理论(学习稳定性)
纳米载体
半径
生物系统
材料科学
热力学
控制理论(社会学)
计算机科学
工艺工程
纳米技术
工程类
物理
药物输送
人工智能
计算机安全
控制(管理)
机器学习
生物
作者
Fardin Rahimi,Pari Hajizadeh,Ghassem Amoabediny,Bahman Ebrahimi,Mansoor Khaledi,Fatemeh Sameni,Hamed Afkhami,Shahriar Bakhti,Elham Rafiee Taqanaki,Mahdi Zafari
标识
DOI:10.1080/08982104.2023.2203250
摘要
The main challenge of using nanoliposome systems is controlling their size and stability. In order to overcome this challenge, according to the research conducted at the Research Centre for New Technologies of Biological Engineering, University of Tehran, a model for predicting the size and stability of nanoliposome systems based on thermodynamic relations has been presented. In this model, by using the presented equations and without performing many experiments in the laboratory environment, the effect of temperature, ionic power and different pH can be considered simultaneously whereas examining the components of size, stability and any feature were considered before. Synthesis and application of liposomal nanocarriers in different operating conditions can be investigated and predicted, and due to the change in temperature and pH, the smallest size of th system can be obtained. In this study, we were able to model the synthesis and storage conditions of liposomal nanocarriers at different temperatures and acidic, neutral and alkaline pHs, based on the calculation of mathematical equations. This model also indicates that with increasing temperature, the radius increases but with increasing pH, the radius first increases and then decreases. Therefore, this model can be used to predict size and stability in different operating conditions. In fact, with this modelling method, there is no need to study through laboratory methods and analysis to determine the size, stability and surface loads, and in terms of Accuracy, time and cost savings are affordable.
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