Materdicine Lab, School of Life Sciences, Shanghai University, Shanghai 200444, China.
School of Biomedical Engineering and Informatics, Nanjing Medical University, Nanjing 211166, China.
ACS Nano. 2024 Aug 27;18(34):23412-23427. doi: 10.1021/acsnano.4c06774. Epub 2024 Aug 15.
Integrated diagnostic and therapeutic dressings are desirable to relieve diabetic patients who often suffer from diabetic foot ulcers (DFUs) and peripheral vascular diseases (PVDs). However, it is highly difficult to monitor the pulse waves with fidelity under wet environments and connect the waveforms to diseases through a small strain sensor. Additionally, immobilizing MXenzyme to regulate spatially heterogeneous levels of reactive oxygen species (ROS) and applying active intervention to enhance ulcer healing on a single structure remain a complex task. To address these issues, we designed a multiscale wearable dressing comprising a knitted all-textile sensing array for quantitatively investigating the pulse wave toward PVD diagnosis. MXenzyme was loaded onto the dressing to provide multiple enzyme mimics for anti-inflammatory activities and deliver electrical stimulation to promote wound growth. In mice, we demonstrate that high and uniform expression of the vascular endothelial growth factor (VEGF) is observed only in the group undergoing dual mediation with electrical stimulation and MXenzyme. This observation indicates that the engineered wound dressing has the capability to accelerate healing in DFU. In human patient evaluations, the engineered dressing distinguishes vascular compliance and pulse period, enabling the diagnosis of arteriosclerosis and return blockage, two typical PVDs. The designed and engineered multiscale dressing achieves the purpose of integrating diagnostic peripheral vessel health monitoring and ulcer healing therapeutics for satisfying the practical clinical requirements of geriatric patients.
综合诊断和治疗敷料对于缓解经常患有糖尿病足溃疡(DFU)和外周血管疾病(PVD)的糖尿病患者是理想的。然而,在潮湿环境下准确监测脉搏波并通过小应变传感器将波形与疾病联系起来非常困难。此外,将 MXenzyme 固定化以调节空间异质水平的活性氧(ROS)并通过单一结构施加主动干预以增强溃疡愈合仍然是一项复杂的任务。为了解决这些问题,我们设计了一种多尺度可穿戴敷料,包括一个用于定量研究脉搏波以进行 PVD 诊断的针织全纺织传感阵列。MXenzyme 被加载到敷料上,以提供多种酶模拟物用于抗炎活性,并施加电刺激以促进伤口生长。在小鼠中,我们证明只有在同时接受电刺激和 MXenzyme 双重介导的组中才观察到血管内皮生长因子(VEGF)的高均匀表达。这一观察表明,工程化的伤口敷料具有加速 DFU 愈合的能力。在人类患者评估中,工程化的敷料可区分血管顺应性和脉搏周期,从而能够诊断动脉硬化和回流阻塞这两种典型的 PVD。所设计和工程化的多尺度敷料实现了整合诊断周围血管健康监测和溃疡愈合治疗的目的,满足了老年患者的实际临床需求。