» Articles » PMID: 23049767

Three Dimensional Neuronal Cell Cultures More Accurately Model Voltage Gated Calcium Channel Functionality in Freshly Dissected Nerve Tissue

Overview
Journal PLoS One
Date 2012 Oct 11
PMID 23049767
Citations 23
Authors
Affiliations
Soon will be listed here.
Abstract

It has been demonstrated that neuronal cells cultured on traditional flat surfaces may exhibit exaggerated voltage gated calcium channel (VGCC) functionality. To gain a better understanding of this phenomenon, primary neuronal cells harvested from mice superior cervical ganglion (SCG) were cultured on two dimensional (2D) flat surfaces and in three dimensional (3D) synthetic poly-L-lactic acid (PLLA) and polystyrene (PS) polymer scaffolds. These 2D- and 3D-cultured cells were compared to cells in freshly dissected SCG tissues, with respect to intracellular calcium increase in response to high K(+) depolarization. The calcium increases were identical for 3D-cultured and freshly dissected, but significantly higher for 2D-cultured cells. This finding established the physiological relevance of 3D-cultured cells. To shed light on the mechanism behind the exaggerated 2D-cultured cells' functionality, transcriptase expression and related membrane protein distributions (caveolin-1) were obtained. Our results support the view that exaggerated VGCC functionality from 2D cultured SCG cells is possibly due to differences in membrane architecture, characterized by uniquely organized caveolar lipid rafts. The practical implication of use of 3D-cultured cells in preclinical drug discovery studies is that such platforms would be more effective in eliminating false positive hits and as such improve the overall yield from screening campaigns.

Citing Articles

GEV Powder: A Modified Product Based on Biovesicles Functioned in Air Pollution PM2.5-Induced Cardiopulmonary Injury.

Zhang X, Ye X, Xie Y, Yang Z, Spanos M, Guo Z Research (Wash D C). 2025; 8:0609.

PMID: 39949511 PMC: 11822167. DOI: 10.34133/research.0609.


Translational inhalable extracellular vesicle-based mRNA therapy for the treatment of lung cancer.

Liu M, Henick B, Cheng K Clin Transl Med. 2025; 15(1):e70186.

PMID: 39801009 PMC: 11726640. DOI: 10.1002/ctm2.70186.


Lipidomic analysis of plant-derived extracellular vesicles for guidance of potential anti-cancer therapy.

Wang F, Li L, Deng J, Ai J, Mo S, Ding D Bioact Mater. 2024; 46:82-96.

PMID: 39737211 PMC: 11683192. DOI: 10.1016/j.bioactmat.2024.12.001.


Extracellular vesicle therapeutics for cardiac repair.

Hu Y, Zhang W, Ali S, Takeda K, Vahl T, Zhu D J Mol Cell Cardiol. 2024; 199:12-32.

PMID: 39603560 PMC: 11788051. DOI: 10.1016/j.yjmcc.2024.11.005.


Lipid Rafts: The Maestros of Normal Brain Development.

Viljetic B, Blazetic S, Labak I, Ivic V, Zjalic M, Heffer M Biomolecules. 2024; 14(3).

PMID: 38540780 PMC: 10967752. DOI: 10.3390/biom14030362.


References
1.
Zhang , Chung , OLDENBURG . A Simple Statistical Parameter for Use in Evaluation and Validation of High Throughput Screening Assays. J Biomol Screen. 2000; 4(2):67-73. DOI: 10.1177/108705719900400206. View

2.
Mains R, Patterson P . Primary cultures of dissociated sympathetic neurons. I. Establishment of long-term growth in culture and studies of differentiated properties. J Cell Biol. 1973; 59(2 Pt 1):329-45. PMC: 2109089. DOI: 10.1083/jcb.59.2.329. View

3.
OConnell K, Martens J, Tamkun M . Localization of ion channels to lipid Raft domains within the cardiovascular system. Trends Cardiovasc Med. 2004; 14(2):37-42. DOI: 10.1016/j.tcm.2003.10.002. View

4.
Saino T, Satoh Y . Application of real-time confocal laser scanning microscopy to observe living cells in tissue specimens. J Electron Microsc (Tokyo). 2004; 53(1):49-56. DOI: 10.1093/jmicro/53.1.49. View

5.
Dolphin A . A short history of voltage-gated calcium channels. Br J Pharmacol. 2006; 147 Suppl 1:S56-62. PMC: 1760727. DOI: 10.1038/sj.bjp.0706442. View