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In Situ Biological Transmutation of Catalytic Lactic Acid Waste into Calcium Lactate in a Readily Processable Three-Dimensional Fibrillar Structure for Bone Tissue Engineering

机译:催化乳酸废料的原位生物嬗变为骨组织工程易加工三维纤维结构中的钙乳酸钙

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摘要

A bioinspired three-dimensional (3D) fibrous structure possesses biomimicry, valuable functionality, and performance to scaffolding in tissue engineering. In particular, an electrospun fibrous mesh has been studied as a scaffold material in various tissue regeneration applications. We produced a low-density 3D polycaprolactone/lactic acid (LA) fibrous mesh (3D-PCLS) via the novel lactic-assisted 3D electrospinning technique exploiting the catalytic properties of LA as we reported previously. In the study, we demonstrated a strategy of recycling the LA component to synthesize the osteoinductive biomolecules in situ, calcium lactate (CaL), thereby forming a 3D bioactive PCL/CaL fibrous scaffold (3D-SCaL) for bone tissue engineering. The fiber morphology of 3D-PCLS and its packing degree could have been tailored by modifying the spinning solution and the collector design. 3D-SCaL demonstrated successful conversion of CaL from LA and exhibited the significantly enhanced biomineralization capacity, cell infiltration and proliferation rate, and osteoblastic differentiation in vitro with two different cell lines, MC3T3-e1 and bone marrow stem cells. In conclusion, 3D-SCaL proves to be a highly practical and accessible strategy using a variety of polymers to produce 3D fibers as a potential candidate for future regenerative medicine and tissue engineering applications.
机译:生物悬浮的三维(3D)纤维结构具有生物化,有价值的功能和性能与组织工程中的脚手架。特别地,已经在各种组织再生应用中研究了电纺纤维网作为支架材料。我们通过新颖的乳酸辅助3D静电纺丝技术生产了低密度3D多己内酯/乳酸(3D-PCLS),其在先前报道的情况下利用LA的催化性能。在该研究中,我们证明了回收La组分以合成原位,乳酸钙(CAL)的骨诱导生物分子的策略,从而形成用于骨组织工程的3D生物活性PCL / COL纤维支架(3D-SCAL)。通过改变纺纱溶液和收集器设计,可以根据3D-PCLS的纤维形态及其包装度来定制。 3D-SCAC展示了来自LA的CAL的成功转化,并表现出显着增强的生物醛化容量,细胞浸润和增殖率,以及两种不同细胞系,MC3T3-E1和骨髓干细胞体外的骨细胞分化。总之,3D-SAS证明是使用各种聚合物来生产3D纤维作为未来再生医学和组织工程应用的潜在候选者的高度实用和可接近的策略。

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