• 제목/요약/키워드: peptide antibiotics

검색결과 75건 처리시간 0.031초

Construction of Recombinant Pichia pastoris Carrying a Constitutive AvBD9 Gene and Analysis of Its Activity

  • Tu, Jian;Qi, Kezong;Xue, Ting;Wei, Haiting;Zhang, Yongzheng;Wu, Yanli;Zhou, Xiuhong;Lv, Xiaolong
    • Journal of Microbiology and Biotechnology
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    • 제25권12호
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    • pp.2082-2089
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    • 2015
  • Avian beta-defensin 9 (AvBD9) is a small cationic peptide consisting of 41 amino acids that plays a crucial rule in innate immunity and acquired immunity in chickens. Owing to its wide antibacterial spectrum, lack of a residue, and failure to induce bacterial drug resistance, AvBD9 is expected to become a substitute for conventional antibiotics in the livestock and poultry industries. Using the preferred codon of Pichia pastoris, the mature AvBD9 peptide was designed and synthesized, based on the sequence from GenBank. The P. pastoris constitutive expression vector pGHKα was used to construct a pGHKα-AvBD9 recombinant plasmid. Restriction enzyme digestion was performed using SacI and BglII to remove the ampicillin resistance gene, and the plasmid was electrotransformed into P. pastoris GS115. High-expression strains with G418 resistance were screened, and the culture supernatant was analyzed by Tricine-SDS-PAGE and western blot assay to identify target bands of about 6 kDa. A concentrate of the supernatant containing AvBD9 was used for determination of antimicrobial activity. The supernatant concentrate was effective against Escherichia coli, Salmonella paratyphi, Salmonella pullorum, Pseudomonas aeruginosa, Enterococcus faecalis, and Enterobacter cloacae. The fermentation product of P. pastoris carrying the recombinant AvBD9 plasmid was adjusted to 1.0 × 108 CFU/ml and added to the drinking water of white feather broilers at different concentrations. The daily average weight gain and immune organ indices in broilers older than 7 days were significantly improved by the AvBD9 treatment.

A New Method of Producing a Natural Antibacterial Peptide by Encapsulated Probiotics Internalized with Inulin Nanoparticles as Prebiotics

  • Cui, Lian-Hua;Yan, Chang-Guo;Li, Hui-Shan;Kim, Whee-Soo;Hong, Liang;Kang, Sang-Kee;Choi, Yun-Jaie;Cho, Chong-Su
    • Journal of Microbiology and Biotechnology
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    • 제28권4호
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    • pp.510-519
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    • 2018
  • Synbiotics are a combination of probiotics and prebiotics, which lead to synergistic benefits in host welfare. Probiotics have been used as an alternative to antibiotics. Among the probiotics, Pediococcus acidilactici (PA) has shown excellent antimicrobial activity against Salmonella Gallinarum (SG) as a major poultry pathogen and has improved the production performances of animals. Inulin is widely used as a prebiotic for the improvement of animal health and growth. The main aim of this study was to investigate the antimicrobial activity of inulin nanoparticle (IN)-internalized PA encapsulated into alginate/chitosan/alginate (ACA) microcapsules (MCs) for future in vivo application. The prepared phthalyl INs (PINs) were characterized by DLS and FE-SEM. The contents of phthal groups in the PINs were estimated by $^1H-NMR$ measurement as 25.1 mol.-%. The sizes of the PINs measured by DLS were approximately 203 nm. Internalization into PA was confirmed by confocal microscopy and flow cytometry. The antimicrobial activity of PIN-internalized probiotics encapsulated into ACA MCs was measured by coculture antimicrobial assays on SG. PIN-internalized probiotics had a higher antimicrobial ability than that of ACA MCs loaded with PA/inulin or PA. Interestingly, when PINs were treated with PA and encapsulated into ACA MCs, as a natural antimicrobial peptide, pediocin was produced much more in the culture medium compared with other groups with inulin-loaded ACA MCs and PA encapsulated into ACA MCs.

