Design of carrageenan based nanocarrier as a drug nanocarrier for tumor targeting: Radiolabeling and biodistribution

被引:9
|
作者
Sayed, Asmaa [1 ]
Mahmoud, Ashgan F. [2 ]
Aly, Alaa M. [3 ]
Emad, Kirollos [3 ]
Mahmoud, Ghada A. [1 ]
机构
[1] Egyptian Atom Energy Author EAEA, Natl Ctr Radiat Res & Technol, Polymer Chem Dept, Cairo, Egypt
[2] Egyptian Atom Energy Author EAEA, Hot Labs Ctr, Labeled Cpds Dept, Cairo, Egypt
[3] October Univ Modern Sci & Arts MSA, Fac Biotechnol, Giza, Egypt
关键词
Carrageenan; Poly (N-isopropylacrylamide); Gamma irradiation; Nanocarrier; Biodistribution; KAPPA-CARRAGEENAN; GAMMA-RADIATION; DOXORUBICIN; PH; NANOPARTICLES; ALGINATE; MODEL; BEADS; FOOD;
D O I
10.1016/j.jddst.2023.104573
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Since anti-cancer drugs damage healthy tissues, targeted therapy, especially in cancer treatment, is becoming more important. Thus, many studies have examined delivery systems to mitigate these effects. Carrageenan/poly (N-isopropylacrylamide) (CAR-PNIPAm) based nanocarriers for the delivery of Doxorubicin (DOX) drugs were prepared and characterized in this study. Gamma irradiation was used to create the nanocarriers, while FT-IR, AFM, and DLS were used to characterize them. Particle size was studied in relation to irradiation dose (10-50 kGy) and total polymer content (0.5, 1.0, and 1.5 wt%). At pH 5.6 and 7.2, the nanocarrier's DOX-releasing behavior was studied. According to our findings, the smallest particle size (71 nm) and zeta poten-tial (-13.2 mV) were found in nanocarriers produced with 40 kGy and 1 wt% of CAR-PNIPAm. The zeta potential shifted to a more stable-30mV after DOX injection. pH was shown to have an effect on the rate at which DOX was released from the nanocarrier. DOX/CAR-PNIPAm nanocarriers efficiently suppressed HepG-2 and MCF-7 cancer cell lines, according to in vitro experiments. In vivo biodistribution experiments were also performed in both normal and solid tumor-bearing mice using a radiolabeled 99mTc-DOX/CAR-PNIPAm nanocarrier. A greater T/NT ratio and cell targeting were seen 30 min post-injection in the solid tumour model, demonstrating that the nanocarrier demonstrated tumor targeting potential. In conclusion, our results lend credence to the feasibility of 99mTc-DOX/CAR-PNIPAm nanocarrier for use in therapeutic and diagnostic settings aimed at targeting tumors.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] A novel lactoferrin-modified β-cyclodextrin nanocarrier for brain-targeting drug delivery
    Ye, Yajing
    Sun, Yi
    Zhao, Hongli
    Lan, Minbo
    Gao, Feng
    Song, Chao
    Lou, Kaiyan
    Li, Hao
    Wang, Wei
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2013, 458 (01) : 110 - 117
  • [42] Cancer Stem Cells and the Tumor Microenvironment: Targeting the Critical Crosstalk through Nanocarrier Systems
    Nayak, Aadya
    Warrier, Neerada Meenakshi
    Kumar, Praveen
    STEM CELL REVIEWS AND REPORTS, 2022, 18 (07) : 2209 - 2233
  • [43] Matrix Metalloprotease 2-Responsive Multifunctional Liposomal Nanocarrier for Enhanced Tumor Targeting
    Zhu, Lin
    Kate, Pooja
    Torchilin, Vladimir P.
    ACS NANO, 2012, 6 (04) : 3491 - 3498
  • [44] Cancer Stem Cells and the Tumor Microenvironment: Targeting the Critical Crosstalk through Nanocarrier Systems
    Aadya Nayak
    Neerada Meenakshi Warrier
    Praveen Kumar
    Stem Cell Reviews and Reports, 2022, 18 : 2209 - 2233
  • [45] Hybrid nanocomposite of iron oxide nanoparticle/chitosan nanocarrier for efficient tumor targeting and imaging
    Choi, W. I.
    NEW BIOTECHNOLOGY, 2018, 44 : S98 - S99
  • [46] Nanocarrier-mediated targeting of tumor and tumor vascular cells improves uptake and penetration of drugs into neuroblastoma
    Pastorino, Fabio
    Brignole, Chiara
    Loi, Monica
    Di Paolo, Daniela
    Di Fiore, Annarita
    Perri, Patrizia
    Pagnan, Gabriella
    Ponzoni, Mirco
    FRONTIERS IN ONCOLOGY, 2013, 3
  • [47] Lactoferrin, a multi-functional glycoprotein: Active therapeutic, drug nanocarrier & targeting ligand
    Elzoghby, Ahmed O.
    Abdelmoneem, Mona A.
    Hassanin, Islam A.
    Abd Elwakil, Mahmoud M.
    Elnaggar, Manar A.
    Mokhtar, Sarah
    Fang, Jia-You
    Elkhodairy, Kadria A.
    BIOMATERIALS, 2020, 263
  • [48] A 5-fluorouracil-loaded pH-responsive dendrimer nanocarrier for tumor targeting
    Jin, Yiguang
    Ren, Xia
    Wang, Wei
    Ke, Lijing
    Ning, Erjuan
    Du, Lina
    Bradshaw, Jeremy
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2011, 420 (02) : 378 - 384
  • [49] Nanocarrier systems targeting the tumor microenvironment: From liposome functionalization to the choice of antibody attachment
    Graefen, B.
    Lysak, G.
    Zimmer, N.
    Trzeciak, E. R.
    Tuettenberg, A.
    EXPERIMENTAL DERMATOLOGY, 2022, 31 (02) : E102 - E102
  • [50] Photoswitchable Ultrafast Transactivator of Transcription (TAT) Targeting Effect for Nanocarrier-Based On-Demand Drug Delivery
    Wang, Junxia
    Shen, Song
    Li, Dongdong
    Zhan, Changyou
    Yuan, Youyong
    Yang, Xianzhu
    ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (03)