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Guilbaud, M.

Publications and source records attributed to Guilbaud, M..

3 recordsLinked to original sources

Ultrafast tyrosine-based cell membrane modification via diazonium salts: a new frontier for biomedical applications

In this study, we present an ultrafast, efficient, and broadly applicable strategy for cell membrane modification via tyrosine bioconjugation using diazonium salt derivatives. This chemical approach enables both one-step and two-step functionalization of adherent, suspension, and primary cells with diverse ligands, including imaging probes, carbohydrates, biotin, and proteins, without inducing cytotoxicity or immune activation. Membrane engineering through bioconjugation is emerging as a valuable tool in biomedical research, given the cell membranes central role in signaling, transport, and cell-cell interactions. Compared to traditional glyco-engineering methods that often require multiday incubations and can cause cellular stress, our approach achieves precise and high-density grafting in less than one hour, with improved reproducibility and biological compatibility. Importantly, we demonstrate that this strategy can be applied to a variety of cell types, encompassing both immortalized cell lines and primary cells, notably Peripheral Blood Mononuclear Cells (PBMCs) and human effector cells such as natural killer (NK) cells, to enhance their cytotoxic function against EGFR-positive cancer cells via surface-conjugated Nanofitin. Moreover, we show that the bioconjugated signal diminishes over time due to cell division, offering a self-limiting alternative to permanent genetic modifications such as CAR-T, thereby mitigating risks associated with overly prolonged immune activation. Finally, the feasibility of storing pre-functionalized cells at -80 {degrees}C expands the practicality of this platform for future ready-to-use applications. Together, these features make our method a compelling alternative to current technologies for applications in targeted therapy, diagnostics, and cell-based immunotherapy.

bioengineering↗

Advancing Liver Gene Therapy: Enhanced Transduction with GalNAc-Bioconjugated rAAV Capsids

This study investigates novel approaches to improve targeted gene delivery to the liver, a crucial organ for metabolic processes that faces vulnerabilities from various pathologies. Adeno-associated virus (AAV)-based gene therapy has emerged as a promising approach for liver targeting, with numerous investigational avenues. However, administration of high doses of AAV vectors present safety concerns, often requiring the use of corticosteroids and immunosuppression to mitigate immune adverse events. To address this, substantial efforts are underway to engineer optimized capsids to enhance the efficiency and specificity of recombinant AAV (rAAV) targeting hepatocytes, aiming to reduce required dosages. In this study, we employed bioconjugation chemistry to target the Asialoglycoprotein receptor (ASGPR), a C-type lectin abundantly expressed at the surface of hepatocyte membranes. We demonstrated that covalently attaching carbohydrates derived from GalNAc (a known ASGPR ligand) to lysine amino-acids on the rAAV2 capsid significantly enhanced in vivo liver transduction efficiency in mice. These optimized vectors present a promising avenue for the treatment of a spectrum of liver diseases, providing an alternative solution within the framework of liver gene therapy.

bioengineering↗

Prevalence study of cellular capsid-specific immune responses to AAV1, 2, 4, 5, 8, 9 and rh10 reveals particular features for AAV9

Recombinant adeno-associated virus (rAAV) vectors appear, more than ever, to be efficient viral vectors for in vivo gene transfer as illustrated by the approvals of 7 drugs across Europe and the USA. Nevertheless, pre-existing immunity to AAV capsid in humans remains one of the major limits for a successful clinical translation. Whereas pre-existing humoral response to AAV capsid is well documented, the prevalence of pre-existing capsid-specific T cell responses still needs to be studied and characterized. Here, we investigated the prevalence of AAV-specific circulating T cells towards AAV2, 4, 5, 8, 9 and rh10 in a large cohort of healthy donors using the standard IFN{gamma} ELISpot assay. We observed the highest prevalence of pre-existing cellular immunity to AAV9 serotype followed by AAV8, AAV4, AAV2, AAVrh10 and AAV5 independently of the donors serological status. An in-depth analysis of T cell responses towards the 2 most prevalent serotypes 8 and 9 shows that IFN{gamma} secretion is mainly mediated by CD8 T cells for both serotypes. A polyfunctional analysis reveals different cytokine profiles between AAV8 and AAV9. Surprisingly, no IL-2 secretion was mediated by anti-AAV9 immune cells suggesting that these cells may rather be exhausted or terminally differentiated than cytotoxic T cells. Altogether, these results suggest that pre-existing immunity to AAV may vary depending on the serotype and support the necessity of using multiparametric monitoring methods to better characterize anti-capsid cellular immunity and foresee its impact in rAAV-mediated clinical trials.

immunology↗