Biosynthesis of 3-Hydroxy-5-Methyl-O-Methyltyrosine in the Saframycin/Safracin Biosynthetic Pathway

  • Fu, Cheng-Yu;Tang, Man-Cheng;Peng, Chao;Li, Lei;He, Yan-Ling;Liu, Wen;Tang, Gong-Li
    • Journal of Microbiology and Biotechnology
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    • 제19권5호
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    • pp.439-446
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    • 2009
  • The biosynthesis study of antibiotics saframycin (SFM) in Streptomyces lavendulae and safracin (SAC) in Pseudomonas fluorescens demonstrated that 3-hydroxy-S-methyl-O-methyltyrosine (3hSmOmTyr), a nonproteinogenic amino acid, is the precursor of the tetrahydroisoquinoline molecular core. In the biosynthetic gene cluster of SAC/SFM, sacD/sfmD encodes a protein with high homology to each other but no sequence similarity to other known enzymes; sacF/sfmM2 and sacG/sfmM3 encode methyltransferases for C-methylation and O-methylation; and sacE/sfinF encodes a small protein with significant sequence similarity to the MbtH-like proteins, which are frequently found in the biosynthetic pathways of non ribosomal peptide antibiotics and siderophores. To address their function, the biosynthetic cassette of 3h5mOmTyr was heterologously expressed in S. coelicolor and P. putida, and an in-frame deletion and complementation in trans were carried out. The results revealed that (i) SfmD catalyzes the hydroxylation of aromatic rings; (ii) sacD/sacF/sacG in the SAC gene cluster and sfmD/sfmM2/sfmM3 in the SFM cluster are sufficient for the biosynthesis of 3h5mOmTyr; and (iii) the mbtH-like gene is not required for the biosynthesis of the 3h5mOmTyr precursor.

서로 다른 두 단백질의 세포 내 동시 발현 체계의 개발을 통한 ErmSF에서 특이적으로 발견되는 N-Terminal End Region (NTER)을 포함하는 펩타이드의 생체내에서의 ErmSF 활성 억제 효과 검색 (Investigation on Inhibitory Effect of ErmSF N-Terminal End Region Peptide on ErmSF Methyltansferase Activity In Vivo Through Development of Co-Expression System of Two Different Proteins in One Cell)

  • 진형종
    • 미생물학회지
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    • 제47권3호
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    • pp.200-208
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    • 2011
  • 임상에서 가장 문제가 되는 MLS (macrolide-lincosamidestreptogramin B) 항생제 내성은 Erm 단백질에 의하여 23S rRNA의 A2058에 dimethylation시킴으로써 MLS 항생제의 부착능을 저해함으로써 나타내는 내성이다. ErmSF는 다른 Erm 단백질과 달리 매우 긴 N-terminal end region (NTER)을 가지고 있으며 RNA에 잘 부착되는 것으로 알려진 arginine이 25%를 차지하고 있다. 특히 NTER의 점차적인 제거는 이에 따른 점차적인 활성의 감소 그리고 이의 완전한 제거는 98%의 활성소실을 가져다 주는 것으로 밝혀져서 단순 부착에 의한 활성에의 기여를 암시하고 있다. 뿐만 아니라 NTER 다음에 붙어 있는 아미노산은 제거되었을 때 활성이 소실되는 매우 중요한 아미노산임이 밝혀졌다. 이러한 사실에 근거, 서로 다른 복제원점을 가짐으로써 동일한 세포 내에 존재할 수 있으며 발현 체계가 동일하나 copy수가 차이가 있어서 단백질 발현 양에 차이를 가져다 주는 새로운 단백질 동시 발현체계를 개발하고 이를 적용하여 NTER 함유 펩타이드를 copy수가 많은 pET23b 체계의 담체에서, ErmSF는 copy수가 적은 pACYC184 담체 체계에서 발현 시킴으로써 펩타이드가 한 세포 내에서 ErmSF 보다 훨씬 더 많이 발현되도록 하여 이 펩타이드가 ErmSF의 활성을 저해할 수 있는지 확인하였다. 계획된 대로 IPTG에 의한 유도 없이도 펩타이드가 ErmSF보다 세포 내에서 훨씬 많이 발현되었다. 그러나 생체 내에서는 그 활성의 저해를 확인 할 수 없었다. 따라서 ErmSF의 활성은 NTER 펩타이드의 단순한 부착에 의해서 이루어지는 것이 아니라 conformational change 등의 역동적인 상호작용을 통하여 이루어지는 것으로 사료되었다. 따라서 ErmSF와 23S rRNA와의 복합체 구조의 규명 그리고 NTER과 ErmSF protein body의 부착양식에 대한 구체적인 생화학적 규명이 이루어지면 이러한 접근법은 이 단백질의 억제제를 창출하는데 기여를 할 수 있을 것으로 사료된다.

