| Literature DB >> 35628457 |
Ruchi Briam James Sersenia Lagitnay1,2, Han-Ling Chen2, Yen-Chun Chen2, Duen-Yau Chuang2.
Abstract
The plant pathogen Pectobacterium carotovorum subsp. carotovorum (previously Erwinia carotovora subsp. carotovora) causes soft rot and stem rot diseases in a variety of crops, including Chinese cabbage, potato, and tomato. The flagellar-type III secretion systems were used by Pcc's virulence mechanism to export proteins or bacteriocins to the outside of the cell. DGC, a virulence factor that cyclizes c-di-GMP, a common secondary signal in physiological processes and toxin control systems of many bacteria, was discovered in Pcc's genomic DNA. The dgc gene in Pcc was blocked using the method of homologous recombination in our study. In the in vivo setting, the results demonstrated that the dgc knockout strain does not release low molecular weight bacteriocins. The bacteriocin gene (carocin S2, carocin S3, carocin S4) and the flagellar-type III secretion system genes were also unable to be transcribed by the dgc knockout strain in the transcription experiment. We also observed that the amount of bacteriocin expressed changed when the amount of L-glutamine in the environment exceeded a particular level. These data suggested that L-glutamine influenced physiological processes in Pcc strains in some way. We hypothesized a relationship between dgc and the genes involved in Pcc LMWB external export via the flagellar-type secretion system based on these findings. In this study, the current findings led us to propose a mechanism in which DGC's cyclic di-GMP might bind to receptor proteins and positively regulate bacteriocin transcription as well as the synthesis, mobility, and transport of toxins.Entities:
Keywords: Pectobacterium carotovorum subsp. carotovorum; bacteriocin; diguanylate cyclase; flagellar-type III secretion system
Mesh:
Substances:
Year: 2022 PMID: 35628457 PMCID: PMC9144310 DOI: 10.3390/ijms23105649
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 6.208
Figure 1Bacteriocin of Pectobacterium carotovorum subsp. carotovorum. (A) The bacteriocin test was performed by soft agar overlay. (1) Wild-type rif-TO6 Pcc strain, (2–15) transposon Tn5 insertional mutants: 2—TT6-1, 3—TT6-3, 4—TT6-2, 5—TT6-4, 6—TT6-5, 7—TT6-6, 8—TT6-9, 9—TT6-12, 10—TT6-13, 11—TT6-14, 12—TT6-19, 13—TT6-21, 14—TT6-22, and 15—TT6-25. (B) Screening of the wild-type rif-TO6 and transposon Tn5 insertional mutants with Drigalski medium. If the strain is Pcc, the medium will be golden yellow, but if it is an Escherichia coli colony, the medium will be blue. (1) Wild Type rif-TO6 Pcc strain, (2–15) transposon Tn5 insertional mutants 2—TT6-1, 3—TT6-3, 4—TT6-2, 5—TT6-4, 6—TT6-5, 7—TT6-6, 8—TT6-9, 9—TT6-12, 10—TT6-13, 11—TT6-14, 12—TT6-19, 13—TT6-21, 14—TT6-22, and 15—TT6-25.
List of genes identified by transposon mutagenesis.
| Strains | Products |
|---|---|
| TT6-1 | ATPase associated with various cellular activities, AAA_5, MoxR-like ATPase |
| TT6-2 | bacteriophage tail protein [ |
| TT6-3 | peptidase S8 and S53 subtilisin kexin sedolisin; killer protein of pyocin S3 |
| TT6-4 | bacteriophage tail protein [ |
| TT6-5 | putative periplasmic ligand-binding sensor protein |
| TT6-6 | diguanylate cyclase AdrA [ |
| TT6-9 | bacteriophage tail protein [ |
| TT6-10 | putative phage tail fiber protein [ |
| TT6-13 | killer protein of pyocin S3 |
| TT6-14 | putative bacteriophage protein GP48 |
| TT6-19 | putative phage tail fiber protein [ |
| TT6-21 | killer protein of pyocin S3 |
| TT6-22 | bacteriophage tail protein [ |
Figure 2Bacteriocin assay of the gene knockout strains. (A) Bacteriocin activity of the gene selection strain (89-H-rif-12). (B) Comparison of bacteriocin activity of wild types and dgc defective mutants: 1, Pcc 3F3; 2, 89-H-rif-89-12; 3, 89-H-rif-12/Δdgc-Tet; 4, 89-H-rif-12/Δdgc-Kan.
Figure 3Transcriptional analysis of bacteriocin genes and regulatory genes by two-step endpoint RT-PCR. (A) 16s RNA expression of the wild-type 89-H-rif-12 and the dgc defective mutant. (B) Shown are gel electropherogram of RT-PCR products exhibited by the wild-type and dgc defective mutants.
