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A bioengineering method for modeling alveolar Rhabdomyosarcoma and assessing chemotherapy responses

  • Evan Stefanek
  • , Ehsan Samiei
  • , Mahboubeh Kavoosi
  • , Mohammad Esmaeillou
  • , Kiarash Roustai Geraylow
  • , Arya Emami
  • , Milad Ashrafizadeh
  • , David Perrin
  • , Joseph W. Gordon
  • , Mohsen Akbari
  • , Saeid Ghavami
  • University of Victoria BC
  • Islamic Azad University
  • University of Siena
  • Semnan University of Medical Sciences
  • York University Toronto
  • University of Manitoba
  • Sabanci University
  • The Diabetes Research Envisioned and Accomplished in Manitoba (DREAM) Theme of the Children's Hospital Research Institute of Manitoba
  • Shiraz University of Medical Sciences
  • Katowice School of Technology

Research output: Contribution to journalArticlepeer-review

13 Citations (Scopus)

Abstract

Rhabdomyosarcoma (RMS) is the most common pediatric soft-tissue malignant tumor. Treatment of RMS usually includes primary tumor resection along with systemic chemotherapy. Two-dimensional (2D) cell culture systems and animal models have been extensively used for investigating the potential efficacy of new RMS treatments. However, RMS cells behave differently in 2D culture than in vivo, which has recently inspired the adoption of three-dimensional (3D) culture environments. In the current paper, we will describe the detailed methodology we have developed for fabricating a 3D engineered model to study alveolar RMS (ARMS) in vitro. This model consists of a thermally cross-linked collagen disk laden with RMS cells that mimics the structural and bio-chemical aspects of the tumor extracellular matrix (ECM). This process is highly reproducible and produces a 3D engineered model that can be used to analyze the cytotoxicity and autophagy induction of drugs on ARMS cells. The most improtant bullet points are as following: • We fabricated 3D model of ARMS. • The current ARMS 3D model can be used for screening of chemotherapy drugs. • We developed methods to detect apoptosis and autophagy in ARMS 3D model to detect the mechansims of chemotherapy agents.

Original languageEnglish
Article number101473
JournalMethodsX
Volume8
DOIs
Publication statusPublished - Jan 2021

Keywords

  • Alveolar Rhabdomyosarcoma 3D model
  • Apoptosis
  • Autophagy
  • Biofabrication
  • Cell death
  • Rhabdomyosarcoma

ASJC Scopus subject areas

  • Multidisciplinary

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