A pH-Triggered, Self-Assembled, and Bioprintable Hybrid Hydrogel Scaffold for Mesenchymal Stem Cell Based Bone Tissue Engineering.
Chen ZhaoNader Taheri QazviniMonirosadat SadatiZongyue ZengShifeng HuangAna Losada De La LastraLinghuan ZhangYixiao FengWei LiuBo HuangBo ZhangZhengyu DaiYi ShenXi WangWenping LuoBo LiuYan LeiZhenyu YeLing ZhaoDaigui CaoLijuan YangXian ChenAravind AthivirahamMichael J LeeJennifer Moriatis WolfRussell R ReidMatthew TirrellWei HuangJuan J de PabloTong-Chuan HePublished in: ACS applied materials & interfaces (2019)
Effective bone tissue engineering can restore bone and skeletal functions that are impaired by traumas and/or certain medical conditions. Bone is a complex tissue and functions through orchestrated interactions between cells, biomechanical forces, and biofactors. To identify ideal scaffold materials for effective mesenchymal stem cell (MSC)-based bone tissue regeneration, here we develop and characterize a composite nanoparticle hydrogel by combining carboxymethyl chitosan (CMCh) and amorphous calcium phosphate (ACP) (designated as CMCh-ACP hydrogel). We demonstrate that the CMCh-ACP hydrogel is readily prepared by incorporating glucono δ-lactone (GDL) into an aqueous dispersion or rehydrating the acidic freeze-dried nanoparticles in a pH-triggered controlled-assembly fashion. The CMCh-ACP hydrogel exhibits excellent biocompatibility and effectively supports MSC proliferation and cell adhesion. Moreover, while augmenting BMP9-induced osteogenic differentiation, the CMCh-ACP hydrogel itself is osteoinductive and induces the expression of osteoblastic regulators and bone markers in MSCs in vitro. The CMCh-ACP scaffold markedly enhances the efficiency and maturity of BMP9-induced bone formation in vivo, while suppressing bone resorption occurred in long-term ectopic osteogenesis. Thus, these results suggest that the pH-responsive self-assembled CMCh-ACP injectable and bioprintable hydrogel may be further exploited as a novel scaffold for osteoprogenitor-cell-based bone tissue regeneration.
Keyphrases
- tissue engineering
- bone mineral density
- mesenchymal stem cells
- bone regeneration
- bone loss
- drug delivery
- soft tissue
- stem cells
- postmenopausal women
- bone marrow
- poor prognosis
- healthcare
- signaling pathway
- umbilical cord
- induced apoptosis
- cell therapy
- cell proliferation
- cell death
- endoplasmic reticulum stress
- binding protein