Exploitation of a Bacterium-Encoded Lytic Transglycosylase by a Human Oral Lytic Phage To Facilitate Infection

被引:3
|
作者
Cen, Lujia [1 ]
Chang, Yunjie [2 ]
Bedree, Joseph K. [1 ]
Ma, Yansong [3 ]
Zhong, Qiu [4 ]
Utter, Daniel R. [5 ]
Dong, Pu-Ting [1 ]
Lux, Renate [6 ]
Bor, Batbileg [1 ,7 ]
Liu, Jun [2 ]
McLean, Jeffrey S. [8 ]
Le, Shuai [4 ]
He, Xuesong [1 ,7 ]
机构
[1] Forsyth Inst, Dept Microbiol, Cambridge, MA 02142 USA
[2] Yale Univ, Microbial Sci Inst, New Haven, CT USA
[3] Capital Univ Med, Beijing, Peoples R China
[4] Army Med Univ, Dept Microbiol, Chongqing, Peoples R China
[5] CALTECH, Div Geol & Planetary Sci, Pasadena, CA 91125 USA
[6] Univ Calif Los Angeles, Sch Dent, Sect Biosyst & Funct, Los Angeles, CA 90024 USA
[7] Harvard Sch Dent Med, Dept Oral Med Infect & Immun, Boston, MA 02115 USA
[8] Univ Washington, Dept Periodont, Seattle, WA 98195 USA
基金
中国国家自然科学基金;
关键词
oral lytic phage; lytic transglycosylase; oral microbiome; bacterial phage interaction; FLAGELLAR MOTOR; BACTERIOPHAGE; REVEALS; PEPTIDOGLYCAN; VISUALIZATION; ACTINOMYCES; EXPRESSION; VIRUSES; GENOME;
D O I
10.1128/jvi.01063-22
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Bacteriophages (phages) are an integral part of the human oral microbiome. Their roles in modulating bacterial physiology and shaping microbial communities have been discussed but remain understudied due to limited isolation and characterization of oral phage. Here, we report the isolation of LC001, a lytic phage targeting human oral Schaalia odontolytica (formerly known as Actinomyces odontolyticus) strain XH001. We showed that LC001 attached to and infected surface-grown, but not planktonic, XH001 cells, and it displayed remarkable host specificity at the strain level. Whole-genome sequencing of spontaneous LC001-resistant, surface-grown XH001 mutants revealed that the majority of the mutants carry nonsense or frameshift mutations in XH001 gene APY09_05145 (renamed ltg-1), which encodes a putative lytic transglycosylase (LT). The mutants are defective in LC001 binding, as revealed by direct visualization of the significantly reduced attachment of phage particles to the XH001 spontaneous mutants compared that to the wild type. Meanwhile, targeted deletion of ltg-1 produced a mutant that is defective in LC001 binding and resistant to LC001 infection even as surface-grown cells, while complementation of ltg-1 in the mutant background restored the LC001-sensitive phenotype. Intriguingly, similar expression levels of ltg-1 were observed in surface-grown and planktonic XH001, which displayed LC001-binding and nonbinding phenotypes, respectively. Furthermore, the overexpression of ltg-1 failed to confer an LC001-binding and -sensitive phenotype to planktonic XH001. Thus, our data suggested that rather than directly serving as a phage receptor, ltg-1-encoded LT may increase the accessibility of phage receptor, possibly via its enzymatic activity, by cleaving the peptidoglycan structure for better receptor exposure during peptidoglycan remodeling, a function that can be exploited by LC001 to facilitate infection. IMPORTANCE The evidence for the presence of a diverse and abundant phage population in the host-associated oral microbiome came largely from metagenomic analysis or the observation of virus-like particles within saliva/plaque samples, while the isolation of oral phage and investigation of their interaction with bacterial hosts are limited. Here, we report the isolation of LC001, the first lytic phage targeting oral Schaalia odontolytica. Our study suggested that LC001 may exploit the host bacterium-encoded lytic transglycosylase function to gain access to the receptor, thus facilitating its infection. The evidence for the presence of a diverse and abundant phage population in the host-associated oral microbiome came largely from metagenomic analysis or the observation of virus-like particles within saliva/plaque samples, while the isolation of oral phage and investigation of their interaction with bacterial hosts are limited. Here, we report the isolation of LC001, the first lytic phage targeting oral Schaalia odontolytica.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Adenovirus Death Protein (ADP) Is Required for Lytic Infection of Human Lymphocytes
    Murali, V. K.
