Gla‐domain mediated targeting of externalized phosphatidylserine for intracellular delivery

Author:

Hardy Jonathan1,Bauzon Maxine2,Chan Charles Kwok Fai3,Makela Ashley V.4,Kanada Masamitsu15,Schneider Doug2,Blankenberg Francis16,Contag Christopher H.1347,Hermiston Terry2ORCID

Affiliation:

1. Department of Pediatrics Stanford University School of Medicine Stanford California USA

2. Biologics Research US Bayer HealthCare San Francisco California USA

3. Department of Surgery Stanford University Stanford California USA

4. Department of Biomedical Engineering Michigan State University East Lansing Michigan USA

5. Department of Pharmacology and Toxicology Michigan State University East Lansing Michigan USA

6. Department of Radiology/MIPS Stanford University Stanford California USA

7. Department of Microbiology and Immunology Stanford University School of Medicine Stanford California USA

Abstract

AbstractPhosphatidylserine (PS) is a negatively charged phospholipid normally localized to the inner leaflet of the plasma membrane of cells but is externalized onto the cell surface during apoptosis as well as in malignant and infected cells. Consequently, PS may comprise an important molecular target in diagnostics, imaging, and targeted delivery of therapeutic agents. While an array of PS‐binding molecules exist, their utility has been limited by their inability to internalize diagnostic or therapeutic payloads. We describe the generation, isolation, characterization, and utility of a PS‐binding motif comprised of a carboxylated glutamic acid (GLA) residue domain that both recognizes and binds cell surface‐exposed PS, and then unlike other PS‐binding molecules is internalized into these cells. Internalization is independent of the traditional endosomal–lysosomal pathway, directly entering the cytosol of the target cell rapidly. We demonstrate that this PS recognition extends to stem cells and that GLA‐domain‐conjugated probes can be detected upon intravenous administration in animal models of infectious disease and cancer. GLA domain binding and internalization offer new opportunities for specifically targeting cells with surface‐exposed PS for imaging and delivery of therapeutics.

Funder

Bayer HealthCare

Publisher

Wiley

Subject

Genetics,Molecular Biology,Biochemistry,Biotechnology

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