PEER-REVIEWED PUBLICATION

2022

Tunable three-dimensional engineered prostate cancer tissues for in vitro recapitulation of heterogeneous in vivo prostate tumor stiffness

A tensile test divider icon

Habbit N L, Anbiah B, et al.

Acta Biomaterialia

Auburn University, CFD Research Corporation

RESEARCH SUMMARY
This study established and characterized a tunable 3D engineered prostate cancer tissue (EPCaT) model designed to reproduce the wide and spatially heterogeneous stiffness landscape observed in vivo in prostate cancer tumors. First, PC-3 prostate cancer xenografts were generated in nude mice using two seeding densities (1×10^6 vs 2×10^6 cells). Parallel-plate compression measurements on biopsied tumor regions (core, midpoint, periphery) showed stiffness spanning approximately 95–6,750 Pa, with higher initial seeding density widening the stiffness distribution and increasing spatial heterogeneity (notably stiffer periphery). The in vitro model was then built by co-encapsulating PC-3 cells with BJ-5ta fibroblasts (5:1 ratio) in a PEG–fibrinogen (PF) hydrogel, and tuning stiffness by adding excess PEGDA (0–3% w/v). By varying matrix composition and culture duration, EPCaTs were tuned across a broad stiffness range (≈50–10,000 Pa), encompassing both the measured xenograft range and published clinical prostate tissue stiffness values. The model supported long-term coculture viability, stiffness-dependent differences in colony morphology and remodeling, and stiffness-associated transcriptional shifts (RNA-seq/GSEA) including enrichment of tumorigenic programs (e.g., EMT/hypoxia-related sets) in stiffer matrices. Overall, the work provides a biomechanics-informed prostate tumor model for mechanistic studies of stiffness-driven progression and for future drug-development workflows that require physiologically relevant mechanical cues.
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CELLSCALE INSTRUMENT USED

MicroSquisher

Parallel-plate compression stiffness measurements were performed using a CellScale MicroSquisher to quantify Young’s modulus of both in vivo tumor biopsies and in vitro engineered tissues under physiological testing conditions. For in vivo measurements, excised PC-3 xenografts were sliced (~1 mm thick) and cored with a 3 mm biopsy punch to obtain disc-shaped samples from core, midpoint, and periphery regions; samples were placed in PBS and tested immediately. For EPCaTs, disc-shaped PF-based hydrogels (cast in 3 mm PDMS molds; 1 mm thickness) were tested on culture days 1, 15, and 22 to track stiffness evolution with matrix composition (0–3% excess PEGDA) and remodeling. In both cases, samples were loaded into the MicroSquisher fluid-bath chamber filled with PBS and maintained at 37°C. A 558.8 µm diameter tungsten microcantilever beam fitted with a compression platen was used to compress tissues to at least 15% deformation at a maximum compression rate of 10 µm/s for three cycles. Applied force was calculated from beam deflection, and tissue displacement was tracked by the system camera; force–displacement data were exported and converted to compressive stress–strain, with Young’s modulus computed from the slope of the linear region. These MicroSquisher-derived modulus values were central to (i) defining the in vivo xenograft stiffness range and its spatial heterogeneity, and (ii) demonstrating that EPCaTs can be tuned to reproduce the full in vivo stiffness distribution through controllable matrix formulation and culture time.
AUTHORS

Nicole L. Habbit, Benjamin Anbiah, Luke Anderson, Joshita Suresh, Iman Hassani, Matthew Eggert, Andrew Brannen, Joshua Davis, Yuan Tian, Balabhaskar Prabhakarpandian, Peter Panizzi, Robert D. Arnold, Elizabeth A. Lipke.

PUBLICATION DETAILS
JOURNAL

Acta Biomaterialia

YEAR

2022

INSTITUTIONS

Auburn University, CFD Research Corporation

COUNTRIES

United States

INSTRUMENT USED

MicroSquisher

TESTING METHODS

Compression TestingHydrated and Temperature Controlled TestingMicro-Mechanical Testing

RESEARCH APPLICATIONS

Cancer MechanobiologyDrug Screening & Drug Delivery MechanicsFibrosis & Tissue Remodeling

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