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Passing of Nanocarriers across the Histohematic Barriers: Current Approaches for Tumor Theranostics.
Gareev, Kamil; Tagaeva, Ruslana; Bobkov, Danila; Yudintceva, Natalia; Goncharova, Daria; Combs, Stephanie E; Ten, Artem; Samochernych, Konstantin; Shevtsov, Maxim.
Affiliation
  • Gareev K; Institute of Cytology of the Russian Academy of Sciences (RAS), 194064 Saint Petersburg, Russia.
  • Tagaeva R; Department of Micro and Nanoelectronics, Saint Petersburg Electrotechnical University "LETI", 197022 Saint Petersburg, Russia.
  • Bobkov D; Institute of Cytology of the Russian Academy of Sciences (RAS), 194064 Saint Petersburg, Russia.
  • Yudintceva N; Personalized Medicine Centre, Almazov National Medical Research Centre, 2 Akkuratova Str., 197341 Saint Petersburg, Russia.
  • Goncharova D; Institute of Cytology of the Russian Academy of Sciences (RAS), 194064 Saint Petersburg, Russia.
  • Combs SE; Personalized Medicine Centre, Almazov National Medical Research Centre, 2 Akkuratova Str., 197341 Saint Petersburg, Russia.
  • Ten A; Institute of Cytology of the Russian Academy of Sciences (RAS), 194064 Saint Petersburg, Russia.
  • Samochernych K; Personalized Medicine Centre, Almazov National Medical Research Centre, 2 Akkuratova Str., 197341 Saint Petersburg, Russia.
  • Shevtsov M; Institute of Cytology of the Russian Academy of Sciences (RAS), 194064 Saint Petersburg, Russia.
Nanomaterials (Basel) ; 13(7)2023 Mar 23.
Article in En | MEDLINE | ID: mdl-37049234
ABSTRACT
Over the past several decades, nanocarriers have demonstrated diagnostic and therapeutic (i.e., theranostic) potencies in translational oncology, and some agents have been further translated into clinical trials. However, the practical application of nanoparticle-based medicine in living organisms is limited by physiological barriers (blood-tissue barriers), which significantly hampers the transport of nanoparticles from the blood into the tumor tissue. This review focuses on several approaches that facilitate the translocation of nanoparticles across blood-tissue barriers (BTBs) to efficiently accumulate in the tumor. To overcome the challenge of BTBs, several methods have been proposed, including the functionalization of particle surfaces with cell-penetrating peptides (e.g., TAT, SynB1, penetratin, R8, RGD, angiopep-2), which increases the passing of particles across tissue barriers. Another promising strategy could be based either on the application of various chemical agents (e.g., efflux pump inhibitors, disruptors of tight junctions, etc.) or physical methods (e.g., magnetic field, electroporation, photoacoustic cavitation, etc.), which have been shown to further increase the permeability of barriers.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nanomaterials (Basel) Year: 2023 Document type: Article Affiliation country: RUSSIA

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nanomaterials (Basel) Year: 2023 Document type: Article Affiliation country: RUSSIA