| Literature DB >> 28790999 |
Yi-Wen Liu1, Yu-Hung Chen2, Jenn-Wei Chen1,3, Pei-Jane Tsai3,4, I-Hsiu Huang1,3.
Abstract
Clostridium difficile is considered to be one of the major cause of infectious diarrhea in healthcare systems worldwide. Symptoms of C. difficile infection are caused largely by the production of two cytotoxins: toxin A (TcdA) and toxin B (TcdB). Vaccine development is considered desirable as it would decrease the mounting medical costs and mortality associated with C. difficile infections. Biodegradable nanoparticles composed of poly-γ-glutamic acid (γ-PGA) and chitosan have proven to be a safe and effective antigen delivery system for many viral vaccines. However, few studies have used this efficient antigen carrier for bacterial vaccine development. In this study, we eliminated the toxin activity domain of toxin B by constructing a recombinant protein rTcdB consists of residues 1852-2363 of TcdB receptor binding domain. The rTcdB was encapsulated in nanoparticles composed of γ-PGA and chitosan. Three rounds of intraperitoneal vaccination led to high anti-TcdB antibody responses and afforded mice full protection mice from lethal dose of C. difficile spore challenge. Protection was associated with high levels of toxin-neutralizing antibodies, and the rTcdB-encapsulated NPs elicited a longer-lasting antibody titers than antigen with the conventional adjuvant, aluminum hydroxide. Significant reductions in the level of proinflammatory cytokines and chemokines were observed in vaccinated mouse. These results suggested that polymeric nanocomplex-based vaccine design can be useful in developing vaccine against C. difficile infections.Entities:
Keywords: Clostridium difficile; TcdB; nanocomplex adjuvant; vaccine
Year: 2017 PMID: 28790999 PMCID: PMC5525027 DOI: 10.3389/fmicb.2017.01411
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Sequences of oligonucleotide primers used in this study.
| Name | Sequence (5′ to 3′) | Species | Reference |
|---|---|---|---|
| mIL-1β-F | GCA ACT GTT CCT GAA CTC AAC T | Mouse | |
| mIL-1β-R | ATC TTT TGG GGT CCG TCA AT | Mouse | |
| mIL-17A-F | GCT CCA GAA GGC CCT CAG A | Mouse | |
| mIL-17A-R | CTT TCC CTC CGC ATT GAC A | Mouse | |
| mIL-6-F | AGG ATA CCA CTC CCA ACA GAC | Mouse | |
| mIL-6-R | GTG CAT CAT CGT TGT TCA TAC | Mouse | |
| mTNFα-F | CAT CTT CTC AAA ATT CGA GTG ACA A | Mouse | |
| mTNFα-R | TGG GAG TAG ACA AGG TAC AAC CC | Mouse | |
| mMIP-2-F | TGT CAA TGC CTG AAG ACC CTG CC | Mouse | |
| mMIP-2-R | AAC TTT TTG ACC GCC CTT GAG AGT GG | Mouse | |
| mIFN-r-F | GCC ATC AGC AAC AAC ATA AGC GTC | Mouse | |
| mIFN-r-R | CCA CTC GGA TGA GCT CAT TGA ATG | Mouse | |
| mMCP-1-F | CCC ACT CAC CTG CTG CTA CT | Mouse | |
| 0 | TCT GGA CCC ATT CCT TCT TG | Mouse | |
| slpA (EcoRI)-F | TAC GAATTCG GCA GAA GAT ATG TCG AAA GTT GAG | This work | |
| slpA (HindIII)-R | ACC AAGCTT ACT CTT AGT TGT AAC TCT TTT TCC | This work | |
| tcdB (EcoRI)-F | TAC GAATTCG TTG ATA ACT GGA TTT ACA ACT | This work | |
| tcdB (HindIII)-R | ACC AAGCTT CAC TAA TTG AGC TGT ATC AGG | This work |