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Bioprinted Human Lung Cancer-Mimics for Tissue Diagnostics Applications.
Wang, Mian; Li, Wanlu; Sanchez Flores, Regina; Cai, Ling; Garciamendez-Mijares, Carlos Ezio; Gill, Scott; Snyder, David; Millabas, Jasmine; Chafin, David; Zhang, Yu Shrike; Djalilvand, Azita.
Afiliação
  • Wang M; Harvard Medical School, Department of Medicine, Cambridge, Massachusetts, United States; crown160211@gmail.com.
  • Li W; Harvard Medical School, Department of Medicine, Cambridge, Massachusetts, United States; wanluli0424@gmail.com.
  • Sanchez Flores R; Harvard Medical School, Department of Medicine, Cambridge, Massachusetts, United States; A01634038@itesm.mx.
  • Cai L; Harvard Medical School, Department of Medicine, Cambridge, Massachusetts, United States; lcai7@bwh.harvard.edu.
  • Garciamendez-Mijares CE; Harvard Medical School, Department of Medicine, Cambridge, Massachusetts, United States; cgarciamendez-mijares@bwh.harvard.edu.
  • Gill S; Roche Tissue Diagnostics, Tucson, Arizona, United States; Scott.Gill@Roche.com.
  • Snyder D; Roche Tissue Diagnostics, Tucson, Arizona, United States; David.Snyder.ds2@Roche.com.
  • Millabas J; Roche Tissue Diagnostics, Tucson, Arizona, United States; Jasmine.Millabas@Roche.com.
  • Chafin D; Roche Tissue Diagnostics, Tucson, Arizona, United States; david.chafin@roche.com.
  • Zhang YS; Harvard Medical School, Department of Medicine, 65 Landsdowne Street, PRB 286, Cambridge, Massachusetts, United States, 02139; yszhang@research.bwh.harvard.edu.
  • Djalilvand A; Roche Tissue Diagnostics, Tucson, Arizona, United States; azita.djalilvand@roche.com.
Tissue Eng Part A ; 2023 Nov 06.
Article em En | MEDLINE | ID: mdl-37930720
ABSTRACT
Developing a reproducible and secure supply of customizable control tissues that standardizes for the cell type, tissue architecture, and preanalytics of interest for usage in applications including diagnostic, prognostic, and predictive assays, is critical for improving our patient care and welfare. The conventionally adopted control tissues directly obtained from patients are not ideal because they oftentimes have different amounts of normal and neoplastic elements, differing cellularity, differing architecture, and unknown preanalytics, in addition to the limited supply availability and thus associated high costs. In this study, we demonstrated a strategy to stably produce tissue-mimics for diagnostics purposes by taking advantage of the three-dimensional (3D) bioprinting technology. Specifically, we take anaplastic lymphoma kinase-positive (Alk+) lung cancer as an example, where a micropore-forming bioink laden with tumor cells was combined with digital light processing-based bioprinting for developing native-like Alk+ lung cancer tissue-mimics with both structural and functional relevancy. It is anticipated that our proposed methodology will pave new avenues for both fields of tissue diagnostics and 3D bioprinting significantly expanding their capacities, scope, and sustainability.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article