ε-Poly-L-lysine peptide chain length regulated by the linkers connecting the transmembrane domains of ε-Poly-L-lysine synthetase. 2014

Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
Department of Bioscience, Fukui Prefectural University, Fukui, Japan hamano@fpu.ac.jp.

ε-Poly-l-lysine (ε-PL), consisting of 25 to 35 l-lysine residues with linkages between the α-carboxyl groups and ε-amino groups, is produced by Streptomyces albulus NBRC14147. ε-PL synthetase (Pls) is a membrane protein with six transmembrane domains (TM1 to TM6) as well as both an adenylation domain and a thiolation domain, characteristic of the nonribosomal peptide synthetases. Pls directly generates ε-PL chain length diversity (25- to 35-mer), but the processes that control the chain length of ε-PL during the polymerization reaction are still not fully understood. Here, we report on the identification of Pls amino acid residues involved in the regulation of the ε-PL chain length. From approximately 12,000 variants generated by random mutagenesis, we found 8 Pls variants that produced shorter chains of ε-PL. These variants have one or more mutations in two linker regions connecting the TM1 and TM2 domains and the TM3 and TM4 domains. In the Pls catalytic mechanism, the growing chain of ε-PL is not tethered to the enzyme, implying that the enzyme must hold the growing chain until the polymerization reaction is complete. Our findings reveal that the linker regions are important contributors to grasp the growing chain of ε-PL.

UI MeSH Term Description Entries
D008969 Molecular Sequence Data Descriptions of specific amino acid, carbohydrate, or nucleotide sequences which have appeared in the published literature and/or are deposited in and maintained by databanks such as GENBANK, European Molecular Biology Laboratory (EMBL), National Biomedical Research Foundation (NBRF), or other sequence repositories. Sequence Data, Molecular,Molecular Sequencing Data,Data, Molecular Sequence,Data, Molecular Sequencing,Sequencing Data, Molecular
D010453 Peptide Synthases Ligases that catalyze the joining of adjacent AMINO ACIDS by the formation of carbon-nitrogen bonds between their carboxylic acid groups and amine groups. Peptide Synthetases,Acid-Amino-Acid Ligases,Acid Amino Acid Ligases,Ligases, Acid-Amino-Acid,Synthases, Peptide,Synthetases, Peptide
D011107 Polylysine A peptide which is a homopolymer of lysine. Epsilon-Polylysine,Poly-(Alpha-L-Lysine),Epsilon Polylysine
D002462 Cell Membrane The lipid- and protein-containing, selectively permeable membrane that surrounds the cytoplasm in prokaryotic and eukaryotic cells. Plasma Membrane,Cytoplasmic Membrane,Cell Membranes,Cytoplasmic Membranes,Membrane, Cell,Membrane, Cytoplasmic,Membrane, Plasma,Membranes, Cell,Membranes, Cytoplasmic,Membranes, Plasma,Plasma Membranes
D000595 Amino Acid Sequence The order of amino acids as they occur in a polypeptide chain. This is referred to as the primary structure of proteins. It is of fundamental importance in determining PROTEIN CONFORMATION. Protein Structure, Primary,Amino Acid Sequences,Sequence, Amino Acid,Sequences, Amino Acid,Primary Protein Structure,Primary Protein Structures,Protein Structures, Primary,Structure, Primary Protein,Structures, Primary Protein
D001426 Bacterial Proteins Proteins found in any species of bacterium. Bacterial Gene Products,Bacterial Gene Proteins,Gene Products, Bacterial,Bacterial Gene Product,Bacterial Gene Protein,Bacterial Protein,Gene Product, Bacterial,Gene Protein, Bacterial,Gene Proteins, Bacterial,Protein, Bacterial,Proteins, Bacterial
D013302 Streptomyces A genus of bacteria that form a nonfragmented aerial mycelium. Many species have been identified with some being pathogenic. This genus is responsible for producing a majority of the ANTI-BACTERIAL AGENTS of practical value.
D016415 Sequence Alignment The arrangement of two or more amino acid or base sequences from an organism or organisms in such a way as to align areas of the sequences sharing common properties. The degree of relatedness or homology between the sequences is predicted computationally or statistically based on weights assigned to the elements aligned between the sequences. This in turn can serve as a potential indicator of the genetic relatedness between the organisms. Sequence Homology Determination,Determination, Sequence Homology,Alignment, Sequence,Alignments, Sequence,Determinations, Sequence Homology,Sequence Alignments,Sequence Homology Determinations
D017434 Protein Structure, Tertiary The level of protein structure in which combinations of secondary protein structures (ALPHA HELICES; BETA SHEETS; loop regions, and AMINO ACID MOTIFS) pack together to form folded shapes. Disulfide bridges between cysteines in two different parts of the polypeptide chain along with other interactions between the chains play a role in the formation and stabilization of tertiary structure. Tertiary Protein Structure,Protein Structures, Tertiary,Tertiary Protein Structures

Related Publications

Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
January 2020, Frontiers in bioengineering and biotechnology,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
February 2019, Journal of agricultural and food chemistry,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
December 2013, Biomacromolecules,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
July 2008, Journal of virology,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
January 2018, Biomedical materials (Bristol, England),
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
December 2008, Nature chemical biology,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
September 2015, Bioprocess and biosystems engineering,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
January 2018, Bioprocess and biosystems engineering,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
August 2021, Journal of applied microbiology,
Yoshimitsu Hamano, and Naoko Kito, and Akihiro Kita, and Yuuki Imokawa, and Kazuya Yamanaka, and Chitose Maruyama, and Hajime Katano
June 2015, Wei sheng wu xue bao = Acta microbiologica Sinica,
Copied contents to your clipboard!