bingle, Lynne
    Barnes, Frances A.
    Lunn, Hayley
    Musa, Maslinda
    Webster, Steve
    Douglas, C. W. Ian
    Cross, Simon S.
    High, Alec S.
    Bingle, Colin D.
    [J]. HISTOCHEMISTRY AND CELL BIOLOGY, 2009, 132 (03) : 339 - 349
  • [23] Interleukin-8-derived peptide has antibacterial activity
    Björstad, A
    Fu, HM
    Karlsson, A
    Dahlgren, C
    Bylund, J
    [J]. ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2005, 49 (09) : 3889 - 3895
  • [24] Mammalian antimicrobial proteins and peptides:: overview on the RNase A superfamily members involved in innate host defence
    Boix, Ester
    Nogues, M. Victoria
    [J]. MOLECULAR BIOSYSTEMS, 2007, 3 (05) : 317 - 335
  • [25] Bactericidal activity of Lfchimera is stronger and less sensitive to ionic strength than its constituent lactoferricin and lactoferrampin peptides
    Bolscher, Jan G. M.
    Adao, Regina
    Nazmi, Kamran
    van den Keybus, Petra A. M.
    van't Hof, Wim
    Amerongen, Arie V. Nieuw
    Bastos, Margarida
    Veerman, Enno C. I.
    [J]. BIOCHIMIE, 2009, 91 (01) : 123 - 132
  • [26] Antibacterial peptides: basic facts and emerging concepts
    Boman, HG
    [J]. JOURNAL OF INTERNAL MEDICINE, 2003, 254 (03) : 197 - 215
  • [27] Neutrophil granules: a library of innate immunity proteins
    Borregaard, Niels
    Sorensen, Ole E.
    Theilgaard-Wnchl, Kim
    [J]. TRENDS IN IMMUNOLOGY, 2007, 28 (08) : 340 - 345
  • [28] Involvement of semenogelin-derived peptides in the antibacterial activity of human seminal plasma
    Bourgeon, F
    Evrard, B
    Brillard-Bourdet, M
    Colleu, D
    Jégou, B
    Pineau, C
    [J]. BIOLOGY OF REPRODUCTION, 2004, 70 (03) : 768 - 774
  • [29] The β-thromboglobulins and platelet factor 4:: blood platelet-derived CXC chemokines with divergent roles in early neutrophil regulation
    Brandt, E
    Petersen, F
    Ludwig, A
    Ehlert, JE
    Bock, L
    Flad, HD
    [J]. JOURNAL OF LEUKOCYTE BIOLOGY, 2000, 67 (04) : 471 - 478
  • [30] EF-hands at atomic resolution: the structure of human psoriasin (S100A7) solved by MAD phasing
    Brodersen, DE
    Etzerodt, M
    Madsen, P
    Celis, JE
    Thogersen, HC
    Nyborg, J
    Kjeldgaard, M
    [J]. STRUCTURE, 1998, 6 (04) : 477 - 489