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Langsdorf, C.

Publications and source records attributed to Langsdorf, C..

2 recordsLinked to original sources

Catalytic degradation of circulating targets with FcRn-mediated cycling LYTACs

Circulating proteins are common targets for the discovery of occupancy-based inhibitors including monoclonal antibodies. Effective inhibition of target pathogenicity with blocking approaches, however, is often challenged by target parameters that lead to insufficient occupancy and/or incomplete pharmacology limited by only single site binding. Extracellular targeted protein degradation approaches, such as lysosomal targeting chimeras (LYTACs), offer an opportunity to minimize these challenges by an event-driven mechanism that selectively, thoroughly and irreversibly eliminates drivers of disease. First generation LYTACs, designed to traffic to the lysosome, show limited durability since the therapeutic is degraded along with the target protein of interest. Here we describe cataLYTACs, which overcome this limitation by combining stabilized asialoglycoprotein (ASGPR) ligands, pH-sensitive target binding and recycling via the neonatal Fc receptor (FcRn). These cataLYTACs degraded superstoichiometric levels of a target protein, IgE, in vitro and demonstrated deep and sustained clearance of human IgE in mouse models. In non-human primates, cataLYTACs resulted in >98% clearance of circulating endogenous IgE for 2 weeks and outperformed the standard of care blocking antibody, omalizumab (Xolair(R)), in both free IgE elimination and duration of action. CataLYTACs represent a new therapeutic modality for a wide range of disease states driven by circulating factors, with the potential for superior efficacy and duration of action compared to traditional inhibitors.

cell biology↗

Monitoring lysosomal catabolism: a sensitive probe for assessing targeted lysosomal degradation of extracellular proteins

Extracellular targeted protein degradation (eTPD) is an emerging therapeutic field. The Lysosome targeting chimera (LYTAC) is a therapeutic modality that promotes degradation of extracellular drivers of disease in the lysosome. While widely available pH-sensitive probes may report on lysosome delivery, these probes do not necessarily report on the enzymatically active functional state of the lysosome. We report the development and application of a sensitive fluorescent probe, LysoLight Deep Red, to monitor catabolism of internalized proteins in the lysosome based on cleavage by cathepsin proteases. We demonstrate the application of Lysolight Deep Red to monitor the catabolic fate of therapeutic monoclonal antibodies, ASGPR-targeted LYTAC therapeutics and LYTAC targets in immortalized cell lines and in primary human hepatocytes.

cell biology↗