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A Bacterial and Ganglioside-based Nanoparticle Initiates Reprogramming of Macrophages and Promotes Antitumor Phenotypes.
Alvarez-Arzola, Rydell; Oliver, Liliana; Messmer, Michelle M; Twum, Danielle Y F; Lee, Kelvin P; Muhitch, Jason B; Mesa, Circe; Abrams, Scott I.
Affiliation
  • Alvarez-Arzola R; Department of Immunoregulation, Immunology and Immunotherapy Direction, Center of Molecular Immunology, Havana, Cuba.
  • Oliver L; Department of Immunoregulation, Immunology and Immunotherapy Direction, Center of Molecular Immunology, Havana, Cuba.
  • Messmer MM; Department of Immunology, University of Washington, Seattle, WA.
  • Twum DYF; Department of Immunology, Roswell Park Comprehensive Cancer Center, Buffalo, NY.
  • Lee KP; IU Simon Comprehensive Cancer Center, Division of Hematology/Oncology, Department of Medicine, Indiana University School of Medicine, Indianapolis, IN.
  • Muhitch JB; Department of Immunology, Roswell Park Comprehensive Cancer Center, Buffalo, NY.
  • Mesa C; Innovative Immunotherapy Alliance S.A., Mariel, Artemisa, Cuba.
  • Abrams SI; Department of Immunology, Roswell Park Comprehensive Cancer Center, Buffalo, NY.
J Immunol ; 212(3): 475-486, 2024 Feb 01.
Article in En | MEDLINE | ID: mdl-38117752
ABSTRACT
Macrophages represent the most abundant immune component of the tumor microenvironment and often exhibit protumorigenic (M2-like) phenotypes that contribute to disease progression. Despite their generally accepted protumorigenic role, macrophages can also display tumoricidal (or M1-like) behavior, revealing that macrophages can be functionally reprogrammed, depending on the cues received within the tumor microenvironment. Moreover, such plasticity may be achieved by pharmacologic or biologic interventions. To that end, we previously demonstrated that a novel immunomodulator termed the "very small size particle" (VSSP) facilitates maturation of dendritic cells and differentiation of myeloid-derived suppressor cells to APCs with reduced suppressive activity in cancer models. VSSP was further shown to act in the bone marrow to drive the differentiation of progenitors toward monocytes, macrophages, and dendritic cells during emergency myelopoiesis. However, the underlying mechanisms for VSSP-driven alterations in myeloid differentiation and function remained unclear. In this study, in mouse models, we focused on macrophages and tested the hypothesis that VSSP drives macrophages toward M1-like functional states via IRF8- and PU.1-dependent mechanisms. We further hypothesized that such VSSP-mediated actions would be accompanied by enhanced antitumor responses. Overall, we showed that (1) VSSP drives naive or M2-derived macrophages to M1-like states, (2) the M1-like state induced by VSSP occurs via IRF8- and PU.1-dependent mechanisms, and (3) single-agent VSSP induces an antitumor response that is accompanied by alterations in the intratumoral myeloid compartment. These results provide a deeper mechanistic underpinning of VSSP and strengthen its use to drive M1-like responses in host defense, including cancer.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Nanoparticles / Neoplasms Limits: Animals Language: En Journal: J Immunol Year: 2024 Type: Article Affiliation country: Cuba

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Nanoparticles / Neoplasms Limits: Animals Language: En Journal: J Immunol Year: 2024 Type: Article Affiliation country: Cuba