192
Views
6
CrossRef citations to date
0
Altmetric
Original Articles

Low-intensity light-induced drug release from a dual delivery system comprising of a drug loaded liposome and a photosensitive conjugate

, &
Pages 655-667 | Received 22 Aug 2019, Accepted 29 Dec 2019, Published online: 10 Jan 2020

References

  • Nayak R, Meerovich I, Dash AK. Translational multi-disciplinary approach for the drug and gene delivery systems for cancer treatment. AAPS PharmSciTech. 2019;20:160.
  • Pawar S, Shevalkar G, Vavia P. Glucosamine-anchored doxorubicin-loaded targeted nano-niosomes: pharmacokinetic, toxicity and pharmacodynamic evaluation. J Drug Target. 2016;24:730–743.
  • Gazzano E, Rolando B, Chegaev K, et al. Folate-targeted liposomal nitrooxy-doxorubicin: an effective tool against P-glycoprotein-positive and folate receptor-positive tumors. J Control Release. 2018;270:37–52.
  • Wei Y, Gu X, Cheng L, et al. Low-toxicity transferrin-guided polymersomal doxorubicin for potent chemotherapy of orthotopic hepatocellular carcinoma in vivo. Acta Biomater. 2019;92:196–204.
  • Li C, Lai C, Qiu Q, et al. Dual-ligand modification of PEGylated liposomes used for targeted doxorubicin delivery to enhance anticancer efficacy. AAPS PharmSciTech. 2019;20:188.
  • Zou Y, Meng F, Deng C, et al. Robust, tumor-homing and redox-sensitive polymersomal doxorubicin: a superior alternative to Doxil and Caelyx? J Control Release. 2016;239:149–158.
  • Zou Y, Wei Y, Wang G, et al. Nanopolymersomes with an ultrahigh iodine content for high-performance X-ray computed tomography imaging in vivo. Adv Mater. 2017;29:1603997.
  • Zhao N, Woodle MC, Mixson AJ. Advances in delivery systems for doxorubicin. J Nanomed Nanotechnol. 2018;9:519.
  • Kabanov AV, Alakhova DY, Zhao Y, inventors; Board of Regents of the University of Nebraska, Assignee. Compositions and methods for the treatment of cancer. United States patent US 10,022,325. 2018.
  • Rabinovich A, Ramanakumar AV, Lau S, et al. Prolonged pegylated liposomal doxorubicin treatment for recurrent pelvic cancers: a feasibility study. Acta Obstet Gynecol Scand. 2015;94:776–780.
  • Pendlebury A, DeBernardo R, Rose PG. Long-term use of pegylated liposomal doxorubicin to a cumulative dose of 4600 mg/m2 in recurrent ovarian cancer. Anticancer Drugs. 2017;28:815–817.
  • Kesterson JP, Odunsi K, Lele S. High cumulative doses of pegylated liposomal doxorubicin are not associated with cardiac toxicity in patients with gynecologic malignancies. Chemotherapy. 2010;56:108–111.
  • Lorusso D, Sabatucci I, Maltese G, et al. Treatment of recurrent ovarian cancer with pegylated liposomal doxorubicin: a reappraisal and critical analysis. Tumori. 2019;105:282–287.
  • Chen Q, Ke H, Dai Z, et al. Nanoscale theranostics for physical stimulus-responsive cancer therapies. Biomaterials. 2015;73:214–230.
  • Luo D, Carter KA, Miranda D, et al. Chemophototherapy: an emerging treatment option for solid tumors. Adv Sci. 2017;4:1600106.
  • Zotti G, Vercelli B, Berlin A. Reaction of gold nanoparticles with tetracyanoquinoidal molecules. Spectrophotometric determination of the Au0 content of gold nanoparticles. Anal Chem. 2008;80:815–818.
  • Snyder JW, Greco WR, Bellnier DA, et al. Photodynamic therapy: a means to enhanced drug delivery to tumors. Cancer Res. 2003;63:8126–8131.