Pseudomonas fluorescens BB2 균주가 생산하는 단백질성 항생물질에 의한 효모 Candida 생육 억제 (Inhibition of yeast Candida growth by protein antibiotic produced from Pseudomonas fluorescens BB2)

  • 안경준
    • 미생물학회지
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    • 제51권4호
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    • pp.448-452
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    • 2015
  • 효모의 생육을 억제하는 세균을 배추의 근권 토양에서 분리하였다. API 20NE test와 16S rRNA 유전자 염기서열 분석 결과 Pseudomonas fluorescens BB2로 동정되었다. P. fluorescens BB2 균주는 3%의 glucose가 포함된 YM 배지에서 $20^{\circ}C$로 배양하였을 때 효모에 대한 항생물질을 2차 대사산물로서 효과적으로 생산하였다. BB2 균주의 단백질성 항생물질은 ammonium sulfate에 의한 침전과 N-butanol 추출에 의해 농축되었으며, 효모의 생육을 억제하는데 Candida albicans KCTC 7965에 대한 minimal inhibitory concentration은 $10{\mu}g/ml$이었고, $80{\mu}g/ml$ 농도에서는 완전히 억제하였다. N-butanol 추출에 의한 친수성 분획은 Bacillus cereus ATCC 21366의 생육을 억제하였으며, chrome azurol S 평판배지에서 주황색 halo를 생성하므로 철과 결합하는 siderophore를 포함한다. 세포막을 통한 crystal violet의 흡수를 조사한 결과 효모 C. albicans에 대한 소수성 항생물질 $60{\mu}g/ml$의 농도에서는 대조군에 비해 막 투과성이 약 9% 증가하였다. P. fluorescens BB2 균주가 생산하는 항생물질은 효모 Candida의 생육을 억제하는 antimicrobial peptide의 일종으로 보이며, 이는 Pseudomonas 속에서는 처음으로 보고되는 것이다.

Increasing the Flow of Protein from Ruminal Fermentation - Review -

  • Wallace, R.J.;Newbold, C.J.;Bequette, B.J.;MacRae, J.C.;Lobley, G.E.
    • Asian-Australasian Journal of Animal Sciences
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    • 제14권6호
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    • pp.885-893
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    • 2001
  • This review summarizes some recent research into ways of improving the productivity of ruminal fermentation by increasing protein flow from the rumen and decreasing the breakdown of protein that results from the action of ruminal microorganisms. Proteinases derived from the plant seem to be of importance to the overall process of proteolysis in grazing animals. Thus, altering the expression of proteinases in grasses may be a way of improving their nutritive value for ruminants. Inhibiting rumen microbial activity in ammonia formation remains an important objective: new ways of inhibiting peptide and amino acid breakdown are described. Rumen protozoa cause much of the bacterial protein turnover which occurs in the rumen. The major impact of defaunation on N recycling in the sheep rumen is described. Alternatively, if the efficiency of microbial protein synthesis can be increased by judicious addition of certain individual amino acids, protein flow from ruminal fermentation may be increased. Proline may be a key amino acid for non-cellulolytic bacteria, while phenylalanine is important for cellulolytic species. Inhibiting rumen wall tissue breakdown appears to be an important mechanism by which the antibiotic, flavomycin, improves N retention in ruminants. A role for Fusobacterium necrophorum seems likely, and alternative methods for its regulation are required, since growth-promoting antibiotics will soon be banned in many countries.

