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Applied and Environmental Microbiology, March 2008, p. 1653-1655, Vol. 74, No. 5
0099-2240/08/$08.00+0 doi:10.1128/AEM.01773-07
Copyright © 2008, American Society for Microbiology. All Rights Reserved.

Nattawan Promadej,2,
Jae-Won Kim,1 and
S. Kathariou1*
North Carolina State University, Department of Food Science, Raleigh, North Carolina 27695,1 Department of Microbiology, University of Hawaii, Honolulu, Hawaii 968222
Received 31 July 2007/ Accepted 4 December 2007
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In earlier studies, gtcA and the gltA-gltB cassette were found to be essential for serotype-specific glycosylation of the teichoic acid of L. monocytogenes serotype 4b with glucose and galactose (8, 12). Within L. monocytogenes, the gltA-gltB cassette is found only in strains of the serotype 4b complex (serotype 4b and the highly similar serotypes 4d and 4e) (8). Originally, gtcA was thought to be unique to serogroup 4 strains (12); however, subsequent studies and genome sequence data revealed that serotype 1/2a strains harbor a divergent gtcA homologue (80% and 82% identity at the nucleotide and amino acid sequence levels, respectively) in a genomically equivalent location (1, 4, 11). A gtcA mutant of the serotype 1/2a strain EGD-e was shown to be resistant to a phage (LMUP121) infecting both serotype 1/2 and 4b strains, but the impact of gtcA inactivation on teichoic acid composition of EGD-e was not investigated (1). In the case of serotype 4b, gtcA was found to be essential for teichoic acid glycosylation with galactose and glucose, and for reactivity of the bacteria with the serotype 4b-, 4d-, and 4e-specific monoclonal antibody c74.22 (5, 12). However, the role of gtcA in infection of serotype 4b strains by serotype 4b-specific and Listeria genus-specific phages has not been described.
In this study, we characterized phage susceptibility of strain M44, a derivative of the serotype 4b strain 4b1 harboring a single Tn916
E transposon insertion in gtcA. The construction and teichoic acid glycosylation defects of M44 were described earlier (12). M44 was found to be resistant not only to the serotype 4b-specific phage A500 but also to two different Listeria genus-specific phages, A511 (9, 10) and
20422-1, recently isolated from a turkey-processing plant in the United States (6). In contrast, the parental strain 4b1 was fully susceptible to all three phages (Table 1). To determine whether the observed resistance of the mutant to the phages was associated with failure of the phages to adsorb, adsorption assays were done. Adsorption of A500 and A511 onto the M44 cells was indeed impaired in comparison to that of the parental strain 4b1 (Table 2). In contrast, no consistent decrease in adsorption of
20422-1 onto M44 versus 4b1 was observed (data not shown).
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TABLE 1. Phage susceptibility and c74.22 reactivity of strains investigated in this study
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TABLE 2. Phage A500 and A511 adsorption deficiency of gtcA mutant
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1.5-kb product, as would be expected for gtcA cloned into pPL2 (data not shown).
The complemented strain recovered reactivity with the serotype 4b-specific monoclonal antibody c74.22, which recognizes glycosylated teichoic acid and which did not react with M44 (Fig. 1 and Table 1). The c74.22 reactivity of the complemented strain was indistinguishable from that of the parental strain, as was also observed earlier with a complementation derivative harboring gtcA in trans (12). Infection of M44::pPL95 with A500, A511, and
20422-1 showed that, in contrast to M44, the complemented strain was now susceptible to these phages (Table 1). Furthermore, adsorption of A511 and A500 to the complemented strain (M44::pPL95) was partially restored (Table 2). The reasons for lack of complete restoration of adsorption are unclear. It is possible that regulation of gtcA expression in the integrated construct may differ from that in the original location. However, the apparently lower adsorption did not result in detectible differences in phage susceptibility and c74.22 reactivity under the conditions employed.
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FIG. 1. cis complementation of surface antigen expression of M44 with wild-type gtcA using colony immunoblotting with monoclonal antibody c74.22. Overnight cultures were spotted on the nitrocellulose membrane in triplicate and processed as described previously (12). From top to bottom are shown 4b1 (parental strain), M44 (transposon-induced gtcA mutant), M44::pPL95 (M44 harboring pLP95), and M44::pPL2 (M44 harboring cloning vector pPL2).
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20422-1 did not appear to be impaired in adsorption onto M44 cells; this phage also adsorbed with similar efficiency onto M44 cells harboring pPL2 or pPL95 (data not shown). These findings are in agreement with earlier results that suggested that the receptor for
20422-1 was different from that for A511 (2). The findings also suggest that the observed resistance of M44 to
20422-1 was due not to failure of this phage to adsorb but to a yet unidentified step that requires intact teichoic acid (and is impaired in M44).
The overall findings with M44 and the genetically complemented mutant (M44::pPL95) constitute strong evidence that gtcA is required for susceptibility of the bacteria to listeriaphage and that glycosylated teichoic acid is required for adsorption of A500 and A511. In the case of the serotype 4b-specific phage A500, our results are in agreement with previous findings indicating that teichoic acid served as receptor for this phage (15). The receptor of the genus-specific phage A511 has been shown to be peptidoglycan (15), and previous studies showed that peptidoglycan was not affected in M44 (12). However, it is possible that the alterations in teichoic acid glycosylation associated with gtcA inactivation impaired topological aspects of cell wall conformation that may be required for proper recognition of peptidoglycan receptors by A511 or for full access of this phage to its receptors. The receptor for the other wide-host-range phage tested here,
20422-1, has not yet been determined but appears to be different from those for A500 or A511. Mechanisms underlying the observed resistance of the gtcA mutant to this phage remain unknown. However, restoration of susceptibility to
20422-1 in the genetically complemented strain M44::pPL95 (Table 1) suggests that, similarly to A500 and A511, this phage requires glycosylated teichoic acid and intact gtcA for infection of serotype 4b bacteria.
DNA sequence analysis of gtcA in both serotype 1/2a and 4b strains has revealed that the G+C content of this gene is noticeably lower than the average for L. monocytogenes and suggested the possibility that it has been acquired by L. monocytogenes via horizontal transfer, from a currently unidentified source (1, 12). Further studies are needed to elucidate the mechanisms driving the observed sequence diversity of the gene in the different serogroups and underlying the gene's apparent role in the organism's susceptibility to both serotype-specific and genus-specific phages.
We thank R. Calendar for A500 and pPL2 and M. Loessner for the gift of A511. We acknowledge advice and feedback from Driss Elhanafi, the expert technical support of Robin Siletzky, and the encouragement of all members of our laboratory.
Published ahead of print on 11 January 2008. ![]()
Present address: University of Georgia College of Veterinary Medicine, Athens, GA 30602. ![]()
Present address: Centers for Disease Control and Prevention, Atlanta, GA 30333. ![]()
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