Institute for Biomedical Engineering and Institute of Pharmacology and Toxicology, Faculty of Medicine, University of Zurich, Zurich, Switzerland.
Institute for Biomedical Engineering, Department of Information Technology and Electrical Engineering, ETH Zurich, Zurich, Switzerland.
Theranostics. 2022 Jan 1;12(2):558-573. doi: 10.7150/thno.65287. eCollection 2022.
Microcirculation is essential for skin homeostasis and repair. A variety of growth factors have been identified as important regulators of wound healing. However, direct observation and longitudinal monitoring of skin remodeling in an unperturbed environment remains challenging. We report on non-invasive longitudinal imaging of the wound healing process in transgenic mice overexpressing vascular endothelial growth factor A (VEGF-A) in keratinocytes by means of large-scale optoacoustic microscopy (LSOM). This rapid, label-free, high throughput intravital microscopy method averts the use of dorsal skin-fold chambers, allowing for fully non-invasive repeated imaging of intact wounds with capillary resolution over field-of-view spanning several centimeters. We observed VEGF-driven enhancement of dermal vascularization in ears, dorsal skin and healing wounds and quantified the hemoglobin content, fill fraction, vessel diameter and tortuosity. The findings were further corroborated by detailed side-by-side classical histological whole-mount vascular stainings and pan-endothelial CD31 immunofluorescence. The new approach is suitable for supplementing or replacing the cumbersome histological procedures in a broad range of skin regeneration and tissue engineering applications.
微循环对于皮肤的稳态和修复至关重要。已经确定了多种生长因子作为伤口愈合的重要调节剂。然而,在不受干扰的环境中直接观察和纵向监测皮肤重塑仍然具有挑战性。我们通过大规模光声显微镜(LSOM)报告了通过角质细胞过表达血管内皮生长因子 A(VEGF-A)的转基因小鼠的伤口愈合过程的非侵入性纵向成像。这种快速、无标记、高通量的活体显微镜方法避免了使用背部皮肤褶室,可以对完整的伤口进行完全非侵入性的重复成像,具有跨越数厘米的视场的毛细血管分辨率。我们观察到 VEGF 驱动耳部、背部皮肤和愈合伤口的真皮血管生成增强,并定量了血红蛋白含量、填充分数、血管直径和曲折度。这些发现通过详细的并排经典组织学全血管染色和泛内皮 CD31 免疫荧光进一步得到证实。该新方法适用于在广泛的皮肤再生和组织工程应用中补充或替代繁琐的组织学程序。