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Isolation of Salmonella typhimurium-containing Phagosomes from Macrophages
Published on: October 25, 2017
Engineered Microparticles Suggest Proteolysis as a Critical Prerequisite for Chromatin Clearance in Macrophage
Masahiro Fukuda1, Mary Clayton Soto2, Jacob Perkins1
1Department of Chemical and Biomedical Engineering, FAMU-FSU College of Engineering, 2525 Pottsdamer Street, Tallahassee, Florida 32310-2870, United States.
Abstract:
Defective clearance of phagocytosed DNA contributes to inflammation, yet the molecular factors governing DNA degradation within phagosomes remain unclear. Here, we present a materials-based platform using engineered microparticles to dissect how DNA is processed inside macrophage phagosomes. Using microcontact printing, we fabricated two classes of DNA-containing microparticles: thermoresponsive poly(N-isopropylacrylamide) (PNIPAM) microspheres encapsulating intercalator-labeled DNA and chromatin-mimetic particles composed of multilayered histone-DNA assemblies with tunable cross-linking. These structures provide precise control over DNA accessibility, protein association, and degradability. Upon phagocytosis by macrophages, DNA embedded within hydrated PNIPAM networks remained intact, indicating restricted diffusion of phagosomal enzymes. In contrast, DNA electrostatically complexed with histone was efficiently degraded but only after proteolytic removal of the histone barrier. When histone was chemically cross-linked, DNA degradation was inhibited. These results demonstrate that proteolysis of DNA-bound proteins is a critical prerequisite for DNase II-mediated cleavage in macrophage phagosomes. This modular microparticle platform offers a reductionist approach for probing the biochemical and physical determinants of DNA degradation within phagocytes and enables a systematic investigation of how protein-DNA interactions, cross-linking, or pathological stabilization of chromatin-like structures influences intracellular DNA persistence and inflammatory signaling.
Insights
Engineered microparticles reveal that DNA degradation in macrophage phagosomes requires proteolysis of histone proteins. This finding clarifies intracellular DNA processing and its link to inflammation.
Area of Science:
- Biochemistry
- Cell Biology
- Materials Science
Background:
- Defective clearance of phagocytosed DNA contributes to inflammation.
- Molecular mechanisms of DNA degradation within phagosomes are not fully understood.
Purpose of the Study:
- To investigate the molecular factors controlling DNA degradation within macrophage phagosomes.
- To develop a materials-based platform for studying intracellular DNA processing.
Main Methods:
- Fabrication of DNA-containing microparticles using microcontact printing.
- Two classes of particles were created: thermoresponsive PNIPAM microspheres and chromatin-mimetic histone-DNA assemblies.
- Analysis of DNA degradation within phagosomes after macrophage phagocytosis.
Main Results:
- DNA within hydrated PNIPAM networks remained intact, suggesting restricted enzyme diffusion.
- DNA complexed with histone was degraded only after histone proteolysis.
- Chemically cross-linked histone inhibited DNA degradation, highlighting the role of proteolysis.
Conclusions:
- Proteolysis of DNA-bound proteins is essential for DNase II-mediated DNA cleavage in phagosomes.
- The microparticle platform provides a reductionist approach to study intracellular DNA degradation.
- Understanding these mechanisms is key to investigating inflammatory signaling pathways.
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