1.Establishment of a quantitative method for GC analysis of polyoxyethylene (35) castor oil in microemulsion extracts.
Yan-Jing WANG ; Yi CHENG ; Ze-Min OU ; Yao ZHANG ; Lin YAN ; Yan TONG ; Jin-Yu WANG ; De-Wen LIU
China Journal of Chinese Materia Medica 2023;48(22):6075-6081
With the continuous exploration of microemulsions as solvents for traditional Chinese medicine extraction, polyoxyethy-lene(35) castor oil(CrEL), a commonly used surfactant, is being utilized by researchers. However, the problem of detecting residues of this surfactant in microemulsion extracts has greatly hampered the further development of microemulsion solvents. Based on the chemical structures of the components in CrEL and the content determination method of castor oil in the 2020 edition of the Chinese Pharmacopoeia(Vol. Ⅳ), this study employed gas chromatography(GC) and single-factor experiments to optimize the preparation method of methyl ricinoleate from CrEL. The conversion coefficient between the two was validated, and the optimal sample preparation method was used to process microemulsion extracts of Zexie Decoction from three batches. The content of methyl ricinoleate generated was determined, and the content of CrEL in the microemulsion extracts of Zexie Decoction was calculated using the above conversion coefficient. The results showed that the optimal preparation method for CrEL was determined. Specifically, 10 mL of 1 mol·L~(-1) KOH-methanol solution was heated at 60 ℃ for 15 min in a water bath. Subsequently, 10 mL of boron trifluoride etherate-methanol(1∶3) solution was heated at 60 ℃ for 15 min in a water bath, followed by extraction with n-hexane twice. CrEL could stably produce 20.84% methyl ricinoleate. According to this conversion coefficient, the average mass concentration of CrEL in the three batches of Zexie Decoction microemulsion extracts was 11.94 mg·mL~(-1), which was not significantly different from the CrEL mass concentration of 11.57 mg·mL~(-1) during microemulsion formulation, indicating that the established content determination method of this study was highly accurate, sensitive, and repeatable. It can be used for subsequent research on microemulsion extracts of Zexie Decoction and provide a reference for quality control of other drug formulations containing CrEL.
Polyethylene Glycols/chemistry*
;
Castor Oil
;
Methanol
;
Surface-Active Agents/chemistry*
;
Solvents
;
Water/chemistry*
;
Emulsions/chemistry*
2.Research Advances in Medical Materials and Products for Soft Tissue Repairs.
Jiaqi LI ; Rui WANG ; Qianqian HAN ; Xue SUN
Chinese Journal of Medical Instrumentation 2023;47(4):415-423
Soft tissue is an indispensable tissue in human body. It plays an important role in protecting the body from external physical, chemical or biological factors. Mild soft tissue injuries can self-heal, while severe soft tissue injuries may require related treatment. Natural polymers (such as chitosan, hyaluronic acid, and collagen) and synthetic polymers (such as polyethylene glycol and polylactic acid) exhibit good biocompatibility, biodegradability and low toxicity. It can be used for soft tissue repairs for antibacterial, hemostatic and wound healing purposes. Their related properties can be enhanced through modification or preparation of composite materials. Commonly used soft tissue repairs include wound dressings, biological patches, medical tissue adhesives, and tissue engineering scaffolds. This study introduces the properties, mechanisms of action and applications of various soft tissue repair medical materials, including chitosan, hyaluronic acid, collagen, polyethylene glycol and polylactic acid, and provides an outlook on the application prospects of soft tissue repair medical materials and products.
Humans
;
Biocompatible Materials/chemistry*
;
Chitosan/chemistry*
;
Hyaluronic Acid
;
Tissue Scaffolds/chemistry*
;
Collagen/chemistry*
;
Polymers/chemistry*
;
Polyethylene Glycols
;
Soft Tissue Injuries
3.Biocompatible chitosan/polyethylene glycol/multi-walled carbon nanotube composite scaffolds for neural tissue engineering.
