• 제목/요약/키워드: non-ribosomal biosynthesis

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시아노박테리아 Non-ribosomal Peptides의 효과적인 연구를 위한 New Degenerate Primer의 개발 (New Degenerate Primer for the Cyanobacterial Non-ribosomal Peptides)

  • 김기은
    • KSBB Journal
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    • 제22권5호
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    • pp.362-365
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    • 2007
  • Cyanobacterial A-domain의 A3 motif와 A7 motif의 높은 진화론적 보존성에 의거해서 Non-ribosomal peitides를 생산하는 시아노박테리아를 Screening할 수 있는 degenerated primer를 만들 수 있었다. Degenerate primer서열의 종류는 가능하면 1,000개 정도까지를 기준으로 만드는 것이 좋다. Primer의 종류가 너무 많으면 primer 1종류 당 mol수가 적게 되어 특이성도 저하된다. 그러므로 Primer의 종류가 많을 경우는 inosin을 N (4종류의 염기) 부분에 이용하면 어느 염기에도 강하게 결합하지 않고 두 가닥 DNA 형성을 저해하지도 않으므로 degeneration을 줄이는데 도움이 된다. Degenerate primer의 annealing 온도는 primer에 포함되어있는 서열 중 가장 낮은 Tm을 기준으로 한다. 이번 연구처럼 N (ACGT) 대신에 Inosin을 이용하였을 때에는 Inosin이 Tm을 높게 하지 않고 Tm을 낮게 하지도 않으므로 Tm 계산시 고려하지 않아도 되었다. PCR 효율이 떨어질 우려가 있으므로 충분한 Tm값 (대개 $45\sim60^{\circ}C$ 이상)을 갖는 서열을 디자인하여 primer로 PCR하는 것이 좋지만, A3/A7 degenerate prime에서는 실험에 의해 40$^{\circ}C$로 annealing 온도가 (Tm) 다소 낮게 설정되었다. 그러므로 검출되지 않은 NRPS gene을 가진 균주와 CBT635, CBT654와 같이 약한 PCR band의 형성은 새로 제작된 primer의 낮은 Tm 기인한다고 생각되어진다. Tm의 이론적인 값은 Tm ={(G+C)*4+(A+T)*2}의 식을 통해서 정방향 primer에서 54$^{\circ}C$ 역방향 primer에서 42$^{\circ}C$로 계산되었다. 새로운 degenerate primer에 의해서 MTF2/MTR2로 검출되지 않는 6개의 균주가 더 검출되었으며, A3/A7과 MTF2/MTR2를 이용한 통합 PCR Screening을 통해서 NRPS gene 검출에 특이성과 효율성을 높일 수 있다.

Streptomyces Cytochrome P450 Enzymes and Their Roles in the Biosynthesis of Macrolide Therapeutic Agents

  • Cho, Myung-A;Han, Songhee;Lim, Young-Ran;Kim, Vitchan;Kim, Harim;Kim, Donghak
    • Biomolecules & Therapeutics
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    • 제27권2호
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    • pp.127-133
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    • 2019
  • The study of the genus Streptomyces is of particular interest because it produces a wide array of clinically important bioactive molecules. The genomic sequencing of many Streptomyces species has revealed unusually large numbers of cytochrome P450 genes, which are involved in the biosynthesis of secondary metabolites. Many macrolide biosynthetic pathways are catalyzed by a series of enzymes in gene clusters including polyketide and non-ribosomal peptide synthesis. In general, Streptomyces P450 enzymes accelerate the final, post-polyketide synthesis steps to enhance the structural architecture of macrolide chemistry. In this review, we discuss the major Streptomyces P450 enzymes research focused on the biosynthetic processing of macrolide therapeutic agents, with an emphasis on their biochemical mechanisms and structural insights.