    Ornelles, D. A.
    Gooding, L. R.
    Wilms, H. T.
    Huang, W.
    Tollefson, A. E.
    Wold, W. S. M.
    Garnett-Benson, C.
    JOURNAL OF VIROLOGY, 2014, 88 (02) : 903 - 912
  • [22] Efficient lytic infection of porcine endothelial cells by human cytomegalovirus strains
    Millard, Anne-Laure
    Haberli, Lea
    Ghielmetti, Maddalena
    Schneider, Marten K. J.
    Seebach, Jorg D.
    Bossart, Walter
    Mueller, Nicolas J.
    AMERICAN JOURNAL OF TRANSPLANTATION, 2008, 8 : 207 - 207
  • [23] Phage lytic enzymes as therapy for antibiotic-resistant Streptococcus pneumoniae infection in a murine sepsis model
    Jado, I
    López, R
    García, E
    Fenoll, A
    Casal, J
    García, P
    JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2003, 52 (06) : 967 - 973
  • [24] Impact of bile salts on coevolutionary dynamics between the gut bacterium Escherichia coli and its lytic phage PP01
    Scanlan, John G.
    Hall, Alex R.
    Scanlan, Pauline D.
    INFECTION GENETICS AND EVOLUTION, 2019, 73 : 425 - 432
  • [25] Lytic lesion in the femoral condyle in a female patient with human immunodeficiency virus infection
    Ruibal, A
    Aguirrebengoa, K
    Vilar, B
    Montejo, M
    ENFERMEDADES INFECCIOSAS Y MICROBIOLOGIA CLINICA, 2002, 20 (01): : 37 - 38
  • [26] Comprehensive Analysis of Human Cytomegalovirus MicroRNA Expression during Lytic and Quiescent Infection
    Shen, Zhang-Zhou
    Pan, Xing
    Miao, Ling-Feng
    Ye, Han-Qing
    Chavanas, Stephane
    Davrinche, Christian
    McVoy, Michael
    Luo, Min-Hua
    PLOS ONE, 2014, 9 (02):
  • [27] Dysbiosis of gut microbiota in COVID-19 is associated with intestinal DNA phage dynamics of lysogenic and lytic infection
    Ishizaka, Aya
    Tamura, Azumi
    Koga, Michiko
    Mizutani, Taketoshi
    Yamayoshi, Seiya
    Iwatsuki-Horimoto, Kiyoko
    Yasuhara, Atsuhiro
    Yamamoto, Shinya
    Nagai, Hiroyuki
    Adachi, Eisuke
    Suzuki, Yutaka
    Kawaoka, Yoshihiro
    Yotsuyanagi, Hiroshi
    MICROBIOLOGY SPECTRUM, 2025, 13 (01)
  • [28] Emerging roles of cytomegalovirus-encoded G protein-coupled receptors during lytic and latent infection
    Theresa Frank
    Ina Niemann
    Anna Reichel
    Thomas Stamminger
    Medical Microbiology and Immunology, 2019, 208 : 447 - 456
  • [29] Characterization of Yersinia pestis Phage Lytic Activity in Human Whole Blood for the Selection of Efficient Therapeutic Phages
    Moses, Sarit
    Vagima, Yaron
    Tidhar, Avital
    Aftalion, Moshe
    Mamroud, Emanuelle
    Rotem, Shahar
    Steinberger-Levy, Ida
    VIRUSES-BASEL, 2021, 13 (01):
  • [30] Emerging roles of cytomegalovirus-encoded G protein-coupled receptors during lytic and latent infection
    Frank, Theresa
    Niemann, Ina
    Reichel, Anna
    Stamminger, Thomas
    MEDICAL MICROBIOLOGY AND IMMUNOLOGY, 2019, 208 (3-4) : 447 - 456