Nanoparticles and Nanocrystals by Supercritical CO2-Assisted Techniques for Pharmaceutical Applications: A Review

被引:47
作者
Franco, Paola [1 ]
De Marco, Iolanda [1 ]
机构
[1] Univ Salerno, Dept Ind Engn, Via Giovanni Paolo II 132, I-84084 Fisciano, Italy
来源
APPLIED SCIENCES-BASEL | 2021年 / 11卷 / 04期
关键词
nanoparticles; nanocrystals; drug delivery; supercritical carbon dioxide;
D O I
10.3390/app11041476
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Many active ingredients currently prescribed show limited therapeutic efficacy, mainly due to their dissolution rate inadequate to treat the pathology of interest. A large drug particle size creates an additional problem if a specific site of action in the human body has to be reached. For this reason, active ingredient size reduction using micronization/nanonization techniques is a valid approach to improve the efficacy of active compounds. Supercritical carbon-dioxide-assisted technologies enable the production of different morphologies of different sizes, including nanoparticles and nanocrystals, by modulating operating conditions. Supercritical fluid-based processes have numerous advantages over techniques conventionally employed to produce nanosized particles or crystals, such as reduced use of toxic solvents, which are completely removed from the final product, ensuring safety for patients. Active compounds can be processed alone by supercritical techniques, although polymeric carriers are often added as stabilizers, to control the drug release on the basis of the desired therapeutic effect, as well as to improve drug processability with the chosen technology. This updated review on the application of supercritical micronization/nanonization techniques in the pharmaceutical field aims at highlighting the most effective current results, operating conditions, advantages, and limitations, providing future perspectives.
引用
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页码:1 / 27
页数:27
相关论文
共 157 条
[1]   Supercritical AntiSolvent micronization of nalmefene HCl on laboratory and pilot scale [J].
Adami, R. ;
Reverchon, E. ;
Jarvenpaa, E. ;
Huopalahti, R. .
POWDER TECHNOLOGY, 2008, 182 (01) :105-112
[3]   Generation and precipitation of paclitaxel nanoparticles in basil seed mucilage via combination of supercritical gas antisolvent and phase inversion techniques [J].
Akbari, I. ;
Ghoreishi, S. M. ;
Habibi, N. .
JOURNAL OF SUPERCRITICAL FLUIDS, 2014, 94 :182-188
[4]   Nanoparticles in the clinic: An update [J].
Anselmo, Aaron C. ;
Mitragotri, Samir .
BIOENGINEERING & TRANSLATIONAL MEDICINE, 2019, 4 (03)
[5]   Formation of ultrafine deferasirox particles via rapid expansion of supercritical solution (RESS process) using Taguchi approach [J].
Asghari, Iman ;
Esmaeilzadeh, Feridun .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2012, 433 (1-2) :149-156
[6]   Particle size design of digitoxin in supercritical fluids [J].
Atila, Ceren ;
Yildiz, Nuray ;
Calimli, Ayla .
JOURNAL OF SUPERCRITICAL FLUIDS, 2010, 51 (03) :404-411
[7]  
Bhatt P, 2020, APPL POLYM DRUG DELI, P1
[8]   Supercritical fluid assisted atomization introduced by hydrodynamic cavitation mixer (SAA-HCM) for micronization of levofloxacin hydrochloride [J].
Cai, Mei-Qiang ;
Guan, Yi-Xin ;
Yao, Shan-Jing ;
Zhu, Zi-Qiang .
JOURNAL OF SUPERCRITICAL FLUIDS, 2008, 43 (03) :524-534
[9]   Instantaneous coprecipitation of polymer/drug microparticles using the supercritical assisted injection in a liquid antisolvent [J].
Campardelli, R. ;
Reverchon, E. .
JOURNAL OF SUPERCRITICAL FLUIDS, 2017, 120 :151-160
[10]   Supercritical assisted injection in a liquid antisolvent for PLGA and PLA microparticle production [J].
Campardelli, R. ;
Oleandro, E. ;
Reverchon, E. .
POWDER TECHNOLOGY, 2016, 287 :12-19