Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

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Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006

Transcript of Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Page 1: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Synthesis of Biologically Active Thiadiazole Analogs

Lillian Nordahl

2006

Page 2: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Background: Auxin

- Causes cell growth and development in plants

- Role in cell growth not fully understood on a molecular level because of unidentified receptor proteins

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Auxin (indole-3-acetic acid)

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Background: Use of Auxin Inhibitors to Study Auxin

- Structure-activity relationship testing to identify chemical group(s) that bind to receptor proteins of auxin

Furyl acrylate ester of a thiadiazole heterocycle: identified in 2004 as an inhibitor of auxin by Armstrong et al.

Page 4: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Background: Use of Auxin Inhibitors to Study Auxin

- Structure-activity relationship testing to identify chemical group(s) that bind to receptor proteins of auxin

Furyl acrylate ester of a thiadiazole heterocycle: identified in 2004 as an inhibitor of auxin by Armstrong et al.

Page 5: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Background: Use of Auxin Inhibitors to Study Auxin

- Structure-activity relationship testing to identify chemical group(s) that bind to receptor proteins of auxin

Furyl acrylate ester of a thiadiazole heterocycle: identified in 2004 as an inhibitor of auxin by Armstrong et al.

Page 6: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Background: Use of Auxin Inhibitors to Study Auxin

- Structure-activity relationship testing to identify chemical group(s) that bind to receptor proteins of auxin

Furyl acrylate ester of a thiadiazole heterocycle: identified in 2004 as an inhibitor of auxin by Armstrong et al.

Page 7: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Goal

- Synthesize derivatives of a furyl acrylate ester to determine which chemical groups of the furyl acrylate ester bind to a target protein of auxin

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Acylation: Furoyl Chloride Derivative

Ethyl-amino thiadiazole + furoyl chloride

Page 9: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Acylation: Furoyl Chloride Derivative

furoyl chloride derivative

Page 10: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Acylation: Furoyl Chloride Derivative

Ethyl-amino thiadiazole + furoyl chloride furoyl chloride derivative

Page 11: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Acylation: Furoyl Chloride Derivative

Ethyl-amino thiadiazole + furoyl chloride furoyl chloride derivative

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Acylation: Thiophenecarbonyl Chloride Derivative

Ethyl-amino thiadiazole + thiophenecarbonyl chloride

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Acylation: Thiophenecarbonyl Chloride Derivative

thiophenecarbonyl chloride derivative

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Acylation Set-up

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Purification

- Aqueous rinses

- Flash chromatography- Medium pressure liquid

chromatography

Aqueous rinsing

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Identification

- Silica gel thin-layer chromatography (TLC)

- 1H and 13C nuclear magnetic resonance (NMR) spectroscopy

- Infrared (IR) spectroscopy

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1H NMR Spectrum of Furoyl Chloride Derivative

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1H NMR Spectrum of Furoyl Chloride Derivative

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1H NMR Spectrum of Furoyl Chloride Derivative

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1H NMR Spectrum of Furoyl Chloride Derivative

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13C NMR Spectrum of Furoyl Chloride Derivative

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IR Spectrum of Furoyl Chloride Derivative

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IR Spectrum of Furoyl Chloride Derivative

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IR Spectrum of Furoyl Chloride Derivative

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IR Spectrum of Furoyl Chloride Derivative

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1H NMR Spectrum of Thiophenecarbonyl Chloride Derivative

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13C NMR Spectrum of Thiophenecarbonyl Chloride Derivative

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IR Spectrum of Thiophene-carbonyl Chloride Derivative

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Conclusions

- Correct number and arrangement of hydrogen and carbon

atoms

- Desired hybridization and bonding present

- Pure products

- DMAP improves yield for thiophenecarbonyl chloride derivative

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Conclusions

- Correct number and arrangement of hydrogen and carbon

atoms

- Desired hybridization and bonding present

- Pure products

- DMAP improves yield for thiophenecarbonyl chloride derivative

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Future Studies

- Structure-activity relationship studies

- Isolation of receptor protein

- Applications in processes involving the control of plant growth

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Acknowledgements

- Dr. Rebecca C. Hoye at Macalester College

- Minnesota Academy of Science and Academy of Applied

Sciences

- Ms. Lois Fruen

- Team Research

Page 33: Synthesis of Biologically Active Thiadiazole Analogs Lillian Nordahl 2006.

Synthesis of Biologically Active Thiadiazole Analogs

Lillian Nordahl

2006