HOLINS - FORM AND FUNCTION IN BACTERIOPHAGE LYSIS

被引:206
作者
YOUNG, R [1 ]
BLASI, U [1 ]
机构
[1] UNIV VIENNA,BIOCTR,INST MICROBIOL & GENET,A-1030 VIENNA,AUSTRIA
关键词
BACTERIOPHAGE LYSIS; HOLIN; ENDOLYSIN;
D O I
10.1016/0168-6445(94)00079-4
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
During the lytic cycle of most bacteriophages, a phage-encoded peptidoglycan-degrading activity is elaborated, At least four entirely distinct types of enzymes fulfill this role and are given the generic name 'endolysin'. Endolysins characterized to date are synthesized without a signal sequence and thus accumulate fully folded and active in the cytosol during the vegetative phase. Small membrane proteins are required in order for endolysins to gain access to the peptidoglycan. Because the available data suggest that the membrane lesion formed by these proteins is stable and non-specific, these proteins have been given the designation 'holins' ('hole'-formers). Analysis of the primary sequence suggests a simple membrane topology with two or more membrane-spanning helical domains and a highly charged, hydrophilic C-terminus. Comparison of the sequences of holins from phages of Gram-negative hosts suggests there are at least two major holin groups. Putative holin genes have also been found in bacteriophages of Gram-positive bacteria. Altogether, in phages of Eubacteria, 11 or more unrelated gene families which share the functional and structural characteristics of holins have been identified. Genetic and physiological analysis suggest that holins are primarily regulated at the level of function. Holin function is modulated in some cases by a second protein encoded by the holin gene. The primary regulation of holin function, however, appears to be intrinsic to the holin structure itself, since a missense allele of the S holin gene of phage A has been found which abolishes the normal delay that allows the vegetative phase to generate a useful number of progeny.
引用
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页码:191 / 205
页数:15
相关论文
共 73 条
[41]   LOCATION AND UNUSUAL MEMBRANE TOPOLOGY OF THE IMMUNITY PROTEIN OF THE ESCHERICHIA-COLI PHAGE-T4 [J].
LU, MJ ;
STIERHOF, YD ;
HENNING, U .
JOURNAL OF VIROLOGY, 1993, 67 (08) :4905-4913
[42]   THE IMMUNITY (IMM) GENE OF ESCHERICHIA-COLI BACTERIOPHAGE-T4 [J].
LU, MJ ;
HENNING, U .
JOURNAL OF VIROLOGY, 1989, 63 (08) :3472-3478
[43]   MUTATION IN BACTERIOPHAGE T3 AFFECTING HOST-CELL LYSIS [J].
MIYAZAKI, JI ;
RYO, Y ;
FUJISAWA, H ;
MINAGAWA, T .
VIROLOGY, 1978, 89 (01) :327-329
[44]  
MOSIG G, 1989, New Biologist, V1, P171
[45]  
NAM K, 1989, Journal of Bacteriology, V72, P204
[46]  
NAM K, 1991, THESIS TEXAS A M U C
[47]   LOCALIZATION AND MOLECULAR MODELING OF THE MEMBRANE-INSERTED DOMAIN OF THE 9TH COMPONENT OF HUMAN-COMPLEMENT AND PERFORIN [J].
PEITSCH, MC ;
AMIGUET, P ;
GUY, R ;
BRUNNER, J ;
MAIZEL, JV ;
TSCHOPP, J .
MOLECULAR IMMUNOLOGY, 1990, 27 (07) :589-&
[48]   LOCATION, CHARACTERIZATION AND EXPRESSION OF LYTIC ENZYME-ENCODING GENE, LYTA, OF LACTOCOCCUS-LACTIS BACTERIOPHAGE-PHI US3 [J].
PLATTEEUW, C ;
DEVOS, WM .
GENE, 1992, 118 (01) :115-120
[49]   MUTATIONAL ANALYSIS OF BACTERIOPHAGE-LAMBDA LYSIS GENE-S [J].
RAAB, R ;
NEAL, G ;
GARRETT, J ;
GRIMAILA, R ;
FUSSELMAN, R ;
YOUNG, R .
JOURNAL OF BACTERIOLOGY, 1986, 167 (03) :1035-1042
[50]   DOMINANCE IN LAMBDA-S MUTATIONS AND EVIDENCE FOR TRANSLATIONAL CONTROL [J].
RAAB, R ;
NEAL, G ;
SOHASKEY, C ;
SMITH, J ;
YOUNG, R .
JOURNAL OF MOLECULAR BIOLOGY, 1988, 199 (01) :95-105