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Multicellular aligned bands disrupt global collective cell behavior.
Jebeli, Mahvash; Lopez, Samantha K; Goldblatt, Zachary E; McCollum, Dannel; Mana-Capelli, Sebastian; Wen, Qi; Billiar, Kristen.
Afiliação
  • Jebeli M; Biomedical Engineering Department, Worcester Polytechnic Institute, Worcester MA, USA.
  • Lopez SK; Biomedical Engineering Department, Worcester Polytechnic Institute, Worcester MA, USA.
  • Goldblatt ZE; Biomedical Engineering Department, Worcester Polytechnic Institute, Worcester MA, USA.
  • McCollum D; University of Massachusetts Medical School, Worcester MA, USA.
  • Mana-Capelli S; University of Massachusetts Medical School, Worcester MA, USA.
  • Wen Q; Physics Department, Worcester Polytechnic Institute, Worcester MA, USA.
  • Billiar K; Biomedical Engineering Department, Worcester Polytechnic Institute, Worcester MA, USA. Electronic address: kbilliar@wpi.edu.
Acta Biomater ; 163: 117-130, 2023 06.
Article em En | MEDLINE | ID: mdl-36306982
Mechanical stress patterns emerging from collective cell behavior have been shown to play critical roles in morphogenesis, tissue repair, and cancer metastasis. In our previous work, we constrained valvular interstitial cell (VIC) monolayers on circular protein islands to study emergent behavior in a controlled manner and demonstrated that the general patterns of cell alignment, size, and apoptosis correlate with predicted mechanical stress fields if radially increasing stiffness or contractility are used in the computational models. However, these radially symmetric models did not predict the existence of local regions of dense aligned cells observed in seemingly random locations of individual aggregates. The goal of this study is to determine how the heterogeneities in cell behavior emerge over time and diverge from the predicted collective cell behavior. Cell-cell interactions in circular multicellular aggregates of VICs were studied with time-lapse imaging ranging from hours to days, and migration, proliferation, and traction stresses were measured. Our results indicate that elongated cells create strong local alignment within preconfluent cell populations on the microcontact printed protein islands. These cells influence the alignment of additional cells to create dense, locally aligned bands of cells which disrupt the predicted global behavior. Cells are highly elongated at the endpoints of the bands yet have decreased spread area in the middle and reduced mobility. Although traction stresses at the endpoints of bands are enhanced, even to the point of detaching aggregates from the culture surface, the cells in dense bands exhibit reduced proliferation, less nuclear YAP, and increased apoptotic rates indicating a low stress environment. These findings suggest that strong local cell-cell interactions between primary fibroblastic cells can disrupt the global collective cellular behavior leading to substantial heterogeneity of cell behaviors in constrained monolayers. This local emergent behavior within aggregated fibroblasts may play an important role in development and disease of connective tissues. STATEMENT OF SIGNIFICANCE: Mechanical stress patterns emerging from collective cell behavior play critical roles in morphogenesis, tissue repair, and cancer metastasis. Much has been learned of these collective behaviors by utilizing microcontact printing to constrain cell monolayers (aggregates) into specific shapes. Here we utilize these tools along with long-term video microscopy tracking of individual aggregates to determine how heterogeneous collective behaviors unique to primary fibroblastic cells emerge over time and diverge from computed stress fields. We find that dense multicellular bands form from local collective behavior and disrupt the global collective behavior resulting in heterogeneous patterns of migration, traction stresses, proliferation, and apoptosis. This local emergent behavior within aggregated fibroblasts may play an important role in development and disease of connective tissues.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Comportamento de Massa / Neoplasias Tipo de estudo: Prognostic_studies Limite: Humans Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Comportamento de Massa / Neoplasias Tipo de estudo: Prognostic_studies Limite: Humans Idioma: En Ano de publicação: 2023 Tipo de documento: Article