Shengbo SANG ; Rong CHENG ; Yanyan CAO ; Yayun YAN ; Zhizhong SHEN ; Yajing ZHAO ; Yanqing HAN
Journal of Zhejiang University. Science. B 2022;23(1):58-73
Carbon nanotube (CNT) composite materials are very attractive for use in neural tissue engineering and biosensor coatings. CNT scaffolds are excellent mimics of extracellular matrix due to their hydrophilicity, viscosity, and biocompatibility. CNTs can also impart conductivity to other insulating materials, improve mechanical stability, guide neuronal cell behavior, and trigger axon regeneration. The performance of chitosan (CS)/polyethylene glycol (PEG) composite scaffolds could be optimized by introducing multi-walled CNTs (MWCNTs). CS/PEG/CNT composite scaffolds with CNT content of 1%, 3%, and 5% (1%=0.01 g/mL) were prepared by freeze-drying. Their physical and chemical properties and biocompatibility were evaluated. Scanning electron microscopy (SEM) showed that the composite scaffolds had a highly connected porous structure. Transmission electron microscope (TEM) and Raman spectroscopy proved that the CNTs were well dispersed in the CS/PEG matrix and combined with the CS/PEG nanofiber bundles. MWCNTs enhanced the elastic modulus of the scaffold. The porosity of the scaffolds ranged from 83% to 96%. They reached a stable water swelling state within 24 h, and swelling decreased with increasing MWCNT concentration. The electrical conductivity and cell adhesion rate of the scaffolds increased with increasing MWCNT content. Immunofluorescence showed that rat pheochromocytoma (PC12) cells grown in the scaffolds had characteristics similar to nerve cells. We measured changes in the expression of nerve cell markers by quantitative real-time polymerase chain reaction (qRT-PCR), and found that PC12 cells cultured in the scaffolds expressed growth-associated protein 43 (GAP43), nerve growth factor receptor (NGFR), and class III β-tubulin (TUBB3) proteins. Preliminary research showed that the prepared CS/PEG/CNT scaffold has good biocompatibility and can be further applied to neural tissue engineering research.
Animals
;
Axons
;
Biocompatible Materials/chemistry*
;
Chitosan/chemistry*
;
Nanotubes, Carbon/chemistry*
;
Nerve Regeneration
;
Polyethylene Glycols
;
Porosity
;
Rats
;
Tissue Engineering/methods*
;
Tissue Scaffolds/chemistry*
4.Modification of polyetheretherketone (PEEK) physical features to improve osteointegration.
Dan YU ; Xiaoyue LEI ; Huiyong ZHU
Journal of Zhejiang University. Science. B 2022;23(3):189-203
Polyetheretherketone (PEEK) has been widely applied in orthopedics because of its excellent mechanical properties, radiolucency, and biocompatibility. However, the bioinertness and poor osteointegration of PEEK have greatly limited its further application. Growing evidence proves that physical factors of implants, including their architecture, surface morphology, stiffness, and mechanical stimulation, matter as much as the composition of their surface chemistry. This review focuses on the multiple strategies for the physical modification of PEEK implants through adjusting their architecture, surface morphology, and stiffness. Many research findings show that transforming the architecture and incorporating reinforcing fillers into PEEK can affect both its mechanical strength and cellular responses. Modified PEEK surfaces at the macro scale and micro/nano scale have positive effects on cell-substrate interactions. More investigations are necessary to reach consensus on the optimal design of PEEK implants and to explore the efficiency of various functional implant surfaces. Soft-tissue integration has been ignored, though evidence shows that physical modifications also improve the adhesion of soft tissue. In the future, ideal PEEK implants should have a desirable topological structure with better surface hydrophilicity and optimum surface chemistry.
Benzophenones
;
Ketones/chemistry*
;
Polyethylene Glycols/chemistry*
;
Polymers/chemistry*
;
Surface Properties
5.Ginkgo biloba Ketone Ester Tablets with different release rates prepared by fused deposition modeling 3D printing technology.
Yong-Yuan LI ; Chen CHEN ; Hai-Xia WANG ; Bei-Bei XIANG ; Zheng LI
China Journal of Chinese Materia Medica 2022;47(17):4643-4649
The present study prepared a new type of Ginkgo biloba ketone ester(GBE50) preparation from polyethylene glycol and croscarmellose sodium with good biocompatibility and a certain viscosity by fused deposition modeling(FDM)-type 3D printing technique. Firstly, a cylindrical 3D printing model with a diameter of 9.00 mm and a height of 4.50 mm was established. Subsequently, the 3D-GBE50 preparations with three paths(concentric, zigzag, and grid), different layer heights, and different filling gaps were designed and prepared after the optimization of the proportions of excipients. The morphology, size, chemical properties, and dissolution activity of the 3D-GBE50 preparations were fully characterized and investigated. The results showed that 3D-GBE50 preparations had smooth appearance, clear texture, standard friability, good thermal stability, and stable chemical properties. Moreover, the printing path, layer height, and filling gap were directly related to the release rate of 3D-GBE50 preparations. The dissolution of 3D-GBE50 tablets with zigzag printing path was the fastest, while the dissolution rates of 3D-GBE50 tablets with concentric circle and grid-shaped printing paths were slower than that of commercially available G. biloba Ketone Ester Tablets. In addition, the dissolution of 3D-GBE50 tablets was faster with higher layer height and wider filling gap. As revealed by the results, th FDM-type 3D printing technique can flexibly regulate the drug release activity via controlling the printing parameters, providing effective ideas and methods for the pre-paration of personalized pharmaceutical preparations.
