Certain bacteria contain genes that encode proteins and/or enzymes, which degrade or confer resistance to toxic compounds. Bioluminescent reporter plasmids will be constructed from these genes (containing their promoter elements) by linkage to other genes with the capability of light emission (bacterial luciferase genes). These plasmids will be introduces into suitable host bacteria in order to produce a biological detection system, capable of detecting low concentrations of Superfund hazardous substances such as chromium (VI), arsenic (arsenate and arsenite), and nickel. The recombinant bacteria will be examined for expression of the resistance genes and the luciferase genes in the presence of the hazardous substances. Specifically, when the targeted hazardous substance is present in the sample, production of resistance-related proteins from the genes in the constructed reported plasmid will be induces. Since the same plasmid contains the luciferase genes, luciferase will also be produced and the bacteria will bioluminesce. This bioluminescence is directly related to the presence of the targeted hazardous chemical and constitutes the analytical signal. The genetically designed bacteria will be employed in the development of biosensor based detection systems. By positioning these bacteria in front of optical fibers highly sensitive and selective biosensors will be developed capable of monitoring the level of Superfund hazardous substances in environmental samples (groundwater and soil). The construction of the sensors will be optimized with respect to the optical design, bacteria selection, and bacteria immobilization. Factors such as response time, selectivity, and effect of the solid surface in the case of soil will be evaluated. Further evaluation will be carried out by testing the sensor response in actual Superfund samples and quantification of the contaminants using traditional extraction and spectroscopic techniques.

Project Start
1999-04-01
Project End
2000-03-31
Budget Start
1998-10-01
Budget End
1999-09-30
Support Year
3
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Kentucky
Department
Type
DUNS #
832127323
City
Lexington
State
KY
Country
United States
Zip Code
40506
Deng, Pan; Barney, Jazmyne; Petriello, Michael C et al. (2018) Hepatic metabolomics reveals that liver injury increases PCB 126-induced oxidative stress and metabolic dysfunction. Chemosphere 217:140-149
Preston, Joshua D; Reynolds, Leryn J; Pearson, Kevin J (2018) Developmental Origins of Health Span and Life Span: A Mini-Review. Gerontology 64:237-245
Gupta, Prachi; Thompson, Brendan L; Wahlang, Banrida et al. (2018) The environmental pollutant, polychlorinated biphenyls, and cardiovascular disease: a potential target for antioxidant nanotherapeutics. Drug Deliv Transl Res 8:740-759
Roghani, Mohammadyousef; Jacobs, Olivia P; Miller, Anthony et al. (2018) Occurrence of chlorinated volatile organic compounds (VOCs) in a sanitary sewer system: Implications for assessing vapor intrusion alternative pathways. Sci Total Environ 616-617:1149-1162
Ahmad, Irfan; Weng, Jiaying; Stromberg, A J et al. (2018) Fluorescence based detection of polychlorinated biphenyls (PCBs) in water using hydrophobic interactions. Analyst :
Petriello, Michael C; Hoffman, Jessie B; Vsevolozhskaya, Olga et al. (2018) Dioxin-like PCB 126 increases intestinal inflammation and disrupts gut microbiota and metabolic homeostasis. Environ Pollut 242:1022-1032
Petriello, Michael C; Charnigo, Richard; Sunkara, Manjula et al. (2018) Relationship between serum trimethylamine N-oxide and exposure to dioxin-like pollutants. Environ Res 162:211-218
Patil, Vinod S; Gutierrez, Angela M; Sunkara, Manjula et al. (2017) Curcumin Acrylation for Biological and Environmental Applications. J Nat Prod 80:1964-1971
Gupta, Prachi; Lacerda, Caroline; Patil, Vinod et al. (2017) Degradation of poly(?-amino ester) gels in alcohols through transesterification: A method to conjugate drugs to polymer matrices. J Polym Sci A Polym Chem 55:2019-2026
Sarma, Rupam; Islam, Md Saiful; Miller, Anne-Frances et al. (2017) Layer-by-Layer-Assembled Laccase Enzyme on Stimuli-Responsive Membranes for Chloro-Organics Degradation. ACS Appl Mater Interfaces 9:14858-14867

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