  • Banerjee SS, Chen DH. A multifunctional magnetic nanocarrier bearing fluorescent dye for targeted drug delivery by enhanced two-photon triggered release. Nanotechnology. 2009;20:185103.
  • Cao J, Chen D, Huang S, et al. Multifunctional near infrared light-triggered biodegradable micelles for chemo- and photo-thermal combination therapy. Oncotarget. 2016;7:82170–82184.
  • Deng W, Qiu J, Wang S, et al. Development of biocompatible and VEGF-targeted paclitaxel nanodrugs on albumin and graphene oxide dual-carrier for photothermal-triggered drug delivery in vitro and in vivo. Int J Nanomedicine. 2018;13:439–453.
  • Rai P, Mallidi S, Zheng X, et al. Development and applications of photo-triggered theranostic agents. Adv Drug Deliv Rev. 2010;62:1094–1124.
  • Thomas RG, Moon MJ, Surendran SP, et al. MHI-148 cyanine dye conjugated chitosan nanomicelle with NIR light-trigger release property as cancer targeting theranostic agent. Mol Imaging Biol. 2018;20:533–543.
  • Tiwari AP, Hwang TI, Oh JM, et al. pH/NIR-responsive polypyrrole-functionalized fibrous localized drug-delivery platform for synergistic cancer therapy. ACS Appl Mater Interfaces. 2018;10:20256–20270.
  • Wu G, Mikhailovsky A, Khant HA, et al. Chapter 14 – synthesis, characterization, and optical response of gold nanoshells used to trigger release from liposomes. Methods Enzymol. 2009;464:279–307.
  • You J, Shao R, Wei X, et al. Near-infrared light triggers release of paclitaxel from biodegradable microspheres: photothermal effect and enhanced antitumor activity. Small. 2010;6:1022–1031.
  • You J, Zhang P, Hu F, et al. Near-infrared light-sensitive liposomes for the enhanced photothermal tumor treatment by the combination with chemotherapy. Pharm Res. 2014;31:554–565.
  • Carter KA, Shao S, Hoopes MI, et al. Porphyrin-phospholipid liposomes permeabilized by near-infrared light. Nat Commun. 2014;5:3546.
  • Henderson TA, Morries L. Near-infrared photonic energy penetration: can infrared phototherapy effectively reach the human brain? Neuropsychiatr Dis Treat. 2015;11:2191–2208.
  • Barolet D, Christiaens F, Hamblin MR. Infrared and skin: friend or foe. J Photochem Photobiol B Biol. 2016;155:78–85.
  • Meerovich IG, Sanarova EV, Meerovich GA, et al. Near-infrared photosensitizers based on nanostructured forms of phthalocyanine derivatives. Russ J Gen Chem. 2015;85:280–288.
  • Meerovich I, Muthukrishnan N, Johnson GA, et al. Photodamage of lipid bilayers by irradiation of a fluorescently labeled cell-penetrating peptide. Biochim Biophys Acta. 2014;1840:507–515.
  • A549 (ATCC CCL-185) [Internet]. American Type Culture Collection; 2019 [cited 2019 Jul 18]. Available from: https://www.atcc.org/products/all/CCL-185.aspx#culturemethod
  • WI-26 VA4 (ATCC CCL-95.1) [Internet]. American Type Culture Collection; 2014 [cited 2019 Jul 18]. Available from: https://www.atcc.org/Products/All/CCL-95.1.aspx#culturemethod
  • Y79 (ATCC HTB-18) [Internet]. American Type Culture Collection; 2019 [cited 2019 Jul 18]. Available from: https://www.atcc.org/products/all/HTB-18.aspx#culturemethod
  • B16-F10 (ATCC CRL-6475) [Internet]. American Type Culture Collection; 2019 [cited 2019 Jul 18]. Available from: https://www.atcc.org/products/all/CRL-6475.aspx#culturemethod
  • Niu H, Xu M, Li S, et al. High-performance liquid chromatography (HPLC) quantification of liposome-delivered doxorubicin in arthritic joints of collagen-induced arthritis rats. Med Sci Monit Basic Res. 2017;23:150–158.