Siderophore Biosynthesis and Transport Systems in Model and Pathogenic Fungi

  • Sohyeong Choi;James W. Kronstad;Won Hee Jung
    • Journal of Microbiology and Biotechnology
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    • 제34권8호
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    • pp.1551-1562
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    • 2024
  • Fungi employ diverse mechanisms for iron uptake to ensure proliferation and survival in iron-limited environments. Siderophores are secondary metabolite small molecules with a high affinity specifically for ferric iron; these molecules play an essential role in iron acquisition in fungi and significantly influence fungal physiology and virulence. Fungal siderophores, which are primarily hydroxamate types, are synthesized via non-ribosomal peptide synthetases (NRPS) or NRPS-independent pathways. Following synthesis, siderophores are excreted, chelate iron, and are transported into the cell by specific cell membrane transporters. In several human pathogenic fungi, siderophores are pivotal for virulence, as inhibition of their synthesis or transport significantly reduces disease in murine models of infection. This review briefly highlights siderophore biosynthesis and transport mechanisms in fungal pathogens as well the model fungi Saccharomyces cerevisiae and Schizosaccharomyces pombe. Understanding siderophore biosynthesis and transport in pathogenic fungi provides valuable insights into fungal biology and illuminates potential therapeutic targets for combating fungal infections.

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.

해양 해면체로부터 분리한 세균으로 항알러지성물질을 생산하는 Bacillus safensis KCTC 12796BP의 유전체 해독 (The complete genome sequence of a marine sponge-associated bacteria, Bacillus safensis KCTC 12796BP, which produces the anti-allergic compounds)

  • 한 응엔 판 기우;김수희;김금진;최혁재;남두현
    • 미생물학회지
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    • 제54권4호
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    • pp.448-452
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    • 2018
  • 제주도 성산리 앞 바다 속 해면체로부터 분리한 Bacillus safensis KCTC 12796BP의 유전체를 분석하였다. 그 결과 3,935,874 bp의 환형 염색체와 36,690 bp의 plasmid 염기 서열을 확인하였다. 염색체는 G + C 함량이 41.4%로 75개의 위유 전자를 포함한 3,980개의 코딩 서열을, plasmid는 G + C 함량이 37.3%로 36개의 코딩 서열을 포함하고 있었다. 염색체 코딩 서열 중에는 81개의 tRNA 유전자, 24개 rRNA 유전자와 1개의 tmRNA 유전자가 있었다. 또한 포자 생성에 필요한 30개의 유전자, 포자피를 지령하는 16개의 유전자, 그리고 발아에 필요한 20개의 유전자도 발견되었다. 이외에 협막 다당체 생합성에 필요한 유전자와 편모 생합성 및 주화성에 필요한 유전자, 그리고 염 내성에 필요한 glycine-choline betaine 수송체에 관한 유전자도 존재하였다. 무엇보다도 항알러지활성을 보이는 이차대사산물 seongsanamide의 생합성을 지령하는 비리보좀성 펩타이드 합성효소 유전자를 확인할 수 있었다.

적조 살상 해양 미생물 Hahella chejuensis의 유전체 구조 (Lessons from the Sea : Genome Sequence of an Algicidal Marine Bacterium Hahella chehuensis)

  • 정해영;윤성호;이홍금;오태광;김지현
    • 한국미생물·생명공학회지
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    • 제34권1호
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    • pp.1-6
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    • 2006
  • Harmful algal blooms (HABs or red tides), caused by uncontrolled proliferation of marine phytoplankton, impose a severe environmental problem and occasionally threaten even public health. We sequenced the genome of an EPS-producing marine bacterium Hahella chejuensis that produces a red pigment with the lytic activity against red-tide dinoflagellates at parts per billion level. H. chejuensis is the first sequenced species among algicidal bacteria as well as in the order Oceanospirillales. Sequence analysis indicated a distant relationship to the Pseudomonas group. Its 7.2-megabase genome encodes basic metabolic functions and a large number of proteins involved in regulation or transport. One of the prominent features of the H. chejuensis genome is a multitude of genes of functional equivalence or of possible foreign origin. A significant proportion (${\sim}23%$) of the genome appears to be of foreign origin, i.e. genomic islands, which encode genes for biosynthesis of exopolysaccharides, toxins, polyketides or non-ribosomal peptides, iron utilization, motility, type III protein secretion and pigment production. Molecular structure of the algicidal pigment was determined to be prodigiosin by LC-ESI-MS/MS and NMR analyses. The genomics-based research on H. chejuensis opens a new possibility for controlling algal blooms by exploiting biotic interactions in the natural environment and provides a model in marine bioprospecting through genome research.

