具有分级多孔结构的复合聚丙交酯/聚己内酯泡沫用于预血管化组织工程

Composite Polylactide/Polycaprolactone Foams with Hierarchical Porous Structure for Pre-Vascularized Tissue Engineering.

作者信息

Musílková Jana, Beran Miloš, Sedlář Antonín, Slepička Petr, Bartoš Martin, Kolská Zdeňka, Havlíčková Šárka, Luňáčková Jitka, Svobodová Lucie, Froněk Martin, Molitor Martin, Chlup Hynek, Bačáková Lucie

机构信息

Institute of Physiology of the Czech Academy of Sciences, Videnska 1083, 142 00 Prague, Czech Republic.

Czech Agrifood Research Center, Drnovská 507/73, 161 01 Prague, Czech Republic.

出版信息

Int J Mol Sci. 2025 Mar 25;26(7):2974. doi: 10.3390/ijms26072974.

Abstract

Modern tissue engineering requires not only degradable materials promoting cell growth and differentiation, but also vascularization of the engineered tissue. Porous polylactide/polycaprolactone (PLA/PCL, ratio 3/5) foam scaffolds were prepared by a combined porogen leaching and freeze-drying technique using NaCl (crystal size 250-500 µm) and a water-soluble cellulose derivative (Klucel E; 10-100% / relative to the total PLA/PCL concentration) as porogens. Scanning electron microscopy, micro-CT, and Brunauer-Emmett-Teller analysis showed that all scaffolds contained a trimodal range of pore sizes, i.e., macropores (average diameter 298-539 μm), micropores (100 nm to 10 μm), and nanopores (mostly around 3.0 nm). All scaffolds had an open porosity of about 90%, and the pores were interconnected. The size of the macropores and the nanoporosity were higher in the scaffolds prepared with Klucel. Nanoporosity increased water uptake by the scaffolds, while macroporosity promoted cell ingrowth, which was most evident in scaffolds prepared with 25% Klucel. Human adipose-derived stem cells co-cultured with endothelial cells formed pre-vascular structures in the scaffolds, which was further enhanced in a dynamic cell culture system. The scaffolds are promising for the engineering of pre-vascularized soft tissues (relatively pliable 10% Klucel scaffolds) and hard tissues (mechanically stronger 25% and 50% Klucel scaffolds).

摘要

现代组织工程不仅需要可促进细胞生长和分化的可降解材料,还需要工程组织的血管化。采用致孔剂浸出和冷冻干燥相结合的技术,以氯化钠(晶体尺寸250 - 500微米)和水溶性纤维素衍生物(Klucel E;相对于聚乳酸/聚己内酯总浓度的10 - 100%)作为致孔剂,制备了多孔聚乳酸/聚己内酯(PLA/PCL,比例3/5)泡沫支架。扫描电子显微镜、微型计算机断层扫描和布鲁诺尔-埃米特-泰勒分析表明,所有支架均包含三种孔径范围,即大孔(平均直径298 - 539微米)、微孔(100纳米至10微米)和纳米孔(大多约为3.0纳米)。所有支架的开孔率约为90%,且孔相互连通。用Klucel制备的支架中大孔尺寸和纳米孔隙率更高。纳米孔隙率增加了支架的吸水率,而大孔隙率促进了细胞向内生长,这在含25% Klucel制备的支架中最为明显。与内皮细胞共培养的人脂肪来源干细胞在支架中形成了预血管结构,在动态细胞培养系统中这种结构进一步增强。这些支架有望用于预血管化软组织(相对柔韧的含10% Klucel支架)和硬组织(机械强度更高的含25%和50% Klucel支架)的工程构建。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e2b9/11988939/6a23950d0b24/ijms-26-02974-sch001.jpg

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