Mannose-Coated Reconstituted Lipoprotein Nanoparticles for the Targeting of Tumor-Associated Macrophages: Optimization, Characterization, and In Vitro Evaluation of Effectiveness

Author:

Dossou Akpedje S.1ORCID,Mantsch Morgan E.2,Kapic Ammar1,Burnett William L.3,Sabnis Nirupama1,Coffer Jeffery L.3ORCID,Berg Rance E.1,Fudala Rafal1,Lacko Andras G.1

Affiliation:

1. Department of Microbiology, Immunology and Genetics, UNT Health Science Center (UNTHSC), Fort Worth, TX 76107, USA

2. College of Natural Sciences, University of Texas at Austin, Austin, TX 78705, USA

3. College of Science and Engineering, Texas Christian University (TCU), Fort Worth, TX 76129, USA

Abstract

Reconstituted high-density lipoprotein nanoparticles (rHDL NPs) have been utilized as delivery vehicles to a variety of targets, including cancer cells. However, the modification of rHDL NPs for the targeting of the pro-tumoral tumor-associated macrophages (TAMs) remains largely unexplored. The presence of mannose on nanoparticles can facilitate the targeting of TAMs which highly express the mannose receptor at their surface. Here, we optimized and characterized mannose-coated rHDL NPs loaded with 5,6-dimethylxanthenone-4-acetic acid (DMXAA), an immunomodulatory drug. Lipids, recombinant apolipoprotein A-I, DMXAA, and different amounts of DSPE-PEG-mannose (DPM) were combined to assemble rHDL-DPM-DMXAA NPs. The introduction of DPM in the nanoparticle assembly altered the particle size, zeta potential, elution pattern, and DMXAA entrapment efficiency of the rHDL NPs. Collectively, the changes in physicochemical characteristics of rHDL NPs upon the addition of the mannose moiety DPM indicated that the rHDL-DPM-DMXAA NPs were successfully assembled. The rHDL-DPM-DMXAA NPs induced an immunostimulatory phenotype in macrophages pre-exposed to cancer cell-conditioned media. Furthermore, rHDL-DPM NPs delivered their payload more readily to macrophages than cancer cells. Considering the effects of the rHDL-DPM-DMXAA NPs on macrophages, the rHDL-DPM NPs have the potential to serve as a drug delivery platform for the selective targeting of TAMs.

Funder

UNTHSC Seed

UNTHSC MIG pilot

Abionyx Pharma

Virginia Morris Kincaid Foundation

National Heart Lung and Blood Institute

National Institute of General Medical Sciences of the National Institutes of Health

Cancer Prevention and Research Institute of Texas

Publisher

MDPI AG

Subject

Pharmaceutical Science

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