The DNA Microarray and Homology Modeling Core will have several major functions. First it will be a resource for laboratories to examine how exposure to toxic agents affects gene expression. Laboratories will discus with Core personnel (Project Leaders, Senior Investigators, or PGR) projected experiments so that practical plans can be developed. Such discussion will lead to discussions whether a given problem is addressed best (a) by generating a limited cDNA array by subtractive hybridization, (b) using a subset of cDNAs available in the Core repository, or (c) through a full array of cDNAs available in the repository. When a subtractively hybridized array is considered the appropriate approach, the Core will assist in its generation by representational difference analysis, a technique with which Dr. Gregg (Senior Investigator) has much experience. As the Core expands its repository of cDNA clones, the emphasis is anticipated to shift gradually to larger arrays. This will be true particularly in the case of human genes, for which we already have at our disposal nearly 10,000 clones through the effects of Dr. Wu (Senior Investigator) and colleagues. The Core will prepare arrays for Superfund experiments, conduct the hybridization and scanning, present the results to the labs and help with the interpretations. A second major function of the Core will be in 3-D homology modeling. This will permit Superfund investigators to examine protein-toxicant interactions electronically, thereby gaining valuable mechanistic information that can be applied to other potential targets. The third major junction of the Core is in bioinformatics. This will consist largely of data management, assisting Superfund investigators with data analysis and database searchers and helping investigators utilize the campus Life Sciences Informatics Program. Initial data handling will be in this core. As data sets become larger they will be transferred to the Statistics Core B.

Agency
National Institute of Health (NIH)
Institute
National Institute of Environmental Health Sciences (NIEHS)
Type
Hazardous Substances Basic Research Grants Program (NIEHS) (P42)
Project #
3P42ES004699-16S1
Application #
6664559
Study Section
Special Emphasis Panel (ZES1)
Project Start
2002-09-24
Project End
2003-03-31
Budget Start
Budget End
Support Year
16
Fiscal Year
2002
Total Cost
$165,230
Indirect Cost
Name
University of California Davis
Department
Type
DUNS #
094878337
City
Davis
State
CA
Country
United States
Zip Code
95618
?ertíková Chábová, V?ra; Kujal, Petr; Škaroupková, Petra et al. (2018) Combined Inhibition of Soluble Epoxide Hydrolase and Renin-Angiotensin System Exhibits Superior Renoprotection to Renin-Angiotensin System Blockade in 5/6 Nephrectomized Ren-2 Transgenic Hypertensive Rats with Established Chronic Kidney Disease. Kidney Blood Press Res 43:329-349
Kodani, Sean D; Bhakta, Saavan; Hwang, Sung Hee et al. (2018) Identification and optimization of soluble epoxide hydrolase inhibitors with dual potency towards fatty acid amide hydrolase. Bioorg Med Chem Lett 28:762-768
Rand, Amy A; Helmer, Patrick O; Inceoglu, Bora et al. (2018) LC-MS/MS Analysis of the Epoxides and Diols Derived from the Endocannabinoid Arachidonoyl Ethanolamide. Methods Mol Biol 1730:123-133
Li, Xueshu; Holland, Erika B; Feng, Wei et al. (2018) Authentication of synthetic environmental contaminants and their (bio)transformation products in toxicology: polychlorinated biphenyls as an example. Environ Sci Pollut Res Int 25:16508-16521
Mao, Yuxin; Pan, Yang; Li, Xuan et al. (2018) High-precision digital droplet pipetting enabled by a plug-and-play microfluidic pipetting chip. Lab Chip 18:2720-2729
Burmistrov, Vladimir; Morisseau, Christophe; Harris, Todd R et al. (2018) Effects of adamantane alterations on soluble epoxide hydrolase inhibition potency, physical properties and metabolic stability. Bioorg Chem 76:510-527
Stamou, Marianna; Grodzki, Ana Cristina; van Oostrum, Marc et al. (2018) Fc gamma receptors are expressed in the developing rat brain and activate downstream signaling molecules upon cross-linking with immune complex. J Neuroinflammation 15:7
Huo, Jingqian; Li, Zhenfeng; Wan, Debin et al. (2018) Development of a Highly Sensitive Direct Competitive Fluorescence Enzyme Immunoassay Based on a Nanobody-Alkaline Phosphatase Fusion Protein for Detection of 3-Phenoxybenzoic Acid in Urine. J Agric Food Chem 66:11284-11290
Zamuruyev, Konstantin O; Borras, Eva; Pettit, Dayna R et al. (2018) Effect of temperature control on the metabolite content in exhaled breath condensate. Anal Chim Acta 1006:49-60
Zamuruyev, Konstantin O; Schmidt, Alexander J; Borras, Eva et al. (2018) Power-efficient self-cleaning hydrophilic condenser surface for portable exhaled breath condensate (EBC) metabolomic sampling. J Breath Res 12:036020

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