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Olsen, E. A.

Publications and source records attributed to Olsen, E. A..

2 recordsLinked to original sources

Cisplatin resistant lung adenocarcinoma cells exhibit increased proangiogenic capacity in a microphysiological model of tumor neovascularization

Carcinomas commonly recur and progress rapidly after a period of remission following platinum-based therapy. This clinical scenario suggests that surviving drug-resistant tumor cells are dormant or slow cycling before re-entering a rapid growth phase. Remodeling of the recurrent tumor microenvironment (TME) contributes to high rates of metastasis, but little is known about differences in TME remodeling before therapy and after recurrence. This study explores selection for cisplatin-resistant subpopulations of A549 lung adenocarcinoma cells in culture to derive populations for modeling features of the recurrent TME. A cisplatin dose of 25 M killed approximately 80% of the cells while sparing enough cells to allow re-expansion of sufficient cell numbers for downstream experimentation. Expanded cisplatin-resistant derivatives (Cis-R A549) exhibited features of mesenchymal transition (EMT) such as cellular hypertrophy, loss of cell-cell contacts, and upregulation of alpha smooth muscle actin mRNA. In 3D culture, Cis-R A549 spheroids were loosely aggregated and dysmorphic in comparison to the compact and spherical parent A549 spheroids. The Ki67 index of Cis-R A549 in 2D and 3D spheroid culture was markedly lower than parent A549, suggesting a state of pseudo-dormancy with slow cycling. Cis-R A549 upregulated multiple genes associated with the evolution of a more aggressive TME and displayed significantly increased proangiogenic capacity in a microphysiological model of tumor angiogenesis. This study establishes a methodological framework for engineering the recurrent TME with drug-resistant cancer cell line derivatives selected via high-dose exposure in culture. Increased angiogenesis induced by Cis-R A549 suggests that anti-angiogenic therapy may be more beneficial in the setting of recurrent disease following first-line therapies.

bioengineering↗

Adaptable Fabrication of Vascularized Milliscale Tissues in Membrane-Free Organ Chips Manufactured with 3D Printed Molds

Inexpensive stereolithography (SLA) 3D printing enables rapid prototyping of resin molds for polydimethylsiloxane (PDMS) soft lithography and organ chip fabrication, but geometric distortion and surface roughness of SLA resins can impede the development of adaptable manufacturing workflows. This study reports post-processing procedures for manufacturing SLA-printed molds built with a Formlabs F3 printer that produce fully cured, flat, patently bonded, and optically clear PDMS organ chips. User injection loading tests with iterated guide structure designs were conducted to achieve engineering reduction to practice of milliscale membrane-free organ chips (MFOC), defined as reproducible loading of aqueous solutions without failure of surface tension-based liquid patterning. The optimized manufacturing workflow was applied to further engineer milliscale MFOC for specific applications in modeling vascular physiology and pathobiology. The open lateral interfaces of bulk tissues seeded in MFOC facilitate the formation of anastomoses with internal vasculature to create milliscale perfusable vascular beds. After optimizing bulk tissue vasculogenesis in MFOC, we developed a method for seeding the bulk tissue interfaces with a confluent endothelium to stimulate self-assembly of perfusable anastomoses with the internal vasculature. Rocker- and pump-based flow-conditioning protocols were tested to engineer enhanced barrier function of the perfusable internal vasculature. Modularity of the MFOC design enabled creation of a multi-organ device that was used to model decaying gradients of cancer-associated vascular inflammation in organ compartments positioned at increasing distances from a tumor compartment. These easily adaptable methods for designing and fabricating vascularized microphysiological systems can accelerate their adoption in a diverse range of preclinical laboratory settings.

bioengineering↗