Use of electrospinning and dynamic air focusing to create three-dimensional cell culture scaffolds in microfluidic devices
文献情報
Chengpeng Chen, Benjamin T. Mehl, Scott A. Sell, R. Scott Martin
Organs-on-a-chip has emerged as a powerful tool for pharmacological and physiological studies. A key part in the construction of such a model is the ability to pattern or culture cells in a biomimetic fashion. Most of the reported cells-on-a-chip models integrate cells on a flat surface, which does not accurately represent the extracellular matrix that they experience in vivo. Electrospinning, a technique used to generate sub-micron diameter polymer fibers, has been used as an in vitro cell culture substrate and for tissue engineering applications. Electrospinning of fibers directly into a fully sealed fluidic channel using a conventional setup has not been possible due to issues of confining the fibers into a discrete network. In this work, a dynamic focusing method was developed, with this approach enabling direct deposition of electrospun fibers into a fully sealed fluidic channel, to act as a matrix for cell culture and subsequent studies under continuous flowing conditions. Scanning electron microscopy of electrospun polycaprolactone fibers shows that this method enables the formation of fibrous layers on the inner wall of a 3D-printed fluidic device (mean fiber size = 1.6 ± 0.6 μm and average pore size = 113 ± 19 μm2). Cells were able to be cultured in this 3D scaffold without the addition of adhesion proteins. Media was pumped through the channel at high flow rates (up to 400 μL min−1) during a dynamic cell culture process and both the fibers and the cells were found to be strongly adherent. A PDMS fluidic device was also prepared (from a 3D printed mold) and coated with polycaprolactone fibers. The PDMS device enables optical detection and confocal imaging of cultured cells on the fibers. Finally, macrophages were cultured in the devices to study how the fibrous scaffold can affect cell behavior. It was found that under lipopolysaccharide stimulation, macrophages cultured on PCL fibers inside of a channel secreted significantly more cytokines than those cultured on a thin layer of PCL in a channel or directly on the inner channel wall. Overall, this study represents a new approach for in vitro cell studies, where electrospinning can be used to easily and quickly create 3D scaffolds that can improve the culture conditions in microfluidic devices.
おすすめジャーナル

