Literature DB >> 23747704

Bacterial cell wall synthesis gene uppP is required for Burkholderia colonization of the Stinkbug Gut.

Jiyeun Kate Kim1, Ho Jin Lee, Yoshitomo Kikuchi, Wataru Kitagawa, Naruo Nikoh, Takema Fukatsu, Bok Luel Lee.   

Abstract

To establish a host-bacterium symbiotic association, a number of factors involved in symbiosis must operate in a coordinated manner. In insects, bacterial factors for symbiosis have been poorly characterized at the molecular and biochemical levels, since many symbionts have not yet been cultured or are as yet genetically intractable. Recently, the symbiotic association between a stinkbug, Riptortus pedestris, and its beneficial gut bacterium, Burkholderia sp., has emerged as a promising experimental model system, providing opportunities to study insect symbiosis using genetically manipulated symbiotic bacteria. Here, in search of bacterial symbiotic factors, we targeted cell wall components of the Burkholderia symbiont by disruption of uppP gene, which encodes undecaprenyl pyrophosphate phosphatase involved in biosynthesis of various bacterial cell wall components. Under culture conditions, the ΔuppP mutant showed higher susceptibility to lysozyme than the wild-type strain, indicating impaired integrity of peptidoglycan of the mutant. When administered to the host insect, the ΔuppP mutant failed to establish normal symbiotic association: the bacterial cells reached to the symbiotic midgut but neither proliferated nor persisted there. Transformation of the ΔuppP mutant with uppP-encoding plasmid complemented these phenotypic defects: lysozyme susceptibility in vitro was restored, and normal infection and proliferation in the midgut symbiotic organ were observed in vivo. The ΔuppP mutant also exhibited susceptibility to hypotonic, hypertonic, and centrifugal stresses. These results suggest that peptidoglycan cell wall integrity is a stress resistance factor relevant to the successful colonization of the stinkbug midgut by Burkholderia symbiont.

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Year:  2013        PMID: 23747704      PMCID: PMC3754700          DOI: 10.1128/AEM.01269-13

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


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4.  Insect Gut Symbiont Susceptibility to Host Antimicrobial Peptides Caused by Alteration of the Bacterial Cell Envelope.

Authors:  Jiyeun Kate Kim; Dae Woo Son; Chan-Hee Kim; Jae Hyun Cho; Roberta Marchetti; Alba Silipo; Luisa Sturiale; Ha Young Park; Ye Rang Huh; Hiroshi Nakayama; Takema Fukatsu; Antonio Molinaro; Bok Luel Lee
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5.  Purine biosynthesis, biofilm formation, and persistence of an insect-microbe gut symbiosis.

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Authors:  Jiyeun Kate Kim; Na Hyang Kim; Ho Am Jang; Yoshitomo Kikuchi; Chan-Hee Kim; Takema Fukatsu; Bok Luel Lee
Journal:  Appl Environ Microbiol       Date:  2013-09-13       Impact factor: 4.792

9.  Purine biosynthesis-deficient Burkholderia mutants are incapable of symbiotic accommodation in the stinkbug.

Authors:  Jiyeun Kate Kim; Ho Am Jang; Yeo Jin Won; Yoshitomo Kikuchi; Sang Heum Han; Chan-Hee Kim; Naruo Nikoh; Takema Fukatsu; Bok Luel Lee
Journal:  ISME J       Date:  2013-10-03       Impact factor: 10.302

10.  The lipopolysaccharide core oligosaccharide of Burkholderia plays a critical role in maintaining a proper gut symbiosis with the bean bug Riptortus pedestris.

Authors:  Jiyeun Kate Kim; Ho Am Jang; Min Seon Kim; Jae Hyun Cho; Junbeom Lee; Flaviana Di Lorenzo; Luisa Sturiale; Alba Silipo; Antonio Molinaro; Bok Luel Lee
Journal:  J Biol Chem       Date:  2017-09-25       Impact factor: 5.157

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