This subproject is one of many research subprojects utilizing the resources provided by a Center grant funded by NIH/NCRR. Primary support for the subproject and the subproject's principal investigator may have been provided by other sources, including other NIH sources. The Total Cost listed for the subproject likely represents the estimated amount of Center infrastructure utilized by the subproject, not direct funding provided by the NCRR grant to the subproject or subproject staff. The goal of the Cell and Molecular Engineering Core (Core D) is to provide resources and expertise to COBRE project investigators in the following areas: 1) provide cells and tissue isolated from various sources to COBRE investigators;2) provides resources and techniques for growing cells and tissues in culture;3) generate and introduce into cells and tissues plasmid and viral vectors to facilitate both gain-of-function and loss-of-function analyses in vitro and in vivo;4) perform genetic manipulations by inhibition of endogenous gene expression using specific targeting by inhibitory double-stranded small interfering RNAs (siRNA) and offer optimized protocols;5) provide resources and expertise for morphological, immunological, and gene and protein analyses to examine cell and tissue differentiation and verify cell phenotype;6) provide expertise in developing and executing flow cytometric isolation and analyses of target cell populations;and 7) mentor the COBRE trainees in utilizing these techniques in their individual labs for development of their independent research programs.

Agency
National Institute of Health (NIH)
Institute
National Center for Research Resources (NCRR)
Type
Exploratory Grants (P20)
Project #
5P20RR021949-03
Application #
8360195
Study Section
National Center for Research Resources Initial Review Group (RIRG)
Project Start
2011-06-01
Project End
2012-05-31
Budget Start
2011-06-01
Budget End
2012-05-31
Support Year
3
Fiscal Year
2011
Total Cost
$229,896
Indirect Cost
Name
Clemson University
Department
Biomedical Engineering
Type
Schools of Engineering
DUNS #
042629816
City
Clemson
State
SC
Country
United States
Zip Code
29634
Altamirano, Sophie; Simmons, Charles; Kozubowski, Lukasz (2018) Colony and Single Cell Level Analysis of the Heterogeneous Response of Cryptococcus neoformans to Fluconazole. Front Cell Infect Microbiol 8:203
Karousou, Evgenia; Misra, Suniti; Ghatak, Shibnath et al. (2017) Roles and targeting of the HAS/hyaluronan/CD44 molecular system in cancer. Matrix Biol 59:3-22
Zhang, Jeremy; Sen, Atanu; Cho, Eunhee et al. (2017) Poloxamine/fibrin hybrid hydrogels for non-viral gene delivery. J Tissue Eng Regen Med 11:246-255
Liu, Honghai; Qin, Wan; Wang, Zhonghai et al. (2016) Disassembly of myofibrils and potential imbalanced forces on Z-discs in cultured adult cardiomyocytes. Cytoskeleton (Hoboken) 73:246-57
Huang, Ting; Wang, Zhonghai; Wei, Lina et al. (2016) Microelectrode Array-evaluation of Neurotoxic Effects of Magnesium as an Implantable Biomaterial. J Mater Sci Technol 32:89-96
Kuang, Serena Y; Yang, Xiaoqi; Wang, Zhonghai et al. (2016) How Microelectrode Array-Based Chick Forebrain Neuron Biosensors Respond to Glutamate NMDA Receptor Antagonist AP5 and GABAA Receptor Antagonist Musimol. Sens Biosensing Res 10:9-14
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Kuang, Serena Y; Wang, Zhonghai; Huang, Ting et al. (2015) Prolonging life in chick forebrain-neuron culture and acquiring spontaneous spiking activity on a microelectrode array. Biotechnol Lett 37:499-509
Nahar-Gohad, Pranjal; Gohad, Neeraj; Tsai, Chen-Chih et al. (2015) Rat aortic smooth muscle cells cultured on hydroxyapatite differentiate into osteoblast-like cells via BMP-2-SMAD-5 pathway. Calcif Tissue Int 96:359-69
Olsen, T R; Mattix, B; Casco, M et al. (2015) Manipulation of cellular spheroid composition and the effects on vascular tissue fusion. Acta Biomater 13:188-98

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