  • Bisby RH, Mead C, Morgan CG. Active uptake of drugs into photosensitive liposomes and rapid release on UV photolysis. Photochem Photobiol. 2000;72:57–61.
  • Van Bambeke F, Kerkhofs A, Schanck A, et al. Biophysical studies and intracellular destabilization of pH-sensitive liposomes. Lipids. 2000;35:213–223.
  • Sharma A.An Ultraviolet-Sterilization Protocol for Microtitre Plates. J Exp Microbiol Immunol. 2012;16:144–147
  • Tada H, Shiho O, Kuroshima K, et al. An improved colorimetric assay for interleukin 2. J Immunol Methods. 1986;93(2):157–165.
  • TBARS (TCA method) assay kit [Internet]. Cayman Chemical; 2019 [cited 2019 Jul 18]. Available from: https://www.caymanchem.com/pdfs/700870.pdf
  • Aguilera TA, Olson ES, Timmers MM, et al. Systemic in vivo distribution of activatable cell penetrating peptides is superior to that of cell penetrating peptides. Integr Biol (Camb). 2009;1:371–381.
  • Ryadnov MG, Degtyareva OV, Kashparov IA, et al. Antimicrobial peptides containing arginine. Biochemistry. 2003;68:1049–1054.
  • Liu J, Liang H, Li M, et al. Tumor acidity activating multifunctional nanoplatform for NIR-mediated multiple enhanced photodynamic and photothermal tumor therapy. Biomaterials. 2018;157:107–124.
  • Luo D, Li N, Carter KA, et al. Rapid light-triggered drug release in liposomes containing small amounts of unsaturated and porphyrin-phospholipids. Small. 2016;12:3039–3047.
  • Libardo MDJ, Wang TY, Pellois JP, et al. How does membrane oxidation affect cell delivery and cell killing? Trends Biotechnol. 2017;35:686–690.
  • Meerovich G, Meerovich I, Lukyanets E, et al. Influence of liposome size on accumulation in tumor and therapeutic efficiency of liposomal near-IR photosensitizer for PDT based on aluminum hydroxide tetra-3-phenylthiophthalocyanine. Nanotechnology 2008. Life Sciences, Medicine & Bio Materials – Technical Proceedings of the 2008 NSTI Nanotechnology Conference and Trade Show. Vol. 2; 2008. p. 41–44.
  • Macháček M, Carter KA, Kostelanský F, et al. Binding of an amphiphilic phthalocyanine to pre-formed liposomes confers light-triggered cargo release. J Mater Chem B. 2018;6:7298–7305.
  • Miranda-Apodaca J, Hananya N, Velázquez-Campoy A, et al. Emissive enhancement of the singlet oxygen chemiluminescence probe after binding to bovine serum albumin. Molecules. 2019;24:2422.
  • Fueyo J, Alemany R, Gomez-Manzano C, et al. Preclinical characterization of the antiglioma activity of a tropism-enhanced adenovirus targeted to the retinoblastoma pathway. J Natl Cancer Inst. 2003;95:652–660.
  • Tian X, Chakrabarti A, Amirkhanov N, et al. Receptor-mediated internalization of chelator-PNA-peptide hybridization probes for radioimaging or magnetic resonance imaging of oncogene mRNAs in tumours. Biochem Soc Trans. 2007;35:72–76.
  • Molina-Arcas M, Hancock DC, Sheridan C, et al. Coordinate direct input of both KRAS and IGF1 receptor to activation of PI3 kinase in KRAS-mutant lung cancer. Cancer Discov. 2013;3:548–563.
  • Meerovich I, Nichols MG, Dash AK. Low-intensity light-induced paclitaxel release from lipid-based nano-delivery systems. J Drug Target. 2019;27:1–13.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.