Title Information
Title
Design and Implementation of a Device to Simulate Blunt Traumatic Brain Injury Using a 3D In Vitro Cortical Spheroid Model
Type of Resource (primo)
dissertations
Name: Personal
Name Part
Vecchio, Francesca B
Role
Role Term: Text
creator
Name: Personal
Name Part
Hoffman-Kim, Diane
Role
Role Term: Text
Advisor
Name: Personal
Name Part
Kesari, Haneesh
Role
Role Term: Text
Reader
Name: Personal
Name Part
Mayoral, Sonia
Role
Role Term: Text
Reader
Name: Corporate
Name Part
Brown University. Biology and Medicine: Biomedical Engineering
Role
Role Term: Text
sponsor
Origin Information
Copyright Date
2025
Physical Description
Extent
1, 90 p.
digitalOrigin
born digital
Note: thesis
Thesis (Sc. M.)--Brown University, 2025
Genre (aat)
theses
Abstract
Objective: Traumatic brain injury (TBI) results when external forces exert strain on the brain, resulting in cell death, inflammation, and long-term neurological effects. To screen therapeutics for TBI, there is a need for biomimetic, high-throughput models that simulate blunt TBI. A previously established 3D in vitro cortical spheroid model containing the cells present in the brain and exhibiting brain-like stiffness and electrical activity was employed to address this need. Here, we present a novel silicone indenter and 3D-printed mechanical assembly to simulate blunt TBI in cortical spheroids, enabling reproducible and scalable injury delivery. Methods: Primary rat cortical cells (8000 cells/well) were seeded into 96-well agarose micro-molds to generate spheroids. Silicone indenters with 96 pegs were designed to impact spheroids at 13-15 days in vitro. Impacting devices were designed in Fusion360 and 3D printed with polylactic acid on a Prusa i3 MK3S+ printer. Viability was assessed via ATP quantification and Ethidium Homodimer-1 staining. Neuronal and glial responses were evaluated through β-III Tubulin (neurites), Glial Fibrillary Acidic Protein (astrocytes), and Isolectin-B4 (microglia), followed by confocal imaging, ImageJ and graph theory analyses, and statistical evaluation. Results: Silicone indenters were integrated with one of two custom-designed bistable compliant mechanisms (BiCM1 or BiCM2), both of which successfully delivered mechanical impacts to cortical spheroids. Silicone indenters induced strain levels ranging from 25% to 50%. The approximate force required to deploy the BiCMs were 9N for BiCM1 and 25N for BiCM2. BiCM2 exhibited a high strain rate of approximately 400 to 600 s-1. Spheroids subjected to impact exhibited immediate and sustained astrocyte activation, neurite degeneration, and reduced viability lasting at least 72 hours, with BiCM2-impacted spheroids experiencing more pronounced cellular damage. Repeated impacts also resulted in cell death. Conclusions: This study demonstrates a novel platform for simulating blunt TBI in cortical spheroids. Impacted spheroids resulted in reduced viability and increased neuroinflammation, with higher severity injuries resulting in increased spheroid damage. Ongoing work includes mechanical optimization to improve experimental reproducibility. This platform provides a promising tool for mechanistic studies and therapeutic screening in TBI research.
Subject (fast) (authorityURI="http://id.worldcat.org/fast", valueURI="http://id.worldcat.org/fast/00832558")
Topic
Biomechanics
Subject
Topic
traumatic brain injury
Subject
Topic
high strain-rate deformation
Subject
Topic
3D Cell Culture
Subject
Topic
in vitro
Subject
Topic
Rat Cortical Microtissues
Subject
Topic
3d Bioprinting
Language
Language Term (ISO639-2B)
English
Record Information
Record Content Source (marcorg)
RPB
Record Creation Date (encoding="iso8601")
20250707