Establishment of a new conditionally immortalized human brain microvascular endothelial cell line retaining an in vivo blood-brain barrier function. 2010

Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
Department of Neurology and Clinical Neuroscience, Yamaguchi University Graduate School of Medicine, Ube, Yamaguchi, Japan.

The breakdown of the blood-brain barrier (BBB) has been considered to be a key step in the disease process of a number of neurological disorders such as cerebral ischemia and Alzheimer's disease. Many in vitro BBB models derived from animal tissues have been established to elucidate the mechanism of BBB insufficiency. However, only a few human immortalized in vitro BBB models have been reported. In the present study, a temperature-sensitive SV40-T antigen was introduced to immortalize cells using a retrovirus to obtain a better human in vitro BBB model which sustains physiological properties. This endothelial cell (EC) line, termed TY08, showed a spindle-shaped morphology. The cells expressed all key tight junctional proteins, such as occludin, claudin-5, zonula occludens (ZO)-1 and ZO-2 at their cell-to-cell boundaries, and had low permeability to inulin across its monolayer. The cells also expressed various influx and efflux transporters and exhibited the functional expression of p-glycoprotein. Furthermore, the TY08 cells grew and proliferated well under the permissive temperature and stopped growing under the non-permissive temperature to serve as physiological ECs forming the BBB. Thus, conditionally immortalized TY08 cells retaining the in vivo BBB functions should facilitate analyses for determining the pathophysiology of various neurological diseases.

