2017
DOI: 10.1021/acsnano.7b03507
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Regulating Near-Infrared Photodynamic Properties of Semiconducting Polymer Nanotheranostics for Optimized Cancer Therapy

Abstract: Development of optical nanotheranostics for the capability of photodynamic therapy (PDT) provides opportunities for advanced cancer therapy. However, most nanotheranostic systems fail to regulate their generation levels of reactive oxygen species (ROS) according to the disease microenvironment, which can potentially limit their therapeutic selectivity and increase the risk of damage to normal tissues. We herein report the development of hybrid semiconducting polymer nanoparticles (SPNs) with self-regulated nea… Show more

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Cited by 238 publications
(178 citation statements)
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“…SPNs constitute not only a new generation of organic nanoparticles for sensing and imaging139, 140, 141, 142, 143 but also a noninvasive remote control method with a near‐infrared absorbing property to regulate in vivo gene expression and cellular signals 135, 142, 144. What is particularly exciting is their potential in optimized cancer therapy 145, 146. The prospective integration of EVs and SPNs will have integrated superiority, such as targeting and controllability, just like the integration of liposomes and EVs, making them star performers in personalized and precision medicine.…”
Section: Discussionmentioning
confidence: 99%
“…SPNs constitute not only a new generation of organic nanoparticles for sensing and imaging139, 140, 141, 142, 143 but also a noninvasive remote control method with a near‐infrared absorbing property to regulate in vivo gene expression and cellular signals 135, 142, 144. What is particularly exciting is their potential in optimized cancer therapy 145, 146. The prospective integration of EVs and SPNs will have integrated superiority, such as targeting and controllability, just like the integration of liposomes and EVs, making them star performers in personalized and precision medicine.…”
Section: Discussionmentioning
confidence: 99%
“…In 2017, Pu and co‐workers report a hybrid intraparticle doping approach to regulate the NIR photodynamic properties of conjugated polymer nanoparticles for optimized cancer therapy . The nanotheranostics were composed of NIR‐absorbing conjugated polymer and cerium oxide nanoparticle (nanoceria) to serve as the fluorescent PDT agent and the ROS regulator, respectively.…”
Section: Conjugated Polymer‐based Photosensitizersmentioning
confidence: 99%
“…f) Mean tumor temperature as a function of laser irradiation time. g) Tumor growth curves of different groups of mice with and without laser irradiation . Copyright 2017, American Chemical Society.…”
Section: Conjugated Polymer‐based Photosensitizersmentioning
confidence: 99%
“…[10] To overcome this issue,t wo strategies have been developed. [23] In this work, we synthesize as emiconducting polymer nano-prodrug (SPNpd) with aw ell-defined structure for hypoxia-activated synergistic cancer therapy.T his nanoprodrug is assembled from an amphiphilic semiconducting brush polymer grafted with chemodrug side chains through hypoxia-cleavable linkers.Ithas the following three key units ( Figure 1a): Al ight-responsive photodynamic SPN core, ah ypoxia-cleavable linker,a nd the chemotherapeutic drug, ab romoisophosphoramide mustard intermediate (IPM-Br). [11] Theo ther is to combine PDT with chemotherapy,w hich uses the hypoxia-responsive carrier to encapsulate both photosensitizers and chemodrugs into the nanoparticles.…”
mentioning
confidence: 99%
“…[21] Moreover,s tructural modification of precursor polymers has led to SPNbased phototherapeutic agents able to convert photoenergy to heat or ROSf or PTT or PDT. [23] In this work, we synthesize as emiconducting polymer nano-prodrug (SPNpd) with aw ell-defined structure for hypoxia-activated synergistic cancer therapy.T his nanoprodrug is assembled from an amphiphilic semiconducting brush polymer grafted with chemodrug side chains through hypoxia-cleavable linkers.Ithas the following three key units ( Figure 1a): Al ight-responsive photodynamic SPN core, ah ypoxia-cleavable linker,a nd the chemotherapeutic drug, ab romoisophosphoramide mustard intermediate (IPM-Br). [23] In this work, we synthesize as emiconducting polymer nano-prodrug (SPNpd) with aw ell-defined structure for hypoxia-activated synergistic cancer therapy.T his nanoprodrug is assembled from an amphiphilic semiconducting brush polymer grafted with chemodrug side chains through hypoxia-cleavable linkers.Ithas the following three key units ( Figure 1a): Al ight-responsive photodynamic SPN core, ah ypoxia-cleavable linker,a nd the chemotherapeutic drug, ab romoisophosphoramide mustard intermediate (IPM-Br).…”
mentioning
confidence: 99%