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      Assessing the Combinatorial Potential of the RiPP Cyanobactin tru Pathway

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          Abstract

          Ribosomally produced natural products, the RiPPs, exhibit features that are potentially useful in the creation of large chemical libraries using simple mutagenesis. RiPPs are encoded on ribosomal precursor peptides, but they are extensively posttranslationally modified, endowing them with properties that are useful in drug discovery and biotechnology. In order to determine which mutations are acceptable, strategies are required to determine sequence selectivity independently of the context of flanking amino acids. Here, we examined the absolute sequence selectivity of the trunkamide cyanobactin pathway, tru. A series of random double and quadruple simultaneous mutants were synthesized and produced in Escherichia coli. Out of a total of 763 mutated amino acids examined in 325 unique sequences, 323 amino acids were successfully incorporated in 159 sequences, leading to >300 new compounds. Rules for tru sequence selectivity were determined, which will be useful for the design and synthesis of combinatorial biosynthetic libraries. The results are also interpreted in comparison to the known natural products of tru and pat cyanobactin pathways.

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          Searching for peptide ligands with an epitope library.

          Tens of millions of short peptides can be easily surveyed for tight binding to an antibody, receptor or other binding protein using an "epitope library." The library is a vast mixture of filamentous phage clones, each displaying one peptide sequence on the virion surface. The survey is accomplished by using the binding protein to affinity-purify phage that display tight-binding peptides and propagating the purified phage in Escherichia coli. The amino acid sequences of the peptides displayed on the phage are then determined by sequencing the corresponding coding region in the viral DNA's. Potential applications of the epitope library include investigation of the specificity of antibodies and discovery of mimetic drug candidates.
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            Production of cyclic peptides and proteins in vivo.

            Combinatorial libraries of synthetic and natural products are an important source of molecular information for the interrogation of biological targets. Methods for the intracellular production of libraries of small, stable molecules would be a valuable addition to existing library technologies by combining the discovery potential inherent in small molecules with the large library sizes that can be realized by intracellular methods. We have explored the use of split inteins (internal proteins) for the intracellular catalysis of peptide backbone cyclization as a method for generating proteins and small peptides that are stabilized against cellular catabolism. The DnaE split intein from Synechocystis sp. PCC6803 was used to cyclize the Escherichia coli enzyme dihydrofolate reductase and to produce the cyclic, eight-amino acid tyrosinase inhibitor pseudostellarin F in bacteria. Cyclic dihydrofolate reductase displayed improved in vitro thermostability, and pseudostellarin F production was readily apparent in vivo through its inhibition of melanin production catalyzed by recombinant Streptomyces antibioticus tyrosinase. The ability to generate and screen for backbone cyclic products in vivo is an important milestone toward the goal of generating intracellular cyclic peptide and protein libraries.
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              Phage Display.

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                Author and article information

                Journal
                ACS Synth Biol
                ACS Synth Biol
                sb
                asbcd6
                ACS Synthetic Biology
                American Chemical Society
                2161-5063
                2161-5063
                20 August 2015
                20 August 2014
                17 April 2015
                : 4
                : 4
                : 482-492
                Affiliations
                []Symbion Discovery, Inc., Salt Lake City, Utah 84112, United States
                []Skaggs Pharmacy Institute, Department of Medicinal Chemistry, University of Utah , Salt Lake City, Utah 84112, United States
                Author notes
                Article
                10.1021/sb500267d
                4410914
                25140729
                9836b36c-4803-4708-9abe-d3041ca5e468
                Copyright © 2014 American Chemical Society

                This is an open access article published under an ACS AuthorChoice License, which permits copying and redistribution of the article or any adaptations for non-commercial purposes.

                History
                : 23 June 2014
                Funding
                National Institutes of Health, United States
                Categories
                Research Article
                Custom metadata
                sb500267d
                sb-2014-00267d

                Molecular biology
                combinatorial biosynthesis,cyanobactin,trunkamide,patellamide
                Molecular biology
                combinatorial biosynthesis, cyanobactin, trunkamide, patellamide

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