Bridging the In Vitro to In Vivo gap: Using the Chick Embryo Model to Accelerate Nanoparticle Validation and Qualification for In Vivo studies

被引:18
作者
Butler, Kimberly S. [1 ]
Brinker, C. Jeffrey [2 ]
Leong, Hon Sing [3 ,4 ]
机构
[1] Sandia Natl Labs, Mol & Microbiol, Albuquerque, NM 87123 USA
[2] Univ New Mexico, Comprehens Canc Ctr, Dept Chem & Biol Engn, Albuquerque, NM 87131 USA
[3] Univ Toronto, Fac Med, Dept Med Biophys, Toronto, ON M5G 1L7, Canada
[4] Sunnybrook Med Ctr, Biol Sci Platform, Toronto, ON M4N 3M5, Canada
关键词
chick embryo; nanoparticle development; chorioallantoic membrane; nanoparticle bioavailability; drug development; intravital imaging; structure-function analysis; CHORIOALLANTOIC MEMBRANE CAM; CANCER-CELL INTRAVASATION; IRON-OXIDE NANOPARTICLES; FIBROBLAST-GROWTH-FACTOR; PHOTODYNAMIC THERAPY; DRUG-DELIVERY; GOLD NANOPARTICLES; PHOTOTHROMBIC ACTIVITY; LIPID NANOPARTICLES; TETRAIODOTHYROACETIC ACID;
D O I
10.1021/acsnano.2c03990
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We postulate that nanoparticles (NPs) for use in therapeutic applications have largely not realized their clinical potential due to an overall inability to use in vitro results to predict NP performance in vivo. The avian embryo and associated chorioallantoic membrane (CAM) has emerged as an in vivo preclinical model that bridges the gap between in vitro and in vivo, enabling rapid screening of NP behavior under physiologically relevant conditions and providing a rapid, accessible, economical, and more ethical means of qualifying nanoparticles for in vivo use. The CAM is highly vascularized and mimics the diverging/converging vasculature of the liver, spleen, and lungs that serve as nanoparticle traps. Intravital imaging of fluorescently labeled NPs injected into the CAM vasculature enables immediate assessment and quantification of nano-bio interactions at the individual NP scale in any tissue of interest that is perfused with a microvasculature. In this review, we highlight how utilization of the avian embryo and its CAM as a preclinical model can be used to understand NP stability in blood and tissues, extravasation, biocompatibility, and NP distribution over time, thereby serving to identify a subset of NPs with the requisite stability and performance to introduce into rodent models and enabling the development of structure-property relationships and NP optimization without the sacrifice of large populations of mice or other rodents. We then review how the chicken embryo and CAM model systems have been used to accelerate the development of NP delivery and imaging agents by allowing direct visualization of targeted (active) and nontargeted (passive) NP binding, internalization, and cargo delivery to individual cells (of relevance for the treatment of leukemia and metastatic cancer) and cellular ensembles (e.g., cancer xenografts of interest for treatment or imaging of cancer tumors). We conclude by showcasing emerging techniques for the utilization of the CAM in future nano-bio studies.
引用
收藏
页码:19626 / 19650
页数:25
相关论文
共 228 条
  • [21] Bellairs, 2014, ATLAS CHICK DEV, V1, P1
  • [22] Somatostatin receptor targeted liposomes with Diacerein inhibit IL-6 for breast cancer therapy
    Bharti, Rashmi
    Dey, Goutam
    Banerjee, Indranil
    Dey, Kaushik Kumar
    Parida, Sheetal
    Kumar, B. N. Prashanth
    Das, Chandan Kanta
    Pal, Ipsita
    Mukherjee, Manabendra
    Misra, Mridula
    Pradhan, Anjan K.
    Emdad, Luni
    Das, Swadesh K.
    Fisher, Paul B.
    Mandal, Mahitosh
    [J]. CANCER LETTERS, 2017, 388 : 292 - 302
  • [23] Chick chorioallantoic membrane assay as an in vivo model to study the effect of nanoparticle-based anticancer drugs in ovarian cancer
    Binh Thanh Vu
    Shahin, Sophia Allaf
    Croissant, Jonas
    Fatieiev, Yevhen
    Matsumoto, Kotaro
    Doan, Tan Le-Hoang
    Yik, Tammy
    Simargi, Shirleen
    Conteras, Altagracia
    Ratliff, Laura
    Jimenez, Chiara Mauriello
    Raehm, Laurence
    Khashab, Niveen
    Durand, Jean-Olivier
    Glackin, Carlotta
    Tamanoi, Fuyuhiko
    [J]. SCIENTIFIC REPORTS, 2018, 8
  • [24] Lipid nanoparticles for brain targeting III. Long-term stability and in vivo toxicity
    Blasi, Paolo
    Schoubben, Aurelie
    Traina, Giovanna
    Manfroni, Giuseppe
    Barberini, Lanfranco
    Alberti, Paolo Francesco
    Cirotto, Carlo
    Ricci, Maurizio
    [J]. INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2013, 454 (01) : 316 - 323
  • [25] Brinker, 2022, MSNPS CAM VASCULATUR
  • [26] Comparative evaluation of HET-CAM and ICE methods for objective assessment of ocular irritation caused by selected pesticide products
    Budai, Peter
    Kormos, Eva
    Buda, Istvan
    Somody, Gergo
    Lehel, Jozsef
    [J]. TOXICOLOGY IN VITRO, 2021, 74
  • [27] Evaluation of vascular effect of Photodynamic Therapy in chorioallantoic membrane using different photosensitizers
    Buzza, H. H.
    Silva, L. V.
    Moriyama, L. T.
    Bagnato, V. S.
    Kurachi, C.
    [J]. JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 2014, 138 : 1 - 7
  • [28] Fluorescence analysis of a tumor model in the chorioallantoic membrane used for the evaluation of different photosensitizers for photodynamic therapy
    Buzza, Hilde Harb
    Zangirolami, Amanda C.
    Davis, Arthur
    Gomez-Gardia, Pablo A.
    Kurachi, Cristina
    [J]. PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2017, 19 : 78 - 83
  • [29] Nanoparticle-assisted ultrasound: A special focus on sonodynamic therapy against cancer
    Canavese, Giancarlo
    Ancona, Andrea
    Racca, Luisa
    Canta, Marta
    Dumontel, Bianca
    Barbaresco, Federica
    Limongi, Tania
    Cauda, Valentina
    [J]. CHEMICAL ENGINEERING JOURNAL, 2018, 340 : 155 - 172
  • [30] Estimating mouse and rat use in American laboratories by extrapolation from Animal Welfare Act-regulated species
    Carbone, Larry
    [J]. SCIENTIFIC REPORTS, 2021, 11 (01)