해양 생물 유래의 항균 펩타이드 및 작용 기작 (Antimicrobial Peptides Derived from the Marine Organism(s) and Its Mode of Action)

  • 황보미;이준영;이동건
    • 한국미생물·생명공학회지
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    • 제38권1호
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    • pp.19-23
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    • 2010
  • Recently, marine organisms are emerging as a leading group for identifying and extracting novel bioactive substances. These substances are known to possess a potential regarding not only as a source of pharmaceutical products but also their beneficial effects on humans. Among the substances, antimicrobial peptides (AMPs) specifically have attracted considerable interest for possible use in the development of new antibiotics. AMPs are characterized by relatively short cationic peptides containing the ability to adopt a structure in which cationic or hydrophobic amino acids are spatially scattered. Although a few reports address novel marine organisms-derived AMPs, their antimicrobial mechanism(s) are still remain unknown. In this review, we summarized the peptides previously investigated, such as Pleurocidin, Urechistachykinins, Piscidins and Arenicin-1. These peptides exhibited significant antimicrobial activities against human microbial pathogens without remarkable hemolytic effects against human erythrocytes, and their mode of actions are based on permeabilization of the plasma membrane of the pathogen. Therefore, the study of antimicrobial peptides derived from marine organisms may prove to be useful in the design of future therapeutic antimicrobial drugs.

A Genome-Wide Analysis of Antibiotic Producing Genes in Streptomyces globisporus SP6C4

  • Kim, Da-Ran;Kwak, Youn-Sig
    • The Plant Pathology Journal
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    • 제37권4호
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    • pp.389-395
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    • 2021
  • Soil is the major source of plant-associated microbes. Several fungal and bacterial species live within plant tissues. Actinomycetes are well known for producing a variety of antibiotics, and they contribute to improving plant health. In our previous report, Streptomyces globisporus SP6C4 colonized plant tissues and was able to move to other tissues from the initially colonized ones. This strain has excellent antifungal and antibacterial activities and provides a suppressive effect upon various plant diseases. Here, we report the genome-wide analysis of antibiotic producing genes in S. globisporus SP6C4. A total of 15 secondary metabolite biosynthetic gene clusters were predicted using antiSMASH. We used the CRISPR/Cas9 mutagenesis system, and each biosynthetic gene was predicted via protein basic local alignment search tool (BLAST) and rapid annotation using subsystems technology (RAST) server. Three gene clusters were shown to exhibit antifungal or antibacterial activity, viz. cluster 16 (lasso peptide), cluster 17 (thiopeptide-lantipeptide), and cluster 20 (lantipeptide). The results of the current study showed that SP6C4 has a variety of antimicrobial activities, and this strain is beneficial in agriculture.

대장균에서 SUMO fusion tag을 이용하여 항균펩타이드인 moricin의 발현 (Expression of Antimicrobial Peptide (AMP), Moricin Using SUMO Fusion Tag in Escherichia coli)

