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Pharmaceutical Approach to Develop Novel Photosensitizer Nanoformulation: An Example of Design and Characterization Rationale of Chlorophyll α Derivative.
Sokol, Maria B; Beganovskaya, Veronika A; Mollaeva, Mariia R; Yabbarov, Nikita G; Chirkina, Margarita V; Belykh, Dmitry V; Startseva, Olga M; Egorov, Anton E; Kostyukov, Alexey A; Kuzmin, Vladimir A; Lomakin, Sergei M; Shilkina, Natalia G; Krivandin, Alexey V; Shatalova, Olga V; Gradova, Margarita A; Abakumov, Maxim A; Nikitin, Aleksey A; Maksimova, Varvara P; Kirsanov, Kirill I; Nikolskaya, Elena D.
Affiliation
  • Sokol MB; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Beganovskaya VA; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Mollaeva MR; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Yabbarov NG; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Chirkina MV; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Belykh DV; Institute of Chemistry, Komi Scientific Center, Ural Division of the Russian Academy of Sciences, 167982 Syktyvkar, Russia.
  • Startseva OM; Pitirim Sorokin Syktyvkar State University, 167001 Syktyvkar, Russia.
  • Egorov AE; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Kostyukov AA; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Kuzmin VA; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Lomakin SM; National Research Nuclear University MEPhI, 115409 Moscow, Russia.
  • Shilkina NG; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Krivandin AV; N. N. Semenov Federal Research Center for Chemical Physics of Russian Academy of Sciences, 119991 Moscow, Russia.
  • Shatalova OV; N. N. Semenov Federal Research Center for Chemical Physics of Russian Academy of Sciences, 119991 Moscow, Russia.
  • Gradova MA; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Abakumov MA; N. M. Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
  • Nikitin AA; N. N. Semenov Federal Research Center for Chemical Physics of Russian Academy of Sciences, 119991 Moscow, Russia.
  • Maksimova VP; Laboratory of Biomedical Nanomaterials, National University of Science and Technology (MISIS), 119049 Moscow, Russia.
  • Kirsanov KI; Laboratory of Biomedical Nanomaterials, National University of Science and Technology (MISIS), 119049 Moscow, Russia.
  • Nikolskaya ED; Blokhin National Medical Research Center of Oncology, 115478 Moscow, Russia.
Pharmaceutics ; 16(1)2024 Jan 18.
Article de En | MEDLINE | ID: mdl-38258135
ABSTRACT
In this study, we described physico-chemical properties of novel nanoformulation of photosensitizer-pyropheophorbide α 17-diethylene glycol ester (XL) (chlorophyll α derivative), revealing insights into antitumor activity and maintaining quality, meeting the pharmaceutical approach of new nanoformulation design. Our formulation, based on poly(lactic-co-glycolic acid) (PLGA) nanoparticles, increased XL solubility and selective tumor-targeted accumulation. In our research, we revealed, for the first time, that XL binding to polyvinyl alcohol (PVA) enhances XL photophysical activity, providing the rationale for PVA application as a stabilizer for nanoformulations. Results of FTIR, DSC, and XRD revealed the physical interactions between XL and excipients, including PVA, indicating that the encapsulation maintained XL binding to PVA. The encapsulated XL exhibited higher photophysical activity compared to non-encapsulated substance, which can be attributed to the influence of residual PVA. Gamma-irradiation led to degradation of XL; however, successful sterilization of the samples was achieved through the filtration. Importantly, the encapsulated and sterilized XL retained cytotoxicity against both 2D and 3D tumor cell models, demonstrating the potential of the formulated NP-XL for photodynamic therapy applications, but lacked the ability to reactivate epigenetically silenced genes. These findings provide valuable insights into the design and characterization of PLGA-based nanoparticles for the encapsulation of photosensitizers.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Type d'étude: Prognostic_studies Langue: En Journal: Pharmaceutics Année: 2024 Type de document: Article Pays d'affiliation: Russie Pays de publication: Suisse

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Type d'étude: Prognostic_studies Langue: En Journal: Pharmaceutics Année: 2024 Type de document: Article Pays d'affiliation: Russie Pays de publication: Suisse