4.7 Article

Programmable Living Units for Emulating Pancreatic Tumor-Stroma Interplay

期刊

ADVANCED HEALTHCARE MATERIALS
卷 11, 期 13, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202102574

关键词

3D in vitro tumor models; pancreatic tumor microenvironment; preclinical drug screens; superhydrophobic surfaces

资金

  1. national funds through the Portuguese Foundation for Science and Technology/MCTES [UIDB/50011/2020, UIDP/50011/2020]
  2. Programa Operacional Competitividade e Internacionalizacao (POCI)
  3. (OE) through FCT/MCTES, in the scope of project PANGEIA [PTDC/BTM-SAL/30503/2017]
  4. Portuguese Foundation for Science and Technology (FCT) [DFA/BD/7692/2020, CEEC/1048/2019]

向作者/读者索取更多资源

In this study, bioengineering pancreatic cancer models that mimic the tumor microenvironment using in vitro platforms was highly appreciated. These cancer-on-a-bead models exhibit biomimetic multicompartmentalization and tunable integration of cancer-associated stromal elements, recapitulating the signatures of human pancreatic tumors. The models also display increased drug resistance compared to their reductionistic counterparts.
Bioengineering close-to-native in vitro models that emulate tumors bioarchitecture and microenvironment is highly appreciable for improving disease modeling toolboxes. Herein, pancreatic cancer living units-so termed cancer-on-a-bead models-are generated. Such user-programmable in vitro platforms exhibit biomimetic multicompartmentalization and tunable integration of cancer associated stromal elements. These stratified units can be rapidly assembled in-air, exhibit reproducible morphological features, tunable size, and recapitulate spatially resolved tumor-stroma extracellular matrix (ECM) niches. Compartmentalization of pancreatic cancer and stromal cells in well-defined ECM microenvironments stimulates the secretion of key biomolecular effectors including transforming growth factor beta and Interleukin 1-beta, closely emulating the signatures of human pancreatic tumors. Cancer-on-a-bead models also display increased drug resistance to chemotherapeutics when compared to their reductionistic counterparts, reinforcing the importance to differentially model ECM components inclusion and their spatial stratification as observed in vivo. Beyond providing a universal technology that enables spatial modularity in tumor-stroma elements bioengineering, a scalable, in-air fabrication of ECM-tunable 3D platforms that can be leveraged for recapitulating differential matrix composition occurring in other human neoplasias is provided here.

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