Journal Article10.3389/fbioe.2023.1308004
A combined electrohydrodynamic atomization method for preparing nanofiber/microparticle hybrid medicines
Liang Sun,Jianfeng Zhou,Yaoning Chen,Deng-Guang Yu,Ping Liu +4 more
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TL;DR: By combining hydrophilic soluble polymers and pH-sensitive polymers in the hybrids, this work can ensure the separate sequential controlled release of CIP and NMT for a potential synergistic and convenient therapy for bacterial prostatitis.
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Abstract: Bacterial prostatitis is a challenging condition to treat with traditional dosage forms. Physicians often prescribe a variety of dosage forms with different administration methods, which fail to provide an efficient and convenient mode of drug delivery. The aim of this work was to develop a new type of hybrid material incorporating both electrosprayed core-shell microparticles and electrospun nanofibers. A traditional Chinese medicine (Ningmitai, NMT) and a Western medicine (ciprofloxacin, CIP) were co-encapsulated within this material and were designed to be released in a separately controlled manner. Utilizing polyvinylpyrrolidone (PVP) as a hydrophilic filament-forming polymer and pH-sensitive Eudragit® S100 (ES100) as the particulate polymeric matrix, a combined electrohydrodynamic atomization (EHDA) method comprising coaxial electrospraying and blending electrospinning, was used to create the hybrids in a single-step and straightforward manner. A series of characterization methods were conducted to analyze both the working process and its final products. Scanning electron microscopy and transmission electron microscopy revealed that the EHDA hybrids comprised of both CIP-PVP nanofibers and NMT-ES100 core-shell microparticles. Multiple methods confirmed the rapid release of CIP and the sustained release of NMT. The antibacterial experiments indicated that the hybrids exhibited a more potent antibacterial effect against Escherichia coli dh5α and Bacillus subtilis Wb800 than either the separate nanofibers or microparticles. The amalgamation of fibrous nanomedicine and particulate micromedicine can expand the horizon of new types of medicines. The integration of electrospinning and coaxial electrospraying provides a straightforward approach to fabrication. By combining hydrophilic soluble polymers and pH-sensitive polymers in the hybrids, we can ensure the separate sequential controlled release of CIP and NMT for a potential synergistic and convenient therapy for bacterial prostatitis.
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Citations
Engineered shapes using electrohydrodynamic atomization for an improved drug delivery.
Dengguang Yu,Wenjian Gong,Jianfeng Zhou,Yanan Liu,Yunajie Zhu,Xuhua Lu +5 more
TL;DR: Electrohydrodynamic atomization techniques, such as electrospinning and electrospraying, are used to engineer micro- and nano-products with tailored shapes for improved drug delivery, including linear nanofibers, particles, and hybrids for controlled release profiles.
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Enhancing wound healing and minimizing scarring: A comprehensive review of nanofiber technology in wound dressings
Farinaz Jonidi Shariatzadeh,Sarah Currie,Sarvesh Logsetty,Rae Spiwak,Song Liu +4 more
TL;DR: Electrospun nanofibrous wound dressings enhance wound healing and minimize scarring by modulating physical, compositional, and chemical cues, but commercial viability is hindered by limited in vivo studies and controlled release challenges in animal models.
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Integrated Janus nanofibers enabled by a co-shell solvent for enhancing icariin delivery efficiency.
Yuhao Sun,Jianfeng Zhou,Zhiyuan Zhang,Dengguang Yu,Sim Wan Annie Bligh +4 more
TL;DR: Researchers developed Janus nanofibers using a tri-channel spinneret and tri-fluid electrospinning, enhancing icariin delivery efficiency by 16.2 times, with complete release within 5 minutes, attributed to rapid dissolution and pre-release of trans-membrane enhancer.
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Enhancing diabetic wound healing: advances in electrospun scaffolds from pathogenesis to therapeutic applications
Xuewen Jiang,Yu-E Zeng,Chaofei Li,Ke Wang,Deng-Guang Yu +4 more
TL;DR: An overview of the healing process in normal wounds and the pathological mechanisms underlying diabetic wounds, including complications such as diabetic foot ulcers is provided and the advantages of electrospinning nanofiber scaffolds in diabetic wound treatment are explored.
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Electrospun medicated gelatin/polycaprolactone Janus fibers for photothermal-chem combined therapy of liver cancer.
Jianfeng Zhou,Yaoning Chen,Yang Liu,Tianyue Huang,Jia Xing,Ruiliang Ge,Dengguang Yu +6 more
TL;DR: Electrospun Janus fibers with CuS and dihydromyricetin were developed for photothermal-chem combined therapy of liver cancer, exhibiting excellent photothermal performance, hydrophilicity, and mechanical strength, with potential for tumor treatment.
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References
Electrospun tri-layer nanodepots for sustained release of acyclovir
TL;DR: In this paper, a trilayer nanodepot with a drug reservoir was built into a core-shell nanofiber and a modified triaxial electrospinning was implemented to prepare the trillayer depots F2 using cellulose acetate and acyclovir as polymer matrix and active ingredient, respectively.
229
Energy-Saving Electrospinning with a Concentric Teflon-Core Rod Spinneret to Create Medicated Nanofibers.
TL;DR: A concentric spinneret with a solid Teflon-core rod was developed to implement an energy-saving electrospinning process and demonstrated that both types of nanofibrous films do not significantly differ in terms of medical applications.
166
Multifunctional Chitosan/Polycaprolactone Nanofiber Scaffolds with Varied Dual-Drug Release for Wound-Healing Applications
TL;DR: CSLD-PCLM nanofibrous scaffolds may ideally meet the various requirements of the wound healing process and are promising candidates for wound dressings in future clinical applications.
121
Confinement of Prussian Blue Analogs Boxes Inside Conducting Polymer Nanotubes Enables Significantly Enhanced Catalytic Performance for Water Treatment
TL;DR: In this article , a template polymerization-guided synthetic strategy is presented to confine hollow Prussian blue analog boxes inside conducting polypyrrole nanotubes (H•CoFe PBA@PPy NTs) as efficient peroxymonosulfate activator toward catalytic oxidation of toxic organic contaminants.
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