Choi Min-Young, Kim Jong-Tae, Lee Won-Jin, Lee Yunki, Park Kyung Min, Yang Young-Il, Park Ki Dong
Paik Institute for Clinical Research, Inje University College of Medicine, Busan 614-735, Republic of Korea.
Department of Molecular Science and Technology, Ajou University, San 5, Woncheon, Yeongtong, Suwon 443-749, Republic of Korea.
Acta Biomater. 2017 Mar 1;50:234-248. doi: 10.1016/j.actbio.2017.01.002. Epub 2017 Jan 4.
Endogenous cardiac stem cells (CSCs) are known to play a certain role in the myocardial homeostasis of the adult heart. The extracellular matrix (ECM) surrounding CSCs provides mechanical signals to regulate a variety of cell behaviors, yet the impact in the adult heart of these mechanical properties of ECM on CSC renewal and fate decisions is mostly unknown. To elucidate CSC mechanoresponses at the individual cell and myocardial level, we used the sol-to-gel transitional gelatin-poly(ethylene glycol)-tyramine (GPT) hydrogel with a tunable mechanical property to construct a three-dimensional (3D) matrix for culturing native myocardium and CSCs. The elastic modulus of the GPT hydrogel was controlled by adjusting cross-linking density using hydrogen peroxide. The GPT hydrogel showed an ability to transduce integrin-mediated signals into the myocardium and to permit myocardial homeostatic processes in vitro, including CSC migration and proliferation into the hydrogel from the myocardium. Decreasing the elastic modulus of the hydrogel resulted in upregulation of phosphorylated integrin-mediated signaling molecules in CSCs, which were associated with significant increases in cell spreading, migration, and proliferation of CSCs in a modulus-dependent manner. However, increasing the elastic modulus of hydrogel induced the arrest of cell growth but led to upregulation of cardiomyocyte-associated mRNAs in CSCs. This work demonstrates that tunable 3D-engineered microenvironments created by GPT hydrogel are able to control CSC behavior and to direct cardiomyogenic fate. Our system may also be appropriate for studying the mechanoresponse of CSCs in a 3D context as well as for developing therapeutic strategies for in situ myocardial regeneration.
The extracellular matrix (ECM) provides a physical framework of myocardial niches in which endogenous cardiac stem cells (CSCs) reside, renew, differentiate, and replace cardiac cells. Interactions between ECM and CSCs might be critical for the maintenance of myocardial homeostasis in the adult heart. Yet most studies done so far have used irrelevant cell types and have been performed at the individual cell level, none able to reflect the in vivo situation. By the use of a chemically defined hydrogel to create a tunable 3D microenvironment, we succeeded in controlling CSC behavior at the myocardial and individual cell level and directing the cardiomyogenic fate. Our work may provide insight into the design of biomaterials for in situ myocardial regeneration as well as for tissue engineering.
已知内源性心脏干细胞(CSCs)在成年心脏的心肌稳态中发挥一定作用。CSCs周围的细胞外基质(ECM)提供机械信号以调节多种细胞行为,然而ECM的这些机械特性对成年心脏中CSC更新和命运决定的影响大多未知。为了阐明个体细胞和心肌水平上的CSC机械反应,我们使用具有可调机械性能的溶胶 - 凝胶过渡型明胶 - 聚(乙二醇) - 酪胺(GPT)水凝胶构建三维(3D)基质,用于培养天然心肌和CSCs。通过使用过氧化氢调节交联密度来控制GPT水凝胶的弹性模量。GPT水凝胶显示出将整合素介导的信号转导到心肌中并允许体外心肌稳态过程的能力,包括CSCs从心肌迁移和增殖到水凝胶中。降低水凝胶的弹性模量导致CSCs中磷酸化整合素介导的信号分子上调,这与CSCs的细胞铺展、迁移和增殖以模量依赖性方式显著增加相关。然而,增加水凝胶的弹性模量会诱导细胞生长停滞,但会导致CSCs中心肌细胞相关mRNA上调。这项工作表明,由GPT水凝胶创建的可调3D工程微环境能够控制CSC行为并指导心肌生成命运。我们的系统也可能适用于研究3D环境中CSCs的机械反应以及开发原位心肌再生的治疗策略。
细胞外基质(ECM)提供了心肌生态位的物理框架,内源性心脏干细胞(CSCs)在其中驻留、更新、分化并替代心脏细胞。ECM与CSCs之间的相互作用可能对成年心脏中心肌稳态的维持至关重要。然而,迄今为止进行的大多数研究都使用了不相关的细胞类型,并且是在个体细胞水平上进行的,没有一个能够反映体内情况。通过使用化学定义的水凝胶创建可调3D微环境,我们成功地在心肌和个体细胞水平上控制了CSC行为并指导了心肌生成命运。我们的工作可能为原位心肌再生以及组织工程的生物材料设计提供见解。