2021
DOI: 10.1016/j.bioactmat.2021.04.030
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Photoactivatable nanogenerators of reactive species for cancer therapy

Abstract: In recent years, reactive species-based cancer therapies have attracted tremendous attention due to their simplicity, controllability, and effectiveness. Herein, we overviewed the state-of-art advance for photo-controlled generation of highly reactive radical species with nanomaterials for cancer therapy. First, we summarized the most widely explored reactive species, such as singlet oxygen, superoxide radical anion (O 2 ●- ), nitric oxide ( ● NO), car… Show more

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Cited by 17 publications
(6 citation statements)
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References 175 publications
(220 reference statements)
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“…Li is widely used to store energy, particularly in batteries [ 265 , 266 , 267 , 268 ] and capacitors [ 269 , 270 ], and we foresee nanogenerators [ 271 ] (including stimuli-responsive nanogenerators, e.g., photoactivatable nanogenerators [ 272 ]) will have broad applications in medical fields, such as regenerative medicine, rehabilitation, and cancer treatment [ 273 , 274 , 275 , 276 ], particularly as nanogenerators have been shown to increase the efficacy of chemoimmunotherapy for non-small-cell lung cancer [ 277 ]. Therefore, Li-doped bioceramics may be good candidates for nanogenerators for advanced multifunctional systems in cancer treatments and regenerative medicine [ 272 , 278 ]. Li has anti-replication properties in viruses and is anti-mitotic in cancer cells, but it simultaneously stimulates stem cell proliferation, which may be an evolved regulatory system.…”
Section: Discussionmentioning
confidence: 99%
“…Li is widely used to store energy, particularly in batteries [ 265 , 266 , 267 , 268 ] and capacitors [ 269 , 270 ], and we foresee nanogenerators [ 271 ] (including stimuli-responsive nanogenerators, e.g., photoactivatable nanogenerators [ 272 ]) will have broad applications in medical fields, such as regenerative medicine, rehabilitation, and cancer treatment [ 273 , 274 , 275 , 276 ], particularly as nanogenerators have been shown to increase the efficacy of chemoimmunotherapy for non-small-cell lung cancer [ 277 ]. Therefore, Li-doped bioceramics may be good candidates for nanogenerators for advanced multifunctional systems in cancer treatments and regenerative medicine [ 272 , 278 ]. Li has anti-replication properties in viruses and is anti-mitotic in cancer cells, but it simultaneously stimulates stem cell proliferation, which may be an evolved regulatory system.…”
Section: Discussionmentioning
confidence: 99%
“…The merits of photosensitizer peptide-based nanostructures for PDT have greatly promoted their bio-application in many types of cancer cells [37,38]. However, most of the research to date has focused on evaluating cancer-cell biochemical processes during PDT.…”
Section: Introductionmentioning
confidence: 99%
“…During PDT, photoactivated PSs transfer energy to surrounding molecular oxygen in the cells to generate highly reactive singlet oxygen ( 1 O 2 ) (type II reaction). In addition, PSs can transfer electrons to generate short-lived PS radical species (type I reaction) that subsequently produce a range of compounds called reactive oxygen species (ROS), such as superoxide anions and hydroxyl radicals [ 3 , 4 ]. An overload of ROS causes significant toxicity by oxidative stress, which eventually leads to cell death.…”
Section: Introductionmentioning
confidence: 99%