Department of Urology, University Hospitals Cleveland Medical Center, Case Western Reserve University, Cleveland, Ohio, USA.
Department of Mechanical and Aerospace Engineering, Case Western Reserve University, Cleveland, Ohio, USA.
Tissue Eng Part A. 2022 Aug;28(15-16):672-684. doi: 10.1089/ten.TEA.2021.0203. Epub 2022 Jul 26.
Developing strategies to regulate the immune response poses significant challenges with respect to the clinical translation of tissue-engineered scaffolds. Prominent advancements have been made relating to macrophage-based therapies and biomaterials. Macrophages exhibit the potential to influence healing trajectory, and predominance of particular subtypes during early onset of healing influences repair outcomes. This study evaluated short- and long-term healing response and postoperative mechanical properties of genipin-cross-linked, electrochemically aligned collagen biotextiles with comparative administration of M0, M1, and M2 subtypes. Irrespective of macrophage subtype seeded, all the groups demonstrated existence of M2 macrophages at both time points as typified by arginase and Ym-1 expressions, and distinct absence of M1 macrophages, as indicated by lack of inducible nitric oxide synthase (iNOS) and interleukin-1β expression in all the groups for both time points. M2 macrophage-seeded collagen biotextiles revealed promising host tissue responses, such as reduced fibrous capsule thickness and minimal granulation tissue formation. Furthermore, the M2-seeded group displayed more abundant interstitial collagen deposition following degradation of the collagen threads. M2 macrophage supplementation improved structural and mechanical properties at the tissue and cellular level as indicated by increased modulus and stiffness. This study demonstrates improved biomechanical and histological outcomes following incorporation of M2 macrophages into genipin-cross-linked collagen biotextiles for tissue repair and offers future strategies focused on connective tissue regeneration. Impact statement Macrophages exhibit significant plasticity with complex phenotypes ranging from proinflammatory (M1) to proregenerative (M2). They release cytokines and chemokines governing immunological stability, inflammation resolution, and tissue healing and regeneration. However, utilization of macrophages as therapeutic tools for tissue engineering remains limited. In this study, genipin-cross-linked collagen biotextiles were employed to deliver M0, M1, and M2 macrophages and evaluate tissue responses and postsurgical mechanical properties . M2-seeded collagen biotextiles showed reduced fibrous capsule and favorable healing response. These outcomes shed new light on designing tissue-engineered constructs that offer a novel cell-based therapeutic approach for applications requiring structural augmentation.
针对组织工程支架的临床转化,开发调控免疫反应的策略面临着重大挑战。在基于巨噬细胞的治疗和生物材料方面取得了显著进展。巨噬细胞具有影响愈合轨迹的潜力,在愈合早期,特定亚型的优势会影响修复结果。本研究评估了基因交联、电化学定向胶原生物纺织品的短期和长期愈合反应以及术后机械性能,并比较了 M0、M1 和 M2 亚型的比较给药。无论接种的巨噬细胞亚型如何,所有组在两个时间点都表现出 M2 巨噬细胞的存在,其特征是精氨酸酶和 Ym-1 的表达,并且所有组在两个时间点都明显缺乏 M1 巨噬细胞,因为诱导型一氧化氮合酶(iNOS)和白细胞介素-1β的表达缺失。M2 巨噬细胞接种的胶原生物纺织品显示出有希望的宿主组织反应,例如减少纤维囊厚度和最小的肉芽组织形成。此外,M2 接种组在胶原纤维降解后显示出更丰富的间质胶原沉积。M2 巨噬细胞补充改善了组织和细胞水平的结构和机械性能,表现为模量和刚度增加。本研究表明,将 M2 巨噬细胞纳入基因交联胶原生物纺织品中进行组织修复可获得更好的生物力学和组织学结果,并为关注结缔组织再生的未来策略提供了依据。