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Lei Fei

Publications and source records attributed to Lei Fei.

3 recordsLinked to original sources

Terminal complement complex C5b-9-treated human monocyte-derived dendritic cells undergo maturation and induce Th1 polarization.

Sublytic C5b-9 has been described as a pro-inflammatory mediator that triggers cell activation rather than inducing cell death. Dendritic cells (DC) play a critical role in controlling antigen-specific immune responses. Although DC maturation induced by various stimuli has been well characterized, the role of C5b-9 in DC function has not been described. In this report, we use in vitro assembled functional C5b-9 based on purified distal complement protein to show that DC maturation is promoted by sublytic C5b-9. This was demonstrated by up-regulation of CD83, HLA-antigens and costimulatory molecules, including CD80, D86, B7-H1, B7-H3, B7-H4 and BTLA. In addition, secretion of cytokines such as interleukin (IL)-12 and tumor necrosis factor-alpha was increased while the capacity for antigen uptake (FITC-Dextran and Lucifer Yellow) was reduced in C5b-9-treated DC. Mixed lymphocyte reactions indicated that C5b-9-activated DC acted as stimulators that significantly promoted CD4+ T cell activation and elicited production of cytokines, including interferon-gamma and IL-2. Interestingly, C5b-9-treated DC also orient CD4+ CD45RA+ naïve T cells toward Th1 polarization. Our results are the first to report that DC are potential immunoregulatory targets of C5b-9, suggesting that C5b-9 bridges innate and acquired immunity by inducing DC maturation.

Cell Differentiation↗

Immunogenicity of a plant-derived edible rotavirus subunit vaccine transformed over fifty generations.

Major efforts have been put forth for the development of effective rotavirus vaccines including transgenic plant vaccines. Previous studies have reported that rotavirus VP7 maintains its neutralizing immunity when it is transformed into the potato genome. The present study was aimed at investigating the hereditary stability of VP7-transformed potatoes over fifty generations. The VP7 gene was stably transcribed and expressed in potato cells as detected by RT-PCR and Western blotting. Humeral and mucosal responses were successfully induced in BALB/c mice fed with the fiftieth generation transformed potato tubers. There were no significant differences in serum IgG and fecal IgA between the mice fed with the first and fiftieth generation potatoes (P>0.05). Profiles of cytokines such as IFN-gamma, IL-2, IL-4, IL-5 and TGF-beta in immunized mice showed a naive T-cells bias to Th1 and Th3 polarization. Moreover, specific CTL responses were also detected in C57BL/6 mice fed with transformed potatoes. This research represents a significant step towards the development of rotavirus vaccines derived from a transgenic plant that can be obtained by long-term and large-scale vegetative reproduction. To our knowledge, this is the first finding regarding vaccines derived from plants that can be propagated for many generations.

Animals↗

Oral immunization with rotavirus VP7 expressed in transgenic potatoes induced high titers of mucosal neutralizing IgA.

Rotaviruses (RV) are a common cause of severe diarrhea in young children, resulting in nearly one million deaths worldwide annually. Rotavirus VP7 was the rotavirus neutralizing protein. Previous study reported that VP7 DNA vaccine can induce high levels of IgG in mice but cannot protect mice against challenge (Choi, A.H., Basu, M., Rae, M.N., McNeal, M.M., Ward, R.L., 1998. Virology 250, 230-240). We found that rotavirus VP7 could maintain its neutralizing immunity when it was transformed into the potato genome. Mice immunized with the transformed tubers successfully elicited serum IgG and mucosal IgA specific for VP7. The mucosal IgA titer was as high as 1000, while serum IgG titer was only 600. Neutralizing assays indicated that IgA could neutralize rotavirus. These results indicate the potential usefulness of plants for production and delivery of edible rotavirus vaccines.

Administration, Oral↗