UI MeSH Term Description Entries
D008565 Membrane Proteins Proteins which are found in membranes including cellular and intracellular membranes. They consist of two types, peripheral and integral proteins. They include most membrane-associated enzymes, antigenic proteins, transport proteins, and drug, hormone, and lectin receptors. Cell Membrane Protein,Cell Membrane Proteins,Cell Surface Protein,Cell Surface Proteins,Integral Membrane Proteins,Membrane-Associated Protein,Surface Protein,Surface Proteins,Integral Membrane Protein,Membrane Protein,Membrane-Associated Proteins,Membrane Associated Protein,Membrane Associated Proteins,Membrane Protein, Cell,Membrane Protein, Integral,Membrane Proteins, Integral,Protein, Cell Membrane,Protein, Cell Surface,Protein, Integral Membrane,Protein, Membrane,Protein, Membrane-Associated,Protein, Surface,Proteins, Cell Membrane,Proteins, Cell Surface,Proteins, Integral Membrane,Proteins, Membrane,Proteins, Membrane-Associated,Proteins, Surface,Surface Protein, Cell
D001812 Blood-Brain Barrier Specialized non-fenestrated tightly-joined ENDOTHELIAL CELLS with TIGHT JUNCTIONS that form a transport barrier for certain substances between the cerebral capillaries and the BRAIN tissue. Brain-Blood Barrier,Hemato-Encephalic Barrier,Barrier, Blood-Brain,Barrier, Brain-Blood,Barrier, Hemato-Encephalic,Barriers, Blood-Brain,Barriers, Brain-Blood,Barriers, Hemato-Encephalic,Blood Brain Barrier,Blood-Brain Barriers,Brain Blood Barrier,Brain-Blood Barriers,Hemato Encephalic Barrier,Hemato-Encephalic Barriers
D001921 Brain The part of CENTRAL NERVOUS SYSTEM that is contained within the skull (CRANIUM). Arising from the NEURAL TUBE, the embryonic brain is comprised of three major parts including PROSENCEPHALON (the forebrain); MESENCEPHALON (the midbrain); and RHOMBENCEPHALON (the hindbrain). The developed brain consists of CEREBRUM; CEREBELLUM; and other structures in the BRAIN STEM. Encephalon
D002460 Cell Line Established cell cultures that have the potential to propagate indefinitely. Cell Lines,Line, Cell,Lines, Cell
D006309 Hearing The ability or act of sensing and transducing ACOUSTIC STIMULATION to the CENTRAL NERVOUS SYSTEM. It is also called audition. Audition
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D042783 Endothelial Cells Highly specialized EPITHELIAL CELLS that line the HEART; BLOOD VESSELS; and lymph vessels, forming the ENDOTHELIUM. They are polygonal in shape and joined together by TIGHT JUNCTIONS. The tight junctions allow for variable permeability to specific macromolecules that are transported across the endothelial layer. Capillary Endothelial Cells,Lymphatic Endothelial Cells,Vascular Endothelial Cells,Capillary Endothelial Cell,Cell, Capillary Endothelial,Cell, Endothelial,Cell, Lymphatic Endothelial,Cell, Vascular Endothelial,Cells, Capillary Endothelial,Cells, Endothelial,Cells, Lymphatic Endothelial,Cells, Vascular Endothelial,Endothelial Cell,Endothelial Cell, Capillary,Endothelial Cell, Lymphatic,Endothelial Cell, Vascular,Endothelial Cells, Capillary,Endothelial Cells, Lymphatic,Endothelial Cells, Vascular,Lymphatic Endothelial Cell,Vascular Endothelial Cell
D019108 Tight Junctions Cell-cell junctions that seal adjacent epithelial cells together, preventing the passage of most dissolved molecules from one side of the epithelial sheet to the other. (Alberts et al., Molecular Biology of the Cell, 2nd ed, p22) Occluding Junctions,Zonula Occludens,Junction, Occluding,Junction, Tight,Junctions, Occluding,Junctions, Tight,Occluden, Zonula,Occludens, Zonula,Occluding Junction,Tight Junction,Zonula Occluden
D020133 Reverse Transcriptase Polymerase Chain Reaction A variation of the PCR technique in which cDNA is made from RNA via reverse transcription. The resultant cDNA is then amplified using standard PCR protocols. Polymerase Chain Reaction, Reverse Transcriptase,Reverse Transcriptase PCR,PCR, Reverse Transcriptase,Transcriptase PCR, Reverse
D020869 Gene Expression Profiling The determination of the pattern of genes expressed at the level of GENETIC TRANSCRIPTION, under specific circumstances or in a specific cell. Gene Expression Analysis,Gene Expression Pattern Analysis,Transcript Expression Analysis,Transcriptome Profiling,Transcriptomics,mRNA Differential Display,Gene Expression Monitoring,Transcriptome Analysis,Analyses, Gene Expression,Analyses, Transcript Expression,Analyses, Transcriptome,Analysis, Gene Expression,Analysis, Transcript Expression,Analysis, Transcriptome,Differential Display, mRNA,Differential Displays, mRNA,Expression Analyses, Gene,Expression Analysis, Gene,Gene Expression Analyses,Gene Expression Monitorings,Gene Expression Profilings,Monitoring, Gene Expression,Monitorings, Gene Expression,Profiling, Gene Expression,Profiling, Transcriptome,Profilings, Gene Expression,Profilings, Transcriptome,Transcript Expression Analyses,Transcriptome Analyses,Transcriptome Profilings,mRNA Differential Displays

Related Publications

Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
December 2012, Brain research,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
December 1992, The Journal of investigative dermatology,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
August 2012, Journal of visualized experiments : JoVE,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
January 2016, Journal of neurochemistry,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
September 1992, Journal of virological methods,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
April 2020, Integrative biology : quantitative biosciences from nano to macro,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
August 2021, Experimental cell research,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
November 1997, FASEB journal : official publication of the Federation of American Societies for Experimental Biology,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
March 2013, Cellular and molecular neurobiology,
Yasuteru Sano, and Fumitaka Shimizu, and Masaaki Abe, and Toshihiko Maeda, and Yoko Kashiwamura, and Sumio Ohtsuki, and Tetsuya Terasaki, and Masuo Obinata, and Koji Kajiwara, and Masami Fujii, and Michiyasu Suzuki, and Takashi Kanda
July 2018, Molecular neurobiology,
Copied contents to your clipboard!