Study of the pH-sensitive mechanism of tumor-targeting liposomes
Yang Fan1, Cong Chen1, Yiheng Huang1
1School of Pharmaceutical Science, Shandong University, 44 Wenhuaxi Road, Jinan 250012, PR China.
Abstract:
Currently, the phosphatidylethanolamine-based, pH-sensitive, liposome drug-delivery system has been widely developed for efficient, targeted cancer therapy. However, the mechanism of pH sensitivity was unclear; it is a main obstacle in controlling the preparation of pH-sensitive liposomes (PSLs).Therefore, our research is aimed at clarifying the pH-response mechanism of the various molecules that compose liposomes. We chose the small pH-sensitive molecules oleic acid (OA), linoleic acid (LA) and cholesteryl hemisuccinate (CHEMS) and the fundamental lipids cholesterol and phosphatidylethanolamine (PE) as test molecules. The PSLs were prepared using the thin-film hydration method and characterized in detail at various pH values (pH 5.0, 6.0 and 7.4), including particle size, ζ-potential, drug encapsulation efficiency and drug loading. The surface structure was observed by transmission electron microscopy (TEM), and the electrical conductivity of the liposome dispersion was also tested. The calorimetric analysis was conducted by Nano-differential scanning calorimetry (Nano-DSC). The in vitro drug release profile showed that PSLs exhibit good pH sensitivity. At neutral pH, the particle size was approximately 150nm, and it dramatically increased at pH 5.0. The ζ-potential increased as the pH decreased. The Nano-DSC results showed that cholesterol and CHEMS can both increase the stability and phase transfer temperature of PSLs. Conductivity increased to a maximum at pH 5.0 and was rather low at pH 7.4. In conclusion, results show that the three kinds of liposomes have pH responsive release characteristics in acidic pH. The OA-PSLs have a pH sensitive point of 5. Since CHEMS has a cholesterol-like structure, it can stabilizes the phospholipid bilayer under neutral conditions as shown in the Nano-DSC data, and because it has a special steroidal rigid structure, it exhibits better pH response characteristics under acidic conditions.
Insights
This study clarifies pH-sensitive liposome mechanisms for targeted cancer therapy. Results show pH-sensitive liposomes (PSLs) exhibit pH-responsive drug release, crucial for controlled cancer treatment.
Area of Science:
- Biomedical Engineering
- Materials Science
- Drug Delivery Systems
Background:
- Phosphatidylethanolamine-based pH-sensitive liposomes (PSLs) are promising for targeted cancer therapy.
- The precise pH-response mechanism of PSLs remains unclear, hindering controlled preparation.
- Understanding molecular contributions to pH sensitivity is vital for optimizing PSL drug delivery.
Purpose of the Study:
- To elucidate the pH-response mechanisms of key molecules within liposomes.
- To investigate the impact of oleic acid (OA), linoleic acid (LA), and cholesteryl hemisuccinate (CHEMS) on PSL properties.
- To characterize PSL behavior across a range of pH values relevant to physiological and tumor microenvironments.
Main Methods:
- PSLs were formulated using the thin-film hydration method with cholesterol, phosphatidylethanolamine (PE), and tested molecules (OA, LA, CHEMS).
- Characterization included particle size, zeta potential, drug encapsulation, drug loading, transmission electron microscopy (TEM), electrical conductivity, and Nano-differential scanning calorimetry (Nano-DSC).
- In vitro drug release studies were conducted at pH 5.0, 6.0, and 7.4.
Main Results:
- PSLs demonstrated significant pH sensitivity, with particle size increasing and zeta potential rising as pH decreased to 5.0.
- Nano-DSC revealed that cholesterol and CHEMS enhance PSL stability and phase transition temperature.
- Electrical conductivity peaked at pH 5.0, indicating altered membrane permeability in acidic conditions.
Conclusions:
- The study successfully characterized the pH-responsive release of three types of liposomes in acidic conditions.
- Oleic acid-based PSLs showed a pH-sensitive point around pH 5.0.
- Cholesteryl hemisuccinate (CHEMS) demonstrated superior pH-response characteristics due to its stabilizing effect and rigid structure, making it a promising component for acidic-environment-triggered drug delivery.
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