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通过免疫调节生物材料对M2极化巨噬细胞分泌的工程外泌体进行3D生物打印可促进伤口愈合和血管生成。

3D bioprinting of engineered exosomes secreted from M2-polarized macrophages through immunomodulatory biomaterial promotes wound healing and angiogenesis.

作者信息

Dutta Sayan Deb, An Jeong Man, Hexiu Jin, Randhawa Aayushi, Ganguly Keya, Patil Tejal V, Thambi Thavasyappan, Kim Jangho, Lee Yong-Kyu, Lim Ki-Taek

机构信息

Department of Biosystems Engineering, Kangwon National University, 24341, Chuncheon, Republic of Korea.

Institute of Forest Science, Kangwon National University, 24341, Chuncheon, Republic of Korea.

出版信息

Bioact Mater. 2024 Nov 27;45:345-362. doi: 10.1016/j.bioactmat.2024.11.026. eCollection 2025 Mar.

Abstract

Biomaterial composition and surface charge play a critical role in macrophage polarization, providing a molecular cue for immunomodulation and tissue regeneration. In this study, we developed bifunctional hydrogel inks for accelerating M2 macrophage polarization and exosome (Exo) cultivation for wound healing applications. For this, we first fabricated polyamine-modified three-dimensional (3D) printable hydrogels consisting of alginate/gelatin/polydopamine nanospheres (AG/NSPs) to boost M2-exosome (M2-Exo) secretion. The cultivated M2-Exo were finally encapsulated into a biocompatible collagen/decellularized extracellular matrix (COL@d-ECM) bioink for studying angiogenesis and wound healing study. Our findings show that 3D-printed AGP hydrogel promoted M2 macrophage polarization by Janus kinase/signal transducer of activation (JAK/STAT), peroxisome proliferator-activated receptor (PPAR) signaling pathways and facilitated the M2-Exo secretion. Moreover, the COL@d-ECM/M2-Exo was found to be biocompatible with skin cells. Transcriptomic (RNA-Seq) and real-time PCR (qRT-PCR) study revealed that co-culture of fibroblast/keratinocyte/stem cells/endothelial cells in a 3D bioprinted COL@d-ECM/M2-Exo hydrogel upregulated the skin-associated signature biomarkers through various regulatory pathways during epidermis remodeling and downregulated the mitogen-activated protein kinase (MAPK) signaling pathway after 7 days. In a subcutaneous wound model, the 3D bioprinted COL@d-ECM/M2-Exo hydrogel displayed robust wound remodeling and hair follicle (HF) induction while reducing canonical pro-inflammatory activation after 14 days, presenting a viable therapeutic strategy for skin-related disorders.

摘要

生物材料组成和表面电荷在巨噬细胞极化中起关键作用,为免疫调节和组织再生提供分子线索。在本研究中,我们开发了双功能水凝胶墨水,用于加速M2巨噬细胞极化和用于伤口愈合应用的外泌体(Exo)培养。为此,我们首先制备了由藻酸盐/明胶/聚多巴胺纳米球(AG/NSPs)组成的多胺修饰三维(3D)可打印水凝胶,以促进M2外泌体(M2-Exo)分泌。最终将培养的M2-Exo封装到生物相容性胶原/脱细胞细胞外基质(COL@d-ECM)生物墨水中,用于研究血管生成和伤口愈合。我们的研究结果表明,3D打印的AGP水凝胶通过Janus激酶/信号转导激活子(JAK/STAT)、过氧化物酶体增殖物激活受体(PPAR)信号通路促进M2巨噬细胞极化,并促进M2-Exo分泌。此外,发现COL@d-ECM/M2-Exo与皮肤细胞具有生物相容性。转录组学(RNA-Seq)和实时定量聚合酶链反应(qRT-PCR)研究表明,在3D生物打印的COL@d-ECM/M2-Exo水凝胶中,成纤维细胞/角质形成细胞/干细胞/内皮细胞的共培养在表皮重塑过程中通过各种调节途径上调了皮肤相关标志性生物标志物,并在7天后下调了丝裂原活化蛋白激酶(MAPK)信号通路。在皮下伤口模型中,3D生物打印的COL@d-ECM/M2-Exo水凝胶在14天后显示出强大的伤口重塑和毛囊(HF)诱导,同时减少了典型的促炎激活,为皮肤相关疾病提供了一种可行的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82b2/11636135/c1f4bae952f6/ga1.jpg

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