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Biofilms of chitosan-gold nanorods as a novel composite for the laser welding of biological tissue

机译:壳聚糖金纳米棒的生物膜作为一种新型的生物组织激光焊接复合材料

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Gold nanorods (GNRs) exhibit intense localized plasmon resonances at optical frequencies in the near infrared (NIR), which is the window where the penetration of light into the body is maximal. Upon excitation with a NIR laser, a strong photothermal effect is produced, which can be exploited to develop minimally invasive therapies. Here we prove the use of chitosan-GNRs films as a novel NIR sensitive nanocomposite for the photothermal conversion of NIR laser light during surgical interventions of tissue welding. Chitosan is an attractive biomaterial due to its biodegradability, biocompatibility, hemostatic, antimicrobial and wound healing-promoting activity. Colloidal GNRs were embedded in chitosan based, highly stabilized, flexible and easy-to-handle films, which were stored in water until the time of surgery. The chitosan-GNRs films were first positioned on freshly explanted rabbit tendon samples. Then, by administration of single pulses ranging from 80 to 140 ms duration and 0.5 to 1.5 W power delivered by a 300-μm optic fiber coupled with a 810 nm diode laser, spots of local thermally-induced adhesion characterized by a tensile strength of ~ 10 kPa were obtained. The present results are encouraging toward the development of a novel minimally-invasive technology based on the application of bioderived nanoplasmonic materials to biomedical optics.
机译:金纳米棒(GNR)在近红外(NIR)的光频率下表现出强烈的局部等离振子共振,这是光进入人体最大的窗口。在用NIR激光激发后,会产生很强的光热效应,可将其开发为微创疗法。在这里,我们证明了壳聚糖-GNRs薄膜作为一种新型的NIR敏感纳米复合材料,用于在组织焊接的外科手术过程中对NIR激光进行光热转化。壳聚糖由于其生物可降解性,生物相容性,止血,抗菌和促进伤口愈合的活性而成为有吸引力的生物材料。胶体GNR嵌入基于壳聚糖的,高度稳定,柔性和易于处理的薄膜中,薄膜在手术前一直存储在水中。首先将壳聚糖-GNRs膜放置在刚移植的兔肌腱样品上。然后,通过施加300-μm光纤和810nm二极管激光器耦合的80-140 ms持续时间和0.5-1.5 W功率的单脉冲,局部热诱导粘附斑的拉伸强度为〜获得10kPa。目前的结果鼓舞了基于生物来源的纳米等离子体材料在生物医学光学中的应用的新型微创技术的发展。

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