Carboxymethylcellulose Sodium
;
Esters
;
Excipients/chemistry*
;
Ginkgo biloba
;
Ketones
;
Polyethylene Glycols/chemistry*
;
Printing, Three-Dimensional
;
Tablets/chemistry*
;
Technology, Pharmaceutical/methods*
6.Research progress on the fluorescence resonance energy transfer-based polymer micelles as drug carriers.
Linrui JIANG ; Ni ZENG ; Qingshan MIAO ; Changqiang WU ; Shaoyun SHAN ; Hongying SU
Journal of Biomedical Engineering 2022;39(5):1022-1032
Polymer micelles formed by self-assembly of amphiphilic polymers are widely used in drug delivery, gene delivery and biosensors, due to their special hydrophobic core/hydrophilic shell structure and nanoscale. However, the structural stability of polymer micelles can be affected strongly by environmental factors, such as temperature, pH, shear force in the blood and interaction with non-target cells, leading to degradations and drug leakage as drug carriers. Therefore, researches on the structural integrity and in vivo distribution of micelle-based carriers are very important for evaluating their therapeutic effect and clinical feasibility. At present, fluorescence resonance energy transfer (FRET) technology has been widely used in real-time monitoring of aggregation, dissociation and distribution of polymer micelles ( in vitro and in vivo). In this review, the polymer micelles, characteristics of FRET technology, structure and properties of the FRET-polymer micelles are briefly introduced. Then, methods and mechanism for combinations of several commonly used fluorescent probes into polymer micelles structures, and progresses on the stability and distribution studies of FRET-polymer micelles ( in vitro and in vivo) as drug carriers are reviewed, and current challenges of FRET technology and future directions are discussed.
Micelles
;
Drug Carriers/chemistry*
;
Polymers/chemistry*
;
Fluorescence Resonance Energy Transfer
;
Polyethylene Glycols/chemistry*
7.Research progress of polyetheretherketone and its composites in the field of dental implant.
Jing Jing SU ; Yan Jun LIN ; Xiao Jie XING ; Jiang CHEN
Chinese Journal of Stomatology 2022;57(10):1084-1090
Polyetheretherketone (PEEK) is a polymer material composed of aromatic rings connected by ether and ketone groups. It has advantages of excellent biocompatibility, stable chemical properties, and appropriate elasticity modulus. Since PEEK are increasingly used in dentistry in recent years, the properties, modification methods, and research advances of them in oral implantology were discussed in this review.
Dental Implants
;
Polymers
;
Ketones/chemistry*
;
Polyethylene Glycols/chemistry*
;
Ethers
8.Enhanced water solubility, antioxidant activity, and oral absorption of hesperetin by D-α-tocopheryl polyethylene glycol 1000 succinate and phosphatidylcholine.
Su-Fang GU ; Li-Ying WANG ; Ying-Jie TIAN ; Zhu-Xian ZHOU ; Jian-Bin TANG ; Xiang-Rui LIU ; Hai-Ping JIANG ; You-Qing SHEN
Journal of Zhejiang University. Science. B 2019;20(3):273-281
Hesperetin, an abundant bioactive component of citrus fruits, is poorly water-soluble, resulting in low oral bioavailability. We developed new formulations to improve the water solubility, antioxidant activity, and oral absorption of hesperetin. Two nano-based formulations were developed, namely hesperetin-TPGS (D-α-tocopheryl polyethylene glycol 1000 succinate) micelles and hesperetin-phosphatidylcholine (PC) complexes. These two formulations were prepared by a simple technique called solvent dispersion, using US Food and Drug Administration (FDA)-approved excipients for drugs. Differential scanning calorimetry (DSC) and dynamic light scattering (DLS) were used to characterize the formulations' physical properties. Cytotoxicity analysis, cellular antioxidant activity assay, and a pharmacokinetic study were performed to evaluate the biological properties of these two formulations. The final weight ratios of both hesperetin to TPGS and hesperetin to PC were 1:12 based on their water solubility, which increased to 21.5- and 20.7-fold, respectively. The hesperetin-TPGS micelles had a small particle size of 26.19 nm, whereas the hesperetin-PC complexes exhibited a larger particle size of 219.15 nm. In addition, the cellular antioxidant activity assay indicated that both hesperetin-TPGS micelles and hesperetin-PC complexes increased the antioxidant activity of hesperetin to 4.2- and 3.9-fold, respectively. Importantly, the in vivo oral absorption study on rats indicated that the micelles and complexes significantly increased the peak plasma concentration (Cmax) from 2.64 μg/mL to 20.67 and 33.09 μg/mL and also increased the area under the concentration-time curve of hesperetin after oral administration to 16.2- and 18.0-fold, respectively. The micelles and complexes increased the solubility and remarkably improved the in vitro antioxidant activity and in vivo oral absorption of hesperetin, indicating these formulations' potential applications in drugs and healthcare products.
