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Guiding bone cell network formation in 3D via photosensitized two-photon ablation.
Gehre, Christian; Qiu, Wanwan; Klaus Jäger, Patrick; Wang, Xiaopu; Marques, Francisco Correia; Nelson, Bradley J; Müller, Ralph; Qin, Xiao-Hua.
Afiliação
  • Gehre C; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland.
  • Qiu W; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland.
  • Klaus Jäger P; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland.
  • Wang X; Institute of Robotics and Intelligent Systems, Zürich, Switzerland.
  • Marques FC; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland.
  • Nelson BJ; Institute of Robotics and Intelligent Systems, Zürich, Switzerland.
  • Müller R; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland.
  • Qin XH; Institute for Biomechanics, ETH Zurich, Zürich, Switzerland. Electronic address: qinx@ethz.ch.
Acta Biomater ; 174: 141-152, 2024 Jan 15.
Article em En | MEDLINE | ID: mdl-38061678
A long-standing challenge in skeletal tissue engineering is to reconstruct a three-dimensionally (3D) interconnected bone cell network in vitro that mimics the native bone microarchitecture. While conventional hydrogels are extensively used in studying bone cell behavior in vitro, current techniques lack the precision to manipulate the complex pericellular environment found in bone. The goal of this study is to guide single bone cells to form a 3D network in vitro via photosensitized two-photon ablation of microchannels in gelatin methacryloyl (GelMA) hydrogels. A water-soluble two-photon photosensitizer (P2CK) was added to soft GelMA hydrogels to enhance the ablation efficiency. Remarkably, adding 0.5 mM P2CK reduced the energy dosage threshold five-fold compared to untreated controls, enabling more cell-compatible ablation. By employing low-energy ablation (100 J/cm2) with a grid pattern of 1 µm wide and 30 µm deep microchannels, we induced dendritic outgrowth in human mesenchymal stem cells (hMSC). After 7 days, the cells successfully utilized the microchannels and formed a 3D network. Our findings reveal that cellular viability after low-energy ablation was comparable to unablated controls, whereas high-energy ablation (500 J/cm2) resulted in 42 % cell death. Low-energy grid ablation significantly promoted network formation and >40 µm long protrusion outgrowth. While the broad-spectrum matrix metalloproteinase inhibitor (GM6001) reduced cell spreading by inhibiting matrix degradation, cells invaded the microchannel grid with long protrusions. Collectively, these results emphasize the potential of photosensitized two-photon hydrogel ablation as a high-precision tool for laser-guided biofabrication of 3D cellular networks in vitro. STATEMENT OF SIGNIFICANCE: The inaccessible nature of osteocyte networks in bones renders fundamental research on skeletal biology a major challenge. This limit is partly due to the lack of high-resolution tools that can manipulate the pericellular environment in 3D cultures in vitro. To create bone-like cellular networks, we employ a two-photon laser in combination with a two-photon sensitizer to erode microchannels with low laser dosages into GelMA hydrogels. By providing a grid of microchannels, the cells self-organized into a 3D interconnected network within days. Laser-guided formation of 3D networks from single cells at micron-scale resolution is demonstrated for the first time. In future, we envisage in vitro generation of bone cell networks with user-dictated morphologies for both fundamental and translational bone research.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Contexto em Saúde: 6_ODS3_enfermedades_notrasmisibles Problema de saúde: 6_other_malignant_neoplasms Assunto principal: Engenharia Tecidual / Gelatina Limite: Humans Idioma: En Revista: Acta Biomater Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Suíça

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Contexto em Saúde: 6_ODS3_enfermedades_notrasmisibles Problema de saúde: 6_other_malignant_neoplasms Assunto principal: Engenharia Tecidual / Gelatina Limite: Humans Idioma: En Revista: Acta Biomater Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Suíça
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