材料科学
明胶
自愈水凝胶
细胞包封
碳纳米管
组织工程
纳米技术
化学工程
微流控
制作
高分子化学
生物医学工程
化学
有机化学
病理
工程类
替代医学
医学
作者
Maryam Sharifisistani,Mehdi Khanmohammadi,Elham Badali,Pouya Ghasemi,Sajad Hassanzadeh,Nafiseh Bahiraie,Nasrin Lotfibakhshaiesh,Jafar Ai
摘要
Abstract Carbon nanotube (CNT) and gelatin (Gela) molecules are effective substrates in promoting engineered cardiac tissue functions. This study developed a microfluidic‐based encapsulation process for biomimetic hydrogel microcapsule fabrication. The hydrogel microcapsule was produced through a coaxial double orifice microfluidic technique and a water‐in‐oil emulsion system in two sequential processes. The phenol (Ph) substituted Gela (Gela‐Ph) and CNT (CNT‐Ph), respectively as cell‐adhesive and electrically conductive substrates were incorporated in hyaluronic acid (HA)‐based hydrogel through laccase‐mediated crosslinking. The Cardiomyocyte‐enclosing microcapsule fabricated and cellular survival, function, and possible difference in the biological activity of encapsulated cells within micro vehicles were investigated. The coaxial microfluidic method and Lac‐mediated crosslinking reaction resulted in spherical vehicle production in 183 μm diameter at 500 capsules/min speed. The encapsulation process did not affect cellular viability and harvested cells from microcapsule proliferated well likewise subcultured cells in tissue culture plate. The biophysical properties of the designed hydrogel, including mechanical strength, swelling, biodegradability and electroconductivity upregulated significantly for hydrogels decorated covalently with Gela‐Ph and CNT‐Ph. The tendency of the microcapsule for the spheroid formation of cardiomyocytes inside the proposed microcapsule occurred 3 days after encapsulation. Interestingly, immobilized Gela‐Ph and CNT‐Ph promote cellular growth and specific cardiac markers. Overall, the microfluidic‐based encapsulation technology and synthesized biomimetic substrates with electroconductive properties demonstrate desirable cellular adhesion, proliferation, and cardiac functions for engineering cardiac tissue.
科研通智能强力驱动
Strongly Powered by AbleSci AI