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Biology subjects

Plante, O.

Publications and source records attributed to Plante, O..

4 recordsLinked to original sources

Harnessing mRNA for the expression of monoclonal IgG and IgA in non-human primates.

Monoclonal antibodies (mAbs) are an increasingly essential class of medicines across many disease areas (1). In the human body, there are five antibody isotypes, each with potential prophylactic or therapeutic benefits for different disease indications. However, 97% of all clinically approved mAbs are produced as the IgG isotype, partly due to differences in half-life, but largely due to challenges associated with recombinantly producing non-IgG isotypes like IgM or IgA, which have additional N-linked glycan sites and can present as multivalent oligomers. One potential solution to this challenge is to express mAbs in situ using mRNA encapsulated in lipid nanoparticles (LNP), bypassing the need for recombinant protein production (2). Here, we demonstrate the feasibility of expressing a mAb as both IgG and IgA in non-human primates (NHPs) using mRNA-LNPs. We express ePGDM1400v9, a broadly neutralizing mAb targeting human immunodeficiency virus (HIV), in both IgG1 and IgA2 formats by infusing NHPs with LNPs containing the appropriate mRNA. Though IgG1 expression levels were higher than those of IgA2, both formats were detectable in serum within one day of LNP infusion in all NHPs, and both were detectable in mucosal secretions of most animals. Importantly, serum mRNA-produced IgG1 and IgA2 retained HIV-neutralizing function. Furthermore, mass spectrometry analysis confirmed that mAbs of either isotype produced in situ exhibited glycosylation patterns highly similar to that of native antibody, which is likely to confer therapeutic advantages. Altogether, this work demonstrates the feasibility of using mRNA-LNPs to express native-like mAbs of non-IgG isotypes in primates and enables further development of non-IgG mAb constructs. SignificanceMonoclonal antibodies (mAbs) are a rapidly growing class of essential medicines across diverse disease areas and applications. However, the impact potential of mAbs is limited by challenges in production and purification, which favors the use of the IgG antibody isotype despite the disease-specific advantages that other isotypes might offer. One way to overcome this challenge is to express mAbs in situ using messenger ribonucleic acid delivered by lipid nanoparticles (mRNA-LNPs). Here, we show that an anti-human immunodeficiency virus (HIV) mAb, ePGDM1400v9, can be expressed as two different antibody isotypes, IgG and IgA, in nonhuman primates (NHPs) by mRNA-LNP delivery. We demonstrate that both mAb isotypes retain function and exhibit native-like glycosylation patterns that are not achievable with conventional recombinant mAbs.

immunology↗

Maternal transfer of mRNA LNP-derived, pathogen-specific, monoclonal IgG to suckling mice

Breast milk provides a rich source of naturally derived maternal antibodies that confer passive immunity to infants, protecting them from a variety of respiratory and enteric infections. For at-risk newborns in low- and middle-income countries, supplementing breast milk with pathogen-specific neutralizing and bactericidal antibodies could offer significant short- and long-term health benefits. In this study, we explored the use of mRNA and lipid nanoparticle (LNP) technology to deliver a Vibrio cholerae-specific monoclonal IgG antibody ("ZAC-3") into the milk of lactating mice. Swiss Webster mice were intravenously administered ZAC-3 IgG mRNA-LNPs, and we monitored serum and breast milk for the presence of V. cholerae-specific human IgG1. A single injection of mRNA-LNPs led to rapid and sustained expression of ZAC-3 IgG in both the blood and breast milk of lactating dams. ZAC-3 IgG1 in these samples recognized whole V. cholerae cells by ELISA and exhibited potent vibriocidal activity in the presence of human complement. Furthermore, ZAC-3 IgG was detected in the sera of suckling pups at levels proportional to those in the mothers, demonstrating successful transfer of functional antibodies to the newborns. In conclusion, our findings highlight the potential of mRNA-based monoclonal antibody platforms in the maternal-newborn context and address key challenges associated with the direct delivery of recombinant antibodies.

immunology↗

Spatial transcriptomics identifies novel P. aeruginosa virulence factors

To holistically unravel the complexity of pathogen-host interactions within infected tissues we leverage a dual spatial transcriptomic approach that, for the first time, simultaneously captures the expression of Pseudomonas aeruginosa genes alongside the entire host transcriptome in a model of ocular infection. This innovative method reveals differential pathogen and host-specific gene expression patterns across specific anatomical regions generating a unified transcriptional map of infection. By integrating these data, we developed a predictive ridge regression model trained on images from infected tissues. The model achieved an R{superscript 2} score of 0.923 in predicting bacterial burden distributions by using host features thereby predicting novel biomarkers associated with disease severity. Our analysis revealed a complex interplay between P. aeruginosa nutritional requirements and protective host responses and identified novel interactions between bacterial metabolite transport proteins and host autophagy. Among an array of iron acquisition gene transcripts that showed significant enrichment at the host-pathogen interface, we discovered a novel virulence mediator PA2590. This study highlights the power of spatial transcriptomics, particularly in combining bacterial and host transcriptomes, to uncover novel host-pathogen interactions, advance our understanding of bacterial virulence mechanisms, and point to druggable molecules.

microbiology↗

Development of an antibody fused with an antimicrobial peptide targeting Pseudomonas aeruginosa: a new approach to prevent and treat bacterial infections

The increase of emerging drug resistant Gram-negative bacterial infections is of global concern. In addition, there is growing recognition that compromising the microbiota, through the use of broad spectrum antibiotics, may affect patient health in the long term. Therefore, there is the need to develop new -cidal strategies to combat Gram-negative infections that would consider these specific issues. In this study, we report and characterize one such approach, the antibody-drug conjugates (ADCs) that combine (i) targeting a specific pathogenic organism through a monoclonal antibody with (ii) the high killing activity of antimicrobial peptides. We focused on a major pathogenic Gram-negative bacterium associated with antibacterial resistance: Pseudomonas aeruginosa and designed an ADC by fusing an antimicrobial peptide at the C-terminal end of the VH and/or VL-chain of a monoclonal antibody, VSX, that targets the core of P. aeruginosa lipopolysaccharide (LPS). This ADC demonstrated appropriately minimal levels of toxicity to mammalian cells and rapidly kills P. aeruginosa strains through several mechanisms while protecting mice from P. aeruginosa lung infection when administered therapeutically. Furthermore, we found that the ADC was synergistic with several classes of antibiotics. This approach described in this study may result in a widely useful strategy to target specific pathogenic microorganisms without augmenting further antibiotic resistance. Author SummaryThe increasing of emerging drug resistant bacterial infections is a worldwide issue and infections caused by antibiotic resistant Gram-negative pathogens are particularly concerning. In addition, there is now growing recognition that disruption of the microbiota, through the use of broad spectrum antibiotics, may affect patient health in the long term. Therefore, there is the need to develop new -cidal strategies to combat Gram-negative infections while preserving the microbiota and also avoid enhancement of antibiotic resistance. We report and characterize here one such approach by using a specific monoclonal antibody associated with the potent killing activity of antimicrobial peptides in the form of an antibody-drug conjugate (ADC). The selected pathogenic bacterium was Pseudomonas aeruginosa, that presents numerous markers for both innate and acquired antibiotic resistance. The ADC lacked significant cytotoxicity against mammalian cells and was shown to be effective both in vitro and in vivo against P. aeruginosa.

microbiology↗