TY - JOUR
T1 - A peptide ligase and the ribosome cooperate to synthesize the peptide pheganomycin
AU - Noike, Motoyoshi
AU - Matsui, Takashi
AU - Ooya, Koichi
AU - Sasaki, Ikuo
AU - Ohtaki, Shouta
AU - Hamano, Yoshimitsu
AU - Maruyama, Chitose
AU - Ishikawa, Jun
AU - Satoh, Yasuharu
AU - Ito, Hajime
AU - Morita, Hiroyuki
AU - Dairi, Tohru
N1 - Publisher Copyright:
© 2015 Nature America, Inc. All rights reserved.
PY - 2015/1/1
Y1 - 2015/1/1
N2 - Peptide antibiotics are typically biosynthesized by one of two distinct machineries in a ribosome-dependent or ribosome-independent manner. Pheganomycin (PGM (1)) and related analogs consist of the nonproteinogenic amino acid (S)-2-(3,5-dihydroxy-4-hydroxymethyl)phenyl-2-guanidinoacetic acid (2) and a proteinogenic core peptide, making their origin uncertain. We report the identification of the biosynthetic gene cluster from Streptomyces cirratus responsible for PGM production. Unexpectedly, the cluster contains a gene encoding multiple precursor peptides along with several genes plausibly encoding enzymes for the synthesis of amino acid 2. We identified PGM1, which has an ATP-grasp domain, as potentially capable of linking the precursor peptides with 2, and validate this hypothesis using deletion mutants and in vitro reconstitution. We document PGM1's substrate permissivity, which could be rationalized by a large binding pocket as confirmed via structural and mutagenesis experiments. This is to our knowledge the first example of cooperative peptide synthesis achieved by ribosomes and peptide ligases using a peptide nucleophile.
AB - Peptide antibiotics are typically biosynthesized by one of two distinct machineries in a ribosome-dependent or ribosome-independent manner. Pheganomycin (PGM (1)) and related analogs consist of the nonproteinogenic amino acid (S)-2-(3,5-dihydroxy-4-hydroxymethyl)phenyl-2-guanidinoacetic acid (2) and a proteinogenic core peptide, making their origin uncertain. We report the identification of the biosynthetic gene cluster from Streptomyces cirratus responsible for PGM production. Unexpectedly, the cluster contains a gene encoding multiple precursor peptides along with several genes plausibly encoding enzymes for the synthesis of amino acid 2. We identified PGM1, which has an ATP-grasp domain, as potentially capable of linking the precursor peptides with 2, and validate this hypothesis using deletion mutants and in vitro reconstitution. We document PGM1's substrate permissivity, which could be rationalized by a large binding pocket as confirmed via structural and mutagenesis experiments. This is to our knowledge the first example of cooperative peptide synthesis achieved by ribosomes and peptide ligases using a peptide nucleophile.
UR - http://www.scopus.com/inward/record.url?scp=84924925641&partnerID=8YFLogxK
U2 - 10.1038/nchembio.1697
DO - 10.1038/nchembio.1697
M3 - 学術論文
C2 - 25402768
AN - SCOPUS:84924925641
SN - 1552-4450
VL - 11
SP - 71
EP - 76
JO - Nature Chemical Biology
JF - Nature Chemical Biology
IS - 1
ER -