4.7 Article

Substrate Stiffness Combined with Hepatocyte Growth Factor Modulates Endothelial Cell Behavior

期刊

BIOMACROMOLECULES
卷 17, 期 9, 页码 2767-2776

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.biomac.6b00318

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资金

  1. Zhejiang Provincial Natural Science Foundation of China [LR15E030002]
  2. Key Science Technology Innovation Team of Zhejiang Province [2013TD02]
  3. National Natural Science Foundation of China [51333005, 21374095]
  4. National Basic Research Program of China [2011CB606203]
  5. Research Fund for the Doctoral Program of Higher Education of China [20120101130013]
  6. International Science and Technology Cooperation Program of China [2014DFG52320]
  7. State Key Laboratory of Molecular Engineering of Polymers (Fudan University) [K2015-10]
  8. PHC CAI YUANPEI [27947ZL]
  9. European Commission (EC) from the European Research Council [GA259370]

向作者/读者索取更多资源

Endothelial cells (ECs) play a crucial role in regulating various physiological and pathological processes. The behavior of ECs is modulated by physical (e.g., substrate stiffness) and biochemical cues (e.g., growth factors). However, the synergistic influence of these cues on EC behavior has rarely been investigated. In this study, we constructed poly(l-lysine)/hyaluronan (PLL/HA) multilayer films with different stiffness and exposed ECs to these substrates with and without hepatocyte growth factor (HGF)-supplemented culture medium. We demonstrated that EC adhesion, migration, and proliferation were positively correlated with substrate stiffness and that these behaviors were further promoted by HGF. Interestingly, ECs on the lower stiffness substrates showed stronger responses to HGF in terms of migration and proliferation, suggesting that HGF can profoundly influence stiffness-dependent EC behavior correlated with EC growth. After the formation of an EC monolayer, EC behaviors correlated with endothelial function were evaluated by characterizing monolayer integrity, nitric oxide production, and gene expression of endothelial nitric oxide synthase. For the first time, we demonstrated that endothelial function displayed a negative correlation with substrate stiffness. Although HGF improved endothelial function, HGF was not able to change the stiffness-dependent manner of endothelial functions. Taken together, this study provides insights into the synergetic influence of physical and biochemical cues on EC behavior and offers great potential in the development of optimized biomaterials for EC-based regenerative medicine.

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