Figure 4Transcriptional analysis of bacteriocin genes and regulatory genes by two-step endpoint RT-PCR induced with different concentrations of L-glutamine. (A) Gel electropherogram of RT-PCR products exhibited by the wild-type and the dgc knockout strain: 1, 0 mM; 2, 2.5 mM; 3, 5.0 mM; 4, 10 mM. (B) Mean relative gene expression affected by the L-glutamine expression.
Figure 5DGC and bacteriocin regulation, synthesis, and secretion: a proposed molecular pathway.
Bacteria and plasmids used in this study.
| Strain or Plasmid | Relevant Characteristics | Source of Reference |
|---|---|---|
|
| ||
| DH5α | SupE44 ΔlacU169 (Φ80 lacZ ΔM15) hsdR17 recA1 endA1 gyrA96 thi-l relA1 | Hanahan; Reusch et al. [ |
| 1803 | pro−met−KmrNmr, containing transposon Tn5 on the suicidal plasmid pBJ4JI | Gantotti et al. [ |
|
| ||
| TO6 | Laboratory stock | |
| Rif-TO6 | Laboratory stock | |
| 89-H-4 | Laboratory stock | |
| 89-H-rif-12 | Laboratory stock | |
| 3F3 | Laboratory stock | |
| SP33 | Laboratory stock | |
| H-rif-89-12/∆ | This study | |
| H-rif-89-12/∆ | This study | |
|
| ||
| pJB4JI | suicide vector for Tn5, pJB4JI, contains pPH1JI, bacteriophage Mu, and Tn5 | P.R. Hirsch, J.E. Beringer, [ |
| pGEM T-Easy | Ampr, lacZ cloning vector | Promega |
| pBR322 | Ampr, Tetr | Bolivar et al. [ |
| pG- | pGEM T-Easy, Ampr, | This study |
| pG- | pGEM T-Easy, Ampr, | This study |
| pG-Tet | pGEM T-Easy, Ampr, Tetr | Laboratory stock |
| pG-Δ | pGEM T-Easy, Ampr, | This study |
| pG-Δ | pGEM T-Easy, Ampr, | This study |
Primers used in this study.
| Primers | Sequence (5′-3′) |
|---|---|
| P3 | CTCGACGTTGTCACTGAAGCGGGAAG |
| P4 | AAAGCACGAGGA GCGGTCAGCCCAT |
| PF1 | AGAGA ACACAGATTTAGCCCAGTCGG |
| PF2 | CCGCACGATGAAGAGCAGAAGTTAT |
| PF3 | GATCCTGGAAAACGGGAAAGGTTC |
| PR1 | GCCGAAGAGAACACAGATTTAGCCCA |
| PR2 | CCGCACGATGAAGAGCAGAAGTT |
| CTCACTGTTGCTGACATGC | |
| ATTCAGGCAACTTCGGTTC | |
| CGACAATCCGTGGAATATAG | |
| CTCGAGCGACAATCCGTG | |
| GTACGATACTGTGCGCTC | |
| CTCGAGGTACGATACTGTG | |
| GATAAGCTCTCCCGAATACG | |
| GTTAACGATAAGCTCTCCCG | |
| GCTGAAGTTTCTGAACCAG | |
| GTTAACGCTGAAGTTTCTGAAC | |
| F-16s- sense-ECC | CTGGACAAAGACTGACGCTC |
| R-16s- sense-ECC | TCGCTGGCAACAAAGGATAAG |
| caroS2K_RT_F | GAGATACAATGACCGTGGATGG |
| caroS2K_RT_R | GCAACTGGTGTTACCGTAACTG |
| caroS3K_RT_F | ATGATTAAGTACCGTTTATATGCTC |
| caroS3K_RT_R | TCATTGCGACTCCCTCATAT |
| CaroS4KI_RT_R | GGATCCATGATTAATTTTAAGG |
| CaroS4KI_RT_R | GAGCTCTTAGAGACCGTAT |
| CRP_RT_F | CTCTCGAATGGTTCCTTTCC |
| CRP_RT_R | GAGATCAGGTTCTGGTCTTC |
| FlhA_RT_F | TCACTCAAGCTTGCATCTAC |
| FlhA_RT_R | AAGCTTTCACTTCTGAGCTTCC |
| GlnH_ RT_F | ACAGACCGGTGAATTACGCATCGG |
| GlnH_ RT_R | GCCGCTACGCCTTCATCCATATTC |
| FliG sense | ATGACCCTGACAGGAACAG |
| FliG antisense | TTAGACATAAGCATCCTCGC |
| DY-F1 | GGTAGGATCCGTTGTTAGGTGCATAGGTTGG |
| DY-R1 | TTCAAGCTTGTGGTGAATTGACAATACGC |