  • 안동규;박선일;김순영
    • 생명과학회지
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    • 제32권12호
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    • pp.956-961
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    • 2022
  • 식물에서 재조합 단백질을 생산하는 것은 여러 가지 장점이 있다. 식물은 인간 병원체에 감염되지 않으며, 박테리아와 달리 내독소를 생산하지 않는다. 엽록체 형질전환은 핵 형질전환에 비해 안정적으로 많은 유전자를 발현시킬 수 있는 등 다양한 이점이 있다. 항균펩타이드(AMP)는 많은 동물들이 가지고 있는 선천면역의 일종으로, 소량이라도 항균력을 가지며, 기존 항생제와 다르게 쉽게 내성균이 생기지 않는다. 항균펩타이드인 moricin은 누에나방의 한 종류인 Bombyx mori에서 분리되었으며, C-말단은 염기성 아미노산이 모여 있고, N-말단은 α-helix 구조를 가지고 있다. Moricin을 생산할 때 SUMO와 6xHis tag를 융합하여 사용하였다. 발현된 moricin의 용해성과 안정성을 높이기 위해 SUMO를, 발현된 moricin을 정제하기 위하여 6xHis tag를 이용하였다. 본 연구에서 담배 엽록체와 대장균에서 항균펩타이드를 발현하기 위한 형질전환벡터를 제작하였다. 또한, 엽록체와 박테리아의 전사 및 번역의 유사성을 이용하여 대장균에서 단백질의 발현을 확인하였다. 발현된 moricin을 Ni 컬럼 및 SUMOase를 처리하여 정제하고 agar diffusion assay를 이용하여 항균 활성을 확인하였다.

고등식물에 미치는 항생물질의 영향 (제4보) - 대두 Aminoacid metabolism에 미치는 항생물질의 영향에 대하여

  • 이민재;이영록
    • 약학회지
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    • 제3권1호
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    • pp.4-9
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    • 1957
  • Effects of antibioties on micro-organism have been reported by many scientists, such as Krampitz and Werkman, Fisher, Gale and Rodwell, Klimick Cavalito and Bailey, Umbreit, etc. On the mechanism by which penicillin act, Fisher(1947), Platt(1947), and Cavallito, considered that penicillin might act on bacteria by inhibiting with the normal function of SH-group of glutathione in the metabolism of the cell. Resenbrance of penicillin to gultathione in structure and the inactivation of penicillin by cysteine make us approve of the above inhibiting theory of SH-group. Galland (1947) and Schmidt (1947) reported that penicillin inhibited the activity of ribonuclease, Phosphatase, and mononucleotidase. Gale (1948) discovered that the gram positive bacteria had lost the power to uptake glutamic acid by ribonucleic acid in the medium contained penicillin: growth of gram positive organism was inhibited by the results that penicillin inhibited the uptake of amino acid byribonucleic acid, acting on ribonucleic acid of gram positive bacteria. Hotchkiss (1950) cultured S. aureus in the medium contained glucose and amino acids, and studied the effect of penicillin on protein synthesis. Peptide formation in living cells was inhibited by penicillin, while amono acid was utilized as before the addition of penicillin. On the otherhand, Binkley (1951) found penicillin interfered hydrolase of glutath one, and Hans (1950) reported penicillin inhibited the transpeptidation. On the machanism by which streptomycin acts. Cohen (1947) reported steptomycin made a irreversible complex with desoxyribonucleic acid, by the fact that desoxyribonucleic acid formed the precipitates with diguanide group of steptomycin. Zeller (1951) reported, on the other hand, streptomycin inhibited diamine oxidease. Geiger (1947) and Umbreit (1949) reported that steptomycin inhibited condensation of oxaloacetate and pyruvate in E. Coli and Oginsky et al (1949) reported steptomycin inhibited oxaloacetate-pyruvate reaction in Kreb's cycle. On the mechanism by which terramycin acts, Hahn & Wisseman (1951) reported that the formation of adaptive enzyme was inhibited by terramycin in E. Coli cultivated in the medium contained loctose, and that the protein synthesis was inhibited by terramycin. However, effects of antibiotics on amino acid metabolism have not been discussed much in spite of its important role in living cells. Especislly, effects of anitibiotics on higher plants have scarcely been reported. Here, to prove the effect of antibiotics on higher plants, and the mechanism by which, through amino acid metabolism, they promote or inhibit growth of plants, amino acids in bean plants treated with penicillin, streptomycin, and terramycin were analyzed by paper chromatography. And to clarify the antagonis of cysteine (as SH-group) against penicillin, through amino acid metabolism, amino acids in bean plants treated with cystene and penicillin, at the same time, were also analyzed.

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