Administration, Oral
;
Animals
;
Antioxidants/chemistry*
;
Biological Availability
;
Calorimetry, Differential Scanning
;
Dogs
;
Dose-Response Relationship, Drug
;
Drug Carriers
;
Female
;
Hep G2 Cells
;
Hesperidin/chemistry*
;
Humans
;
Light
;
Madin Darby Canine Kidney Cells
;
Micelles
;
Phosphatidylcholines/chemistry*
;
Polyethylene Glycols/chemistry*
;
Rats
;
Rats, Sprague-Dawley
;
Scattering, Radiation
;
Solubility
;
Solvents
;
Vitamin E/chemistry*
;
Water/chemistry*
;
alpha-Tocopherol/chemistry*
9.Optimization and characterization of deoxypodophyllotoxin loaded mPEG-PDLLA micelles by central composite design with response surface methodology.
Ying-Lan YU ; Ya-Nan LI ; Yong ZHANG ; Ru-Ning SUN ; Jia-Sheng TU ; Yan SHEN
Chinese Journal of Natural Medicines (English Ed.) 2018;16(6):471-480
The therapeutic application of deoxypodophyllotoxin (DPT) is limited due to its poor water solubility and stability. In the present study, the micelles assembled by the amphiphilic block copolymers (mPEG-PDLLA) were constructed to improve the solubility and safety of DPT for their in vitro and in vivo application. The central composite design was utilized to develop the optimal formulation composed of 1221.41 mg mPEG-PDLLA, the weight ratio of 1 : 4 (mPEG-PDLLA : DPT), 30 mL hydration volume and the hydration temperature at 40 °C. The results showed that the micelles exhibited uniformly spherical shape with the diameter of 20 nm. The drug-loading and entrapment efficiency of deoxypodophyllotoxin-polymeric micelles (DPT-PM) were about (20 ± 2.84)% and (98 ± 0.79)%, respectively, indicating that the mathematical models predicted well for the results. Compared to the free DPT, the cytotoxicity showed that blank micelles possessed great safety for Hela cells. In addition, the DPT loaded micelle formulation achieved stronger cytotoxicity at the concentration of 1 × 10 mol·L, which showed significant difference from free DPT (P < 0.05). In conclusion, the micelles were highly promising nano-carriers for the anti-tumor therapy with DPT.
Antineoplastic Agents
;
chemistry
;
toxicity
;
Cell Survival
;
drug effects
;
Drug Carriers
;
chemistry
;
Drug Delivery Systems
;
methods
;
Drug Design
;
HeLa Cells
;
Humans
;
Micelles
;
Particle Size
;
Podophyllotoxin
;
analogs & derivatives
;
chemistry
;
toxicity
;
Polyesters
;
chemistry
;
Polyethylene Glycols
;
chemistry
;
Solubility
;
Surface Properties
10.Site-specific PEGylation of recombinant lysostaphin.
Hairong LU ; Yitao ZHANGI ; Qingshan HUANG
Chinese Journal of Biotechnology 2016;32(1):127-134
Lysostaphin (Lysn) is an antibacterial metalloendopeptidase that cleaves the pentaglycin bridges in the cell wall of Staphylococci. Although many studies have demonstrated its high activity in vitro, the medical application of Lysn has been hampered by its short half-life in vivo. In order to enhance its stability in vivo without significantly suppressing the enzymatic activity, we designed and tested eight single cysteine substitutions in Lysn for covalent attachment of polyethylene glycol chains (PEGylation). The purified mutants, fully reduced by Dithiothreitol (DTT), were treated with mPEG-MAL(20 kDa). The PEG modification efficiency was above 70% as determined by reverse-phase high-pressure liquid chromatography (HPLC) analysis. The PEG-Lysn proteins were further purified by cation exchange chromatography (MacroCap SP), reaching at least 95% purity. The activities of the PEG-Lysn proteins were determined by the turbidity and minimum inhibitory concentration (MIC) assays. We found that the PEGylated V240C and T244C mutants retained about 50% of the original antibacterial activity of Lysn. Overall, this study will help develop highly stable and active PEG-Lysn to treat systemic S. aureus infections.
Amino Acid Substitution
;
Lysostaphin
;
chemistry
;
Polyethylene Glycols
;
chemistry
;
Protein Engineering
;
Recombinant Proteins
;
chemistry
;
Staphylococcus aureus

Result Analysis
Print
Save
E-mail