Compounds with C-P bonds represent an understudied class of natural products with proven and attractive properties as drugs for humans or herbicides. With stable carbon-phosphorus bonds, phosphonates and phosphinates are useful scaffolds that mimic phosphates and display desirable pharmacological properties. This major class of bioactive compounds will be addressed by an intensely collaborative team at the University of Illinois. The Kelleher Laboratory will leverage its core expertise in ultra-high performance Fourier-Transform Mass Spectrometry (FTMS) to implement instrumentation and tailored software for phosphonate compounds and biosynthetic intermediates in both targeted and discovery modes. For known phosphonates, both small molecule MS (metabolomics) and large molecule MS (FTMS-based assays), will be used to interrogate phosphonate intermediates both free and bound as thioesters to non-ribosomal peptide synthetases. Further, the compound K-26 will be linked to its biosynthetic gene cluster using a general fosmid-screening approach employing a highly automated FTMS-based screen. The enzymology underlying the biosynthesis of phosphinothricin tripeptide (PTT) will be elucidated. With emphasis on the PTT system, the Kelleher Laboratory will use its extensive experience in non-ribosomal peptide synthesis to dissect the timing of P- methylation and the role of a curious tandem thiolation domain in the biosynthetic assembly line. Armed with mechanistic understanding of the thiotemplate portion of this gene cluster, a series of phs mutants will be screened using large molecule FTMS to engineer the NRPS portion of the PTT cluster from S. vidriochromogenes, with production of unnatural PTT analogues in a heterologous producer, S. lividans, to follow. For both targeted analysis and discovery, the negative mass defect of phosphorus along with selective MS/MS detection approaches will require tailored software for """"""""phosphonate-directed"""""""" metabolomics to filter large datasets emanating from ion trap/Fourier-Transform hybrid mass spectrometers operating at 7, 12, and 14.5Tesla. A particular strength of a MS approach to phosphonate discovery is that new compounds are identified based on structural features and not modes of biosynthesis or spectrum of activity in a bioassay. The FTMS approaches to engineered production and discovery of new phosphonates complements the many other strategies presented in this integratedP01.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Program Projects (P01)
Project #
5P01GM077596-04
Application #
8053857
Study Section
Special Emphasis Panel (ZRG1)
Project Start
Project End
Budget Start
2010-04-01
Budget End
2011-03-31
Support Year
4
Fiscal Year
2010
Total Cost
$373,547
Indirect Cost
Name
University of Illinois Urbana-Champaign
Department
Type
DUNS #
041544081
City
Champaign
State
IL
Country
United States
Zip Code
61820
Parkinson, Elizabeth I; Tryon, James H; Goering, Anthony W et al. (2018) Discovery of the Tyrobetaine Natural Products and Their Biosynthetic Gene Cluster via Metabologenomics. ACS Chem Biol 13:1029-1037
Ulrich, Emily C; Bougioukou, Despina J; van der Donk, Wilfred A (2018) Investigation of Amide Bond Formation during Dehydrophos Biosynthesis. ACS Chem Biol 13:537-541
Wang, Bin; Guo, Fang; Dong, Shi-Hui et al. (2018) Activation of silent biosynthetic gene clusters using transcription factor decoys. Nat Chem Biol :
Goettge, Michelle N; Cioni, Joel P; Ju, Kou-San et al. (2018) PcxL and HpxL are flavin-dependent, oxime-forming N-oxidases in phosphonocystoximic acid biosynthesis in Streptomyces. J Biol Chem 293:6859-6868
Sun, H; Zhao, H; Ang, E L (2018) A coupled chlorinase-fluorinase system with a high efficiency of trans-halogenation and a shared substrate tolerance. Chem Commun (Camb) 54:9458-9461
McLaughlin, Martin I; van der Donk, Wilfred A (2018) Stereospecific Radical-Mediated B12-Dependent Methyl Transfer by the Fosfomycin Biosynthesis Enzyme Fom3. Biochemistry 57:4967-4971
Wang, Yajie; Ren, Hengqian; Zhao, Huimin (2018) Expanding the boundary of biocatalysis: design and optimization of in vitro tandem catalytic reactions for biochemical production. Crit Rev Biochem Mol Biol 53:115-129
Born, David A; Ulrich, Emily C; Ju, Kou-San et al. (2017) Structural basis for methylphosphonate biosynthesis. Science 358:1336-1339
Si, Tong; Li, Bin; Comi, Troy J et al. (2017) Profiling of Microbial Colonies for High-Throughput Engineering of Multistep Enzymatic Reactions via Optically Guided Matrix-Assisted Laser Desorption/Ionization Mass Spectrometry. J Am Chem Soc 139:12466-12473
Peck, Spencer C; Wang, Chen; Dassama, Laura M K et al. (2017) O-H Activation by an Unexpected Ferryl Intermediate during Catalysis by 2-Hydroxyethylphosphonate Dioxygenase. J Am Chem Soc 139:2045-2052

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