Ruggeri Marco, Nomicisio Cristian, Taviot-Guého Christine, Vigani Barbara, Boselli Cinzia, Grisoli Pietro, Icaro Cornaglia Antonia, Bianchi Eleonora, Viseras César, Rossi Silvia, Sandri Giuseppina
Department of Drug Sciences, University of Pavia, Viale Taramelli 12, 27100, Pavia, Italy.
Institut de Chimie de Clermont-Ferrand, Université Clermont-Auvergne, UMR CNRS 6296, 24 av Blaise Pascal, 63171, Aubière, France.
Mater Today Bio. 2024 Oct 9;29:101292. doi: 10.1016/j.mtbio.2024.101292. eCollection 2024 Dec.
Chronic wounds are non-healing lesions characterized by a high degree of inflammation, posing significant challenges in clinical management due to the increased risk of severe infection. This study focuses on developing a powder for cutaneous application to enhance the healing and prevent infections in chronic wounds. The smart nanocomposites-based biomimetic microparticles here developed combine the properties of chitosan and of clays and represent a significant innovation in the field of biomaterials for skin regeneration since they possess enhanced antimicrobial properties, are multi-functional scaffolds and promote cell proliferation, support tissue reconstruction by mimicking the natural extracellular matrix, and provide hemostatic properties to control bleeding during wound closure. The microparticles were made of chitosan and doped with clay minerals, specifically montmorillonite or layered double hydroxides, containing copper ions. The synergistic combination of biomimetic polymers and clays aims to regulate cellular responses, angiogenesis, and extracellular matrix (ECM) deposition, leveraging the bioactive properties of both components to promote wound healing. Montmorillonite and layered double hydroxides were enriched with copper ions through intercalation or coprecipitation methods, respectively. The water-insoluble microparticles were prepared using a chitosan derivative, chitosan carbamate, synthesized to obtain chitosan-based microparticles via spray-drying without crosslinkers. Physico-chemical characterization confirmed the successful doping of Cu-clay interaction products in the microparticles. In addition to enhanced cell proliferation and hemostatic properties, the presence of Cu-clays boosted the microparticles' antibacterial properties. Encouraging preclinical and results suggest that these smart nanocomposite biomimetic microparticles doped with Cu-enriched clay minerals could be promising candidates for simultaneously enhancing healing and controlling infections in chronic wounds.
慢性伤口是一种具有高度炎症的不愈合损伤,由于严重感染风险增加,在临床管理中面临重大挑战。本研究专注于开发一种用于皮肤应用的粉末,以促进慢性伤口的愈合并预防感染。这里开发的基于智能纳米复合材料的仿生微粒结合了壳聚糖和粘土的特性,代表了皮肤再生生物材料领域的一项重大创新,因为它们具有增强的抗菌性能,是多功能支架,能促进细胞增殖,通过模拟天然细胞外基质来支持组织重建,并在伤口闭合过程中提供止血性能以控制出血。这些微粒由壳聚糖制成,并掺杂有粘土矿物,特别是蒙脱石或层状双氢氧化物,其中含有铜离子。仿生聚合物和粘土的协同组合旨在调节细胞反应、血管生成和细胞外基质(ECM)沉积,利用两种成分的生物活性特性来促进伤口愈合。蒙脱石和层状双氢氧化物分别通过插层或共沉淀方法富集了铜离子。使用壳聚糖衍生物氨基甲酸壳聚糖制备了水不溶性微粒,通过喷雾干燥合成得到基于壳聚糖的微粒,无需交联剂。物理化学表征证实了微粒中成功掺杂了铜 - 粘土相互作用产物。除了增强细胞增殖和止血性能外,铜 - 粘土的存在还增强了微粒的抗菌性能。令人鼓舞的临床前结果表明,这些掺杂了富含铜的粘土矿物的智能纳米复合仿生微粒有望同时促进慢性伤口的愈合和控制感染。