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Wyseure, E.

Publications and source records attributed to Wyseure, E..

3 recordsLinked to original sources

N-glycosylation engineering in chimeric antigen receptor T cells enhances anti-tumor activity

Chimeric antigen receptor (CAR) T cell therapy has had limited success in solid tumors, requiring novel enhancement strategies. Modifying the glycocalyx of CAR T cells is unexplored; we report on genome-editing of the MGAT5 gene to abolish human CAR T N-glycan poly-LacNAc modifications. This boosted tumor control in carcinoma and lymphoma models, for donors of whom the non-engineered CAR T cells largely failed in tumor control. More blood-circulating MGAT5 KO CD70 nanoCAR T cells were found, exhibiting potent tumor cell-killing activity ex vivo, while non-glycoengineered CAR T cells faltered. MGAT5 KO CD70 nanoCAR T cells also mediated durable anti-tumor immunity, improving control of secondary carcinoma challenge months later. Single-cell transcriptomics revealed increased mitotic activity and type I interferon signaling, indicating sustained intratumoral activation. The glyco-engineered cells had unaltered antigen sensitivity and dependence on T cell growth factors, preserving key safety features. MGAT5 KO is readily compatible with clinical manufacturing, representing a promising approach to enhance CAR T cell therapy.

immunology↗

OPENPichia: building a free-to-operate Komagataella phaffii protein expression toolkit

In the standard toolkit for recombinant protein expression, the yeast known in biotechnology as Pichia pastoris (formally: Komagataella phaffii) takes up the position between E. coli and HEK293 or CHO mammalian cells, and is used by thousands of laboratories both in academia and industry. The organism is eukaryotic yet microbial, and grows to extremely high cell densities while secreting proteins into its fully defined growth medium, using very well established strong inducible or constitutive promoters. Many products made in Pichia are in the clinic and in industrial markets. Pichia is also a favoured host for the rapidly emerging area of precision fermentation for the manufacturing of food proteins. However, the earliest steps in the development of the industrial strain (NRRL Y-11430/CBS 7435) that is used throughout the world were performed prior to 1985 in industry (Phillips Petroleum Company) and are not in the public domain. Moreover, despite the long expiry of associated patents, the patent deposit NRRL Y-11430/CBS 7435 that is the parent to all commonly used industrial strains, is not or no longer made freely available through the resp. culture collections. This situation is far from ideal for what is a major chassis for synthetic biology, as it generates concern that novel applications of the system are still encumbered by licensing requirements of the very basic strains. In the spirit of open science and freedom to operate for what is a key component of biotechnology, we set out to resolve this by using genome sequencing of type strains, reverse engineering where necessary, and comparative protein expression and strain characterisation studies. We find that the industrial strains derive from the K. phaffii type strain lineage deposited as 54-11.239 in the UC Davis Phaff Yeast Strain collection by Herman Phaff in 1954. This type strain has valid equivalent deposits that are replicated/derived from it in other yeast strain collections, incl. in ARS-NRRL NRRL YB-4290 (deposit also made by Herman Phaff) and NRRL Y-7556, CBS 2612 and NCYC 2543. We furthermore discovered that NRRL Y-11430 and its derivatives carry an ORF-truncating mutation in the HOC1 cell wall synthesis gene, and that reverse engineering of a similar mutation in the NCYC 2543 type strain imparts the high transformability that is characteristic of the industrial strains. Uniquely, the NCYC 2543 type strain, which we propose to call OPENPichia henceforth, is freely available from the NCYC culture collection, incl. resale and commercial production licenses at nominal annual licensing fees1. Furthermore, our not-for-profit research institute VIB has also acquired a resale/distribution license from NCYC, which we presently use to openly provide to end-users our genome-sequenced OPENPichia subclone strain and its derivatives, i.e., currently the highly transformable hoc1tr and the his4 auxotrophic mutants. To complement the OPENPichia platform, a fully synthetic modular gene expression vector building toolkit was developed, which is also openly distributed, for any purpose. We invite other researchers to contribute to our open science resource-building effort to establish a new unencumbered standard chassis for Pichia synthetic biology.

molecular biology↗

GlyConnect: a glycan-based conjugation extension of the GlycoDelete technology

Recently, our lab developed GlycoDelete, a technology suite that allows a radical simplification of eukaryotic N-glycosylation. The technology allows to produce glycoproteins that carry single GlcNAc, LacNAc, or LacNAc-Sia type glycans on their N-linked glycosylation sequons. GlycoDelete-type N-glycans are uniquely suited for glycan-based conjugation purposes, as these provide a short, homogeneous and hydrophilic link to the protein backbone. Targeting GlycoDelete-glycans allows for highly site-specific conjugation at sites in the protein which are normally occupied by bulky glycans, thus ensuring minimal interference with protein structure and function. The current manuscript describes the evaluation and optimization of both chemical and chemo-enzymatic conjugation of molecules onto the GlycoDelete-type glycans of a limited set of benchmark proteins.

bioengineering↗