Targeted Delivery of Erythropoietin Hybridized with Magnetic Nanocarriers for the Treatment of Central Nervous System Injury: A Literature Review

被引:6
作者
Hwang, Chang Ho [1 ]
机构
[1] Chungnam Natl Univ, Sejong Hosp, Coll Med, Dept Phys & Rehabil Med, 20 Bodeum 7-Ro, Sejong 30099, South Korea
来源
INTERNATIONAL JOURNAL OF NANOMEDICINE | 2020年 / 15卷
基金
新加坡国家研究基金会;
关键词
erythropoietin; nanoparticles; polymers; magnetics; central nervous system; regeneration; IRON-OXIDE NANOPARTICLES; BLOOD-BRAIN-BARRIER; DRUG-DELIVERY; SPINAL-CORD; IN-VITRO; SUSTAINED-RELEASE; ABSORPTION ENHANCERS; LOADED NANOPARTICLES; INTRANASAL DELIVERY; PROTEIN CORONA;
D O I
10.2147/IJN.S287456
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Although the incidence of central nervous system injuries has continued to rise, no promising treatments have been elucidated. Erythropoietin plays an important role in neuroprotection and neuroregeneration as well as in erythropoiesis. Moreover, the current worldwide use of erythropoietin in the treatment of hematologic diseases allows for its ready application in patients with central nervous system injuries. However, erythropoietin has a very short therapeutic time window (within 6-8 hours) after injury, and it has both hematopoietic and nonhematopoietic receptors, which exhibit heterogenic and phylogenetic differences. These differences lead to limited amounts of erythropoietin binding to in situ erythropoietin receptors. The lack of high-quality evidence for clinical use and the promising results of in vitro/in vivo models necessitate fast targeted delivery agents such as nanocarriers. Among current nanocarriers, noncovalent polymer-entrapping or polymer-adsorbing erythropoietin obtained by nanospray drying may be the most promising. With the incorporation of magnetic nanocarriers into an erythropoietin polymer, spatiotemporal external magnetic navigation is another area of great interest for targeted delivery within the therapeutic time window. Intravenous administration is the most readily used route. Manufactured erythropoietin nanocarriers should be clearly characterized using bioengineering analyses of the in vivo size distribution and the quality of entrapment or adsorption. Further preclinical trials are required to increase the therapeutic bioavailability (in vivo biological identity alteration, passage through the lung capillaries or the blood brain barrier, and timely degradation followed by removal of the nanocarriers from the body) and decrease the adverse effects (hematological complications, neurotoxicity, and cytotoxicity), especially of the nanocarrier.
引用
收藏
页码:9683 / 9701
页数:19
相关论文
共 170 条
  • [11] Stability and Structure of Protein-Lipoamino Acid Colloidal Particles: Toward Nasal Delivery of Pharmaceutically Active Proteins
    Bijani, Christian
    Arnarez, Clement
    Brasselet, Sabrina
    Degert, Corinne
    Broussaud, Olivier
    Elezgaray, Juan
    Dufourc, Erick J.
    [J]. LANGMUIR, 2012, 28 (13) : 5783 - 5794
  • [12] The origin of the piezoelectric effect in pyroelectric crystals
    Bogdanov, SV
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2002, 49 (11) : 1469 - 1473
  • [13] Bordbar A K, 2014, Biotechnol Res Int, V2014, P705068, DOI 10.1155/2014/705068
  • [14] Brain and cancer: The protective role of erythropoietin
    Buemi, M
    Caccamo, C
    Nostro, L
    Cavallaro, E
    Floccari, F
    Grasso, G
    [J]. MEDICINAL RESEARCH REVIEWS, 2005, 25 (02) : 245 - 259
  • [15] TGF-β1 and TGF-β2 expression after traumatic human spinal cord injury
    Buss, A.
    Pech, K.
    Kakulas, B. A.
    Martin, D.
    Schoenen, J.
    Noth, J.
    Brook, G. A.
    [J]. SPINAL CORD, 2008, 46 (05) : 364 - 371
  • [16] High performance collection of cerebrospinal fluid in rats: Evaluation of erythropoietin penetration after osmotic opening of the blood-brain barrier
    Ceaglio, Natalia
    Orozco, Gustavo
    Etcheverrigaray, Marina
    Mattio, Monica
    Kratje, Ricardo
    Perotti, Norma
    Oggero, Marcos
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 2013, 219 (01) : 70 - 75
  • [17] Understanding the nanoparticle-protein corona using methods to quantify exchange rates and affinities of proteins for nanoparticles
    Cedervall, Tommy
    Lynch, Iseult
    Lindman, Stina
    Berggard, Tord
    Thulin, Eva
    Nilsson, Hanna
    Dawson, Kenneth A.
    Linse, Sara
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (07) : 2050 - 2055
  • [18] Zebrafish: A Complete Animal Model for In Vivo Drug Discovery and Development
    Chakraborty, Chiranjib
    Hsu, Chi Hsin
    Wen, Zhi Hong
    Lin, Chang Shing
    Agoramoorthy, Govindasamy
    [J]. CURRENT DRUG METABOLISM, 2009, 10 (02) : 116 - 124
  • [19] ROCK inhibition with Y27632 activates astrocytes and increases their expression of neurite growth-inhibitory chondroitin sulfate proteoglycans
    Chan, Carmen C. M.
    Wong, Angel K.
    Liu, Jie
    Steeves, John D.
    Tetzlaff, Wolfram
    [J]. GLIA, 2007, 55 (04) : 369 - 384
  • [20] Magnetically guided targeted delivery of erythropoietin using magnetic nanoparticles Proof of concept
    Chanh Trung Nguyen
    Kim, Chung Reen
    Thi Huong Le
    Koo, Kyo-in
    Hwang, Chang Ho
    [J]. MEDICINE, 2020, 99 (19)