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  4. Revealing the Phagosomal pH Regulation and Inflammation of Macrophages after Endocytosing Polyurethane Nanoparticles by A Ratiometric pH Nanosensor
 
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Revealing the Phagosomal pH Regulation and Inflammation of Macrophages after Endocytosing Polyurethane Nanoparticles by A Ratiometric pH Nanosensor

Journal
Advanced Biology
Journal Volume
5
Journal Issue
1
Date Issued
2021
Author(s)
Wong C.-W
Pratiwi F.W
Chen P
Mou C.-Y
SHAN-HUI HSU  
DOI
10.1002/adbi.202000200
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85108917597&doi=10.1002%2fadbi.202000200&partnerID=40&md5=a8b8d365f4fc33a6a091c2d0e598a9e3
https://scholars.lib.ntu.edu.tw/handle/123456789/600351
Abstract
The effect of the intracellular pH of macrophages after taking up biodegradable polymer nanoparticles (NPs) on immunomodulating functions has not been explored so far. Previous studies have demonstrated that biodegradable polyurethane (PU) NPs exhibit immunosuppressive activity. Yet, the intracellular mechanism is not clearly understood. In this study, a uniquely designed pH nanosensor is employed for tracking the intracellular pH value of macrophages to reveal the intracellular journey of PU NPs and to clarify the intracellular pH effect on the corresponding inflammatory response. First, fluorescent mesoporous silica nanoparticles (FRMSNs) is used to detect the pH change in macrophages after endo/phagocytosis of PU NPs. Second, PU is coated on the external surface of FRMSNs to examine the intracellular trafficking process of PU in the macrophages. The results show that the majority of PU-coated FRMSNs remain to stay at the cytosol-early endosome/phagosome regions. The intracellular pH value and other supporting results show that the immune response of PU NPs may be correlated to their internalization journey. The retardation in the degradation process of the PU NPs may intervene with the lysosome activity and repress the immunostimulatory effect, which contributes to the low immune response of PU NPs. ? 2020 Wiley-VCH GmbH
Subjects
fluorescent mesoporous silica nanoparticles
intracellular trafficking
macrophages
pH
polyurethane
Biodegradable polymers
Immune system
Macrophages
Nanoparticles
Nanosensors
Polyurethanes
Silica
Silica nanoparticles
Biodegradable polyurethanes
Degradation process
External surfaces
Inflammatory response
Intracellular pH
Intracellular trafficking
Mesoporous silica nanoparticles
Polymer nanoparticles
pH effects
nanoparticle
polyurethan
human
inflammation
macrophage
phagosome
Humans
Hydrogen-Ion Concentration
Inflammation
Phagosomes
Type
journal article

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