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Kilbourne, J.

Publications and source records attributed to Kilbourne, J..

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A highly expressing, soluble, and stable plant-made IgG fusion carrying Zika virus envelope domain III elicits potent immunogenic responses in mice without adjuvant

Therapeutics based on fusing a protein of interest to the IgG Fc domain have been enormously successful, though fewer studies have investigated the vaccine potential of IgG fusions. In this study, we systematically compared the key properties of seven different plant-made human IgG1 fusion vaccine candidates using Zika virus (ZIKV) envelope domain III (ZE3) as a model antigen. Complement protein C1q binding of the IgG fusions was enhanced by: 1) antigen fusion to the IgG N-terminus; 2) removal of the IgG light chain or Fab regions; 3) addition of hexamer-inducing mutations in the IgG Fc; 4) adding a self-binding epitope tag to create recombinant immune complexes (RIC); or 5) producing IgG fusions in plants that lack plant-specific {beta}1,2-linked xylose and 1,3-linked fucose N-linked glycans. We also characterized the expression, solubility, and stability of the IgG fusions. By optimizing immune complex formation, a potently immunogenic vaccine candidate with improved solubility and high stability was produced at 1.5 mg IgG fusion per g leaf fresh weight. In mice, the IgG fusions elicited high titers of Zika-specific antibodies which neutralized ZIKV using only two doses without adjuvant, reaching up to 150-fold higher antibody titers than ZE3 antigen alone. We anticipate these findings will be broadly applicable to the creation of other vaccines and antibody-based therapeutics. Highlights O_LIA modified immune complex has high expression, solubility, stability, and immunogenicity. C_LIO_LIAntigen immunogenicity is improved up to 150-fold by fusion to plant-made IgGs. C_LIO_LIHigh serum IgG titers >1:500,000 were achieved with only two doses without adjuvant. C_LI

immunology

Synthetic Maturation of Multilineage Human Liver Organoids via Genetically Guided Engineering

Pluripotent stem cell (PSC)-derived organoids are emerging as novel human-based microphysiological models but display immature phenotypes with limited subsets of endothelial or stromal cells. Here we demonstrate that in vitro manipulation of gene regulatory networks (GRNs) in PSC-derived liver organoids selected either through computational analysis or targeted tissue design can advance tissue maturation in vitro. Through an unbiased comparison with the genetic signature of mature livers, we identify downregulated GRNs in fetal liver organoids compared to adult livers. We demonstrate that overexpression of PROX1 and ATF5, together with targeted CRISPR-based transcriptional activation of endogenous CYP3A4, drives maturation in vitro. Single cell analyses reveal hepatobiliary-, endothelial-, and stellate-like cell populations. The engineered organoids demonstrate enhanced vasculogenesis, capture native liver characteristics (e.g. FXR signaling, CYP3A4 activity), and exhibit therapeutic potential in mice. Collectively, our approach provides a genetically guided framework for engineering developmentally advanced multilineage tissues from hiPSCs. HIGHLIGHTSO_LIIn vitro tissue maturation via genetically encoded molecular programs C_LIO_LIComputational analysis to identify maturation transcription factors in liver organoids C_LIO_LIPromoting vascularization of organoids via genetically encoded molecular programs C_LIO_LISingle cell analysis of parenchymal and non-parenchymal cells C_LIO_LIModeling of native liver functions and in vivo therapeutic potential C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=168 HEIGHT=200 SRC="FIGDIR/small/087445v1_ufig1.gif" ALT="Figure 1"> View larger version (49K): org.highwire.dtl.DTLVardef@6ec32aorg.highwire.dtl.DTLVardef@1cf2eeforg.highwire.dtl.DTLVardef@1128748org.highwire.dtl.DTLVardef@16fb5a7_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering