微穿刺和颗粒水凝胶支架用于外科生物工程可灌注和稳定模式的微血管

IF 9.2 1区 医学 Q1 PERIPHERAL VASCULAR DISEASE
Jessica C. El-Mallah, Zaman Ataie, Summer N. Horchler, Mary E. Landmesser, Mohammad Hossein Asgardoon, Olivia Waldron, Arian Jaberi, Alexander Kedzierski, Mingjie Sun, Amir Sheikhi, Dino J. Ravnic
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引用次数: 0

摘要

植入式生物材料的血管化是重建外科和组织工程的关键。最终,目标是促进快速灌注的分层微血管系统,随着时间的推移,可以满足潜在的组织需求。我们之前已经证明,使用称为微穿刺(MP)的显微外科技术,结合通过相互连接的水凝胶微粒(微凝胶)制造的多孔颗粒水凝胶支架(GHS),可以产生快速可灌注的模式微血管。然而,这种工程微血管系统是否在更长的时间点保持稳定仍然未知。在这里,我们将MP与GHS结合起来,比较了28天内整体微血管结构和表型以及不断变化的细胞景观。我们在MP + GHS模型中证明了可灌注的微血管稳定性,这种稳定性伴随着内皮细胞和巨噬细胞募集的持续增加。具体而言,MP在7天至28天的时间点之间产生M2巨噬细胞的显著增加,表明微血管正在进行重构,即使存在早期周细胞稳定。通过Ephrin-B2和EphB4定量评估,随着时间的推移,GHS微血管获得相对等效的动脉和静脉形态。最后,28天的血管造影显示,与MP + Bulk(无孔)支架相比,MP + GHS支架具有更多的可灌注微血管袢。因此,我们的外科生物工程微血管系统为可持续和精确控制生物材料血管化提供了独特的机会,并最终推动了重建外科和组织工程领域的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Micropuncture and granular hydrogel scaffolds to surgically bioengineer a perfusable and stably patterned microvasculature

Vascularization of implanted biomaterials is critical to reconstructive surgery and tissue engineering. Ultimately, the goal is to promote a rapidly perfusable hierarchical microvasculature that persists with time and can meet underlying tissue needs. We have previously shown that using a microsurgical technique, termed micropuncture (MP), in combination with porous granular hydrogel scaffolds (GHS) fabricated via interlinking hydrogel microparticles (microgels) results in a rapidly perfusable patterned microvasculature. However, whether this engineered microvasculature remains stable at longer time points remains unknown. Here, we combine MP with GHS and compare overall microvascular architecture and phenotype along with the evolving cellular landscape over a 28 day period. We demonstrate perfusable patterned microvascular stability in our MP + GHS model that occurs alongside a sustained rise in endothelial cell and macrophage recruitment. Specifically, MP yields a significant rise in M2 macrophages between the 7 and 28 day time points, suggesting ongoing microvascular remodeling, even in the presence of early pericyte stabilization. With time, the GHS microvasculature acquires a relatively equivalent arterial and venous morphology, as assessed through Ephrin-B2 and EphB4 quantification. Finally, angiography at 28 days shows that MP + GHS is associated with more perfusable microvascular loops when compared with MP + Bulk (nonporous) scaffolds. Hence, our surgically bioengineered microvasculature offers a unique opportunity to sustainably and precisely control biomaterial vascularization and ultimately advance the fields of reconstructive surgery and tissue engineering.

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来源期刊
Angiogenesis
Angiogenesis PERIPHERAL VASCULAR DISEASE-
CiteScore
21.90
自引率
8.20%
发文量
37
审稿时长
6-12 weeks
期刊介绍: Angiogenesis, a renowned international journal, seeks to publish high-quality original articles and reviews on the cellular and molecular mechanisms governing angiogenesis in both normal and pathological conditions. By serving as a primary platform for swift communication within the field of angiogenesis research, this multidisciplinary journal showcases pioneering experimental studies utilizing molecular techniques, in vitro methods, animal models, and clinical investigations into angiogenic diseases. Furthermore, Angiogenesis sheds light on cutting-edge therapeutic strategies for promoting or inhibiting angiogenesis, while also highlighting fresh markers and techniques for disease diagnosis and prognosis.
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