Journal of Catalysis

Organic Preparations and Procedures International

Journal of Medicinal Chemistry

Science

Journal of Heterocyclic Chemistry

Journal of Organometallic Chemistry

Journal of Physics and Chemistry of Solids

Proceedings of the National Academy of Sciences of the United States of America

Fibre Chemistry

Helvetica Chimica Acta
関連文献
Fructose/dioxygen biofuel cell based on direct electron transfer-type bioelectrocatalysis
Yuji Kamitaka, Seiya Tsujimura, Norihiko Setoyama, Tsutomu Kajino, Kenji Kano
DOI: 10.1039/B617650J
Dumbbells and onions in ternary nucleation
Ricky B. Nellas, Bin Chen, J. Ilja Siepmann
DOI: 10.1039/B705385A
Electronic relaxation dynamics in DNA and RNA bases studied by time-resolved photoelectron spectroscopy
Susanne Ullrich, Thomas Schultz, Marek Z. Zgierski, Albert Stolow
DOI: 10.1039/B316324E
The interaction of n-nonyl-β-d-glucopyranoside and sodium dodecyl sulfate with DMPC and DMPG monolayers studied by infrared reflection absorption spectroscopy
Annette Meister, Andreas Kerth, Alfred Blume
DOI: 10.1039/B410761F
A molecular dynamics study of structural relaxation in tetrahedrally coordinated nanocrystals
Benjamin J. Morgan, Paul A. Madden
DOI: 10.1039/B701267E
Raman spectroscopic study of mixed valence neodymium and cerium chloride solutions in eutectic LiCl–KCl melts
Veronica M. Rodriguez-Betancourtt, Detlef Nattland
DOI: 10.1039/B414757J
Rate coefficients for the reaction of OH with (E)-2-pentenal, (E)-2-hexenal, and (E)-2-heptenal
A. R. Ravishankara, James B. Burkholder
DOI: 10.1039/B700235A
Quantitative prediction of the absorption maxima of azobenzene dyes from bond lengths and critical points in the electron density
Bård Buttingsrud, Bjørn K. Alsberg, Per-Olof Åstrand
DOI: 10.1039/B617470A
Anodic electron transfer mechanisms in microbial fuel cells and their energy efficiency
DOI: 10.1039/B703627M
こちらもおすすめ
2-氟-4-イオドベンzo酸エチルエステルを取り扱う際の実験室安全事項は何ですか?
2-氟-4-イオドベンzo酸エチルエステルは有機溶媒を用いた反応であり、ドラフトチャンバーでの操作が必要です。漏洩時にはSDS参照の安全措置を講じ、PPE(防護...
血根碱の主な用途は何ですか?
血根碱は主に医薬分野で利用され、抗炎症や抗がん剤としての潜在的な効果が研究されています。また、化学研究や薬物開発において、新しい薬剤設計の参考となる化合物として...
Methyl 3-methoxythiophene-2-carboxylateの主な用途は何ですか?
Methyl 3-メトキシスチフェン-2-カルボン酸メチルエステルは、薬品合成、染料製造、以及合成中間体としての用途が広がっています。
丹磺酰-L-亮氨酸はどのように保存すればよいですか?
丹磺酰-L-亮氨酸は乾燥した場所で、直射日光から保護し、低温(室温以下)で保存してください。密閉容器に入れて保管することをおすすめします。
5-(苄氧基)ピラミジン-4-アミンの代替品はありますか?
5-(苄氧基)ピラミジン-4-アミンの代替品として、6-メトキシピラミジンや5-フェニルピラミジンなどが挙げられます。これらの化合物は、5-(苄氧基)ピラミジン...
8-ヒドロキシノルデコペントアセートの物理化学的性質は何ですか?
8-ヒドロキシノルデコペントアセートはCAS番号84807-87-4の化合物で、分子量は750.02 uです。これは油溶性で、水に溶けにくい特徴があります。反応...
tert-ブチル(エス)-1-ヒドロキシペンタ-4-エン-2-イルカルバamateの主な用途は何ですか?
tert-ブチル(エス)-1-ヒドロキシペンタ-4-エン-2-イルカルバamateは主に医薬品の合成材料や分析化学の試薬として使用されます。
ブコール-L-2-フローヨルブリンについて適切な法規ガイドラインは何ですか?
ブコール-L-2-フローヨルブリン(CAS番号: 1196107-73-9)は、GHS(グローバルハザードアサessmentシステム)に基づく危害分類と表示が求...
6-ブロモ-N-環丙基-2-ピリジニニメタンの市場動向や研究トレンドはどうですか
6-ブロモ-N-環丙基-2-ピリジニニメタンは、薬理学研究や合成化学に使用される化合物であり、特に抗ウイルス薬や抗がん薬の開発に注目されています。市場では、薬物...
RS-AMPÀはどのように保存すればよいですか?
RS-AMPÀは、遮光容器に保存し、室温(15〜25℃)で保管することが推奨されます。高湿や熱は物質を劣化させるため、湿度は50%以下に保つことが重要です。また...
掲載誌
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.
![(3aR,7R,7aR)-2,2-Diethyl-3a,6,7,7a-tetrahydro-7-[(methylsulfonyl)oxy]-1,3-benzodioxole-5-carboxylic Acid Ethyl Ester structure (3aR,7R,7aR)-2,2-Diethyl-3a,6,7,7a-tetrahydro-7-[(methylsulfonyl)oxy]-1,3-benzodioxole-5-carboxylic Acid Ethyl Ester structure](https://static.chemtradehub.com/structs/204/204254-90-0-7172.webp)
![4-[(2-Oxo-1,2,3,4-tetrahydroquinolin-7-yl)oxy]butanoic acid structure 4-[(2-Oxo-1,2,3,4-tetrahydroquinolin-7-yl)oxy]butanoic acid structure](https://static.chemtradehub.com/structs/588/58899-27-7-1f86.webp)


