Biological Design Graduate Program, Arizona State University, Tempe, AZ 85287, USA.
Center for Biomaterials Innovation and Translation (CBIT), The Biodesign Institute, Arizona State University, Tempe, AZ 85287, USA; Chemical Engineering, School for Engineering of Matter, Transport and Energy, Ira A. Fulton Schools of Engineering, Arizona State University, Tempe, AZ 85287, USA.
Biomaterials. 2024 Apr;306:122496. doi: 10.1016/j.biomaterials.2024.122496. Epub 2024 Jan 30.
Slow-healing and chronic wounds represent a major global economic and medical burden, and there is significant unmet need for novel therapies which act to both accelerate wound closure and enhance biomechanical recovery of the skin. Here, we report a new approach in which bioactives that augment early stages of wound healing can kickstart and engender effective wound closure in healthy and diabetic, obese animals, and set the stage for subsequent tissue repair processes. We demonstrate that a nanomaterial dressing made of silk fibroin and gold nanorods (GNR) stimulates a pro-neutrophilic, innate immune, and controlled inflammatory wound transcriptomic response. Further, Silk-GNR, lasered into the wound bed, in combination with exogeneous histamine, accelerates early-stage processes in tissue repair leading to effective wound closure. Silk-GNR and histamine enhanced biomechanical recovery of skin, increased transient neoangiogenesis, myofibroblast activation, epithelial-to-mesenchymal transition (EMT) of keratinocytes and a pro-resolving neutrophilic immune response, which are hitherto unknown activities for these bioactives. Predictive and temporally coordinated delivery of growth factor nanoparticles that modulate later stages of tissue repair further accelerated wound closure in healthy and diabetic, obese animals. Our approach of kickstarting healing by delivering the "right bioactive at the right time" stimulates a multifactorial, pro-reparative response by augmenting endogenous healing and immunoregulatory mechanisms and highlights new targets to promote tissue repair.
慢性难愈合伤口是全球范围内一个主要的经济和医疗负担,人们迫切需要新型疗法,这种疗法既要能够加速伤口闭合,又要增强皮肤的生物机械恢复能力。在这里,我们报告了一种新方法,即用能够促进伤口愈合早期阶段的生物活性物质来启动和促进健康和糖尿病肥胖动物的有效伤口闭合,并为随后的组织修复过程奠定基础。我们证明,由丝素蛋白和金纳米棒(GNR)制成的纳米材料敷料刺激了一种促嗜中性粒细胞、先天免疫和受控炎症的伤口转录组反应。此外,激光将 Silk-GNR 导入伤口床,与外源性组氨酸结合,可加速组织修复的早期阶段,从而实现有效伤口闭合。丝素-金纳米棒和组氨酸增强了皮肤的生物机械恢复能力,增加了短暂的新生血管形成、肌成纤维细胞激活、角质形成细胞的上皮-间充质转化(EMT)和促解决的嗜中性粒细胞免疫反应,这些都是这些生物活性物质以前未知的活性。预测性和时间协调的生长因子纳米颗粒的递送来进一步加速健康和糖尿病肥胖动物的伤口闭合。我们通过“在正确的时间提供正确的生物活性物质”来启动愈合的方法,通过增强内源性愈合和免疫调节机制,刺激了一种多因素的修复反应,并强调了促进组织修复的新靶点。