Versatile Nanoplatforms with enhanced Photodynamic Therapy: Designs and Applications
Универсальные наноплатформы для усиленной фотодинамической терапии: разработка и применение
2020-01-01
SCID: 54.1/rvn8uhe9
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nanoplatformsoxygen self-sufficiencyphotodynamic therapyphotosensitizerstumor microenvironment
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Abstract (AI)
As an emerging antitumor strategy, photodynamic therapy (PDT) has attracted intensive attention for the treatment of various malignant tumors owing to its noninvasive nature and high spatial selectivity in recent years. However, the therapeutic effect is unsatisfactory on some occasions due to the presence of some unfavorable factors including nonspecific accumulation of PS towards malignant tissues, the lack of endogenous oxygen in tumors, as well as the limited light penetration depth, further hampering practical application. To circumvent these limitations and improve real utilization efficiency, various enhanced strategies have been developed and explored during the past years. In this review, we give an overview of the state-of-the-art advances progress on versatile nanoplatforms for enhanced PDT considering the enhancement from targeting or responsive, chemical and physical effect. Specifically, these effects mainly include organelle-targeting function, tumor microenvironment responsive release photosensitizers (PS), self-sufficient O2 (affinity oxygen and generating oxygen), photocatalytic water splitting, X-rays light stimulate, surface plasmon resonance enhancement, and the improvement by resonance energy transfer. When utilizing these strategies to improve the therapeutic effect, the advantages and limitations are addressed. Finally, the challenges and prospective will be discussed and demonstrated for the future development of advanced PDT with enhanced efficacy.
Key Findings
1
Key enhancement strategies include organelle targeting, tumor-microenvironment responsiveness, oxygen affinity or generation, photocatalytic water splitting, X-ray activation, surface plasmon resonance, and resonance energy transfer.
2
Photodynamic therapy is clinically constrained by nonspecific photosensitizer accumulation, tumor hypoxia, and limited light penetration depth.
3
The review identifies future development needs for advanced nanoplatforms capable of achieving more effective and practically applicable PDT.
4
These nanoplatform strategies can improve PDT therapeutic efficacy and utilization, but each approach has associated advantages, limitations, and unresolved translational challenges.
5
Versatile nanoplatforms have been developed to enhance PDT through targeting, stimulus-responsive photosensitizer release, and chemical or physical effects.
Research Object
Versatile nanoplatforms for enhanced photodynamic therapy (PDT) of malignant tumors
Research Subject
Design strategies and functional mechanisms that enhance PDT efficacy, including tumor/organelle targeting, tumor-microenvironment-responsive photosensitizer release, oxygen self-sufficiency, photocatalytic water splitting, X-ray stimulation, surface plasmon resonance, and resonance energy transfer
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2020-01-01
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