TY - JOUR
T1 - A Pillar/Perfusion Plate Enhances Cell Growth, Reproducibility, Throughput, and User Friendliness in Dynamic 3D Cell Culture
AU - Lekkala, Vinod Kumar Reddy
AU - Kang, Soo-Yeon
AU - Liu, Jiafeng
AU - Shrestha, Sunil
AU - Acharya, Prabha
AU - Joshi, Pranav
AU - Zolfaghar, Mona
AU - Lee, Minseong
AU - Vanga, Manav Goud
AU - Jamdagneya, Paarth
AU - Pagnis, Sohan
AU - Kundi, Arham
AU - Kabbur, Samarth
AU - Kim, Ung Tae
AU - Yang, Yong
AU - Lee, Moo-Yeal
PY - 2024/5/13
Y1 - 2024/5/13
N2 - Static three-dimensional (3D) cell culture has been demonstrated in ultralow attachment well plates, hanging droplet plates, and microtiter well plates with hydrogels or magnetic nanoparticles. Although it is simple, reproducible, and relatively inexpensive, thus potentially used for high-throughput screening, statically cultured 3D cells often suffer from a necrotic core due to limited nutrient and oxygen diffusion and waste removal and have a limited in vivo-like tissue structure. Here, we overcome these challenges by developing a pillar/perfusion plate platform and demonstrating high-throughput, dynamic 3D cell culture. Cell spheroids were loaded on the pillar plate with hydrogel by simple sandwiching and encapsulation and cultured dynamically in the perfusion plate on a digital rocker. Unlike traditional microfluidic devices, fast flow velocity was maintained within perfusion wells and the pillar plate was separated from the perfusion plate for cell-based assays. It was compatible with common lab equipment and allowed cell culture, testing, staining, and imaging in situ. The pillar/perfusion plate enhanced cell growth by rapid diffusion, reproducibility, assay throughput, and user friendliness in a dynamic 3D cell culture.
AB - Static three-dimensional (3D) cell culture has been demonstrated in ultralow attachment well plates, hanging droplet plates, and microtiter well plates with hydrogels or magnetic nanoparticles. Although it is simple, reproducible, and relatively inexpensive, thus potentially used for high-throughput screening, statically cultured 3D cells often suffer from a necrotic core due to limited nutrient and oxygen diffusion and waste removal and have a limited in vivo-like tissue structure. Here, we overcome these challenges by developing a pillar/perfusion plate platform and demonstrating high-throughput, dynamic 3D cell culture. Cell spheroids were loaded on the pillar plate with hydrogel by simple sandwiching and encapsulation and cultured dynamically in the perfusion plate on a digital rocker. Unlike traditional microfluidic devices, fast flow velocity was maintained within perfusion wells and the pillar plate was separated from the perfusion plate for cell-based assays. It was compatible with common lab equipment and allowed cell culture, testing, staining, and imaging in situ. The pillar/perfusion plate enhanced cell growth by rapid diffusion, reproducibility, assay throughput, and user friendliness in a dynamic 3D cell culture.
KW - dynamic 3D cell culture
KW - high-throughput screening platform
KW - microphysiological system
KW - pillar and perfusion plate
KW - spheroids
UR - https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85192226003&origin=inward
UR - https://www.scopus.com/inward/citedby.uri?partnerID=HzOxMe3b&scp=85192226003&origin=inward
U2 - 10.1021/acsbiomaterials.4c00179
DO - 10.1021/acsbiomaterials.4c00179
M3 - Article
C2 - 38695610
SN - 2373-9878
VL - 10
SP - 3478
EP - 3488
JO - ACS Biomaterials Science and Engineering
JF - ACS Biomaterials Science and Engineering
IS - 5
ER -