북극 지의류 Cladonia종에서 분리한 Caballeronia sordidicola균주 PAMC 26577의 유전체 서열 분석 (Genome sequence of Caballeronia sordidicola strain PAMC 26577 isolated from Cladonia sp., an Arctic lichen species)

  • 양정안;홍순규;오현명
    • 미생물학회지
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    • 제53권2호
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    • pp.141-143
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    • 2017
  • Caballeronia sordidicola 균주 PAMC 26577은 다산 기지 근처에서 채집된 지의류인 Cladonia 종에서 분리되었다. Illumina 방식으로 분석한 균주 PAMC 26577의 초안 유전체 서열은 182개의 콘티그로 이루어졌으며, N50값은 159,226 염기쌍 길이에 해당하였다. 초안 유전체로 총 8,334,211 염기쌍을 확인하였으며, 59.4% G+C 함량을 나타냈다. 유전체는 단백질을 코드하지 않는 8개의 rRNA 유전자와 51개의 tRNA 유전자를 포함하였다. 8,065개의 단백질 유전자는 기본 대사 과정뿐 아니라 부탄올/부티르산 생합성, 폴리하이드록시부티르산 대사, serine cycle methylotrophy 및 글라이코겐 대사 유전자들을 가지고 있었다. 2백개 이상의 막 전달 단백질은, 인산화 전달 시스템과 TRAP 전달시스템이 부재하였다. PAMC 26577은 CRISPR 관련 서열 및 단백질이 없었으며, 파아지 유전자의 감염흔적으로 인한 11개의 파아지 관련 유전자를 찾아낼 수 있었다.

Evolutionary Explanation for Beauveria bassiana Being a Potent Biological Control Agent Against Agricultural Pests

  • Han, Jae-Gu
    • 한국균학회소식:학술대회논문집
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    • 한국균학회 2014년도 춘계학술대회 및 임시총회
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    • pp.27-28
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    • 2014
  • Beauveria bassiana (Cordycipitaceae, Hypocreales, Ascomycota) is an anamorphic fungus having a potential to be used as a biological control agent because it parasitizes a wide range of arthropod hosts including termites, aphids, beetles and many other insects. A number of bioactive secondary metabolites (SMs) have been isolated from B. bassiana and functionally verified. Among them, beauvericin and bassianolide are cyclic depsipeptides with antibiotic and insecticidal effects belonging to the enniatin family. Non-ribosomal peptide synthetases (NRPSs) play a crucial role in the synthesis of these secondary metabolites. NRPSs are modularly organized multienzyme complexes in which each module is responsible for the elongation of proteinogenic and non-protein amino acids, as well as carboxyl and hydroxyacids. A minimum of three domains are necessary for one NRPS elongation module: an adenylation (A) domain for substrate recognition and activation; a tholation (T) domain that tethers the growing peptide chain and the incoming aminoacyl unit; and a condensation (C) domain to catalyze peptide bond formation. Some of the optional domains include epimerization (E), heterocyclization (Cy) and oxidation (Ox) domains, which may modify the enzyme-bound precursors or intermediates. In the present study, we analyzed genomes of B. bassiana and its allied species in Hypocreales to verify the distribution of NRPS-encoding genes involving biosynthesis of beauvericin and bassianolide, and to unveil the evolutionary processes of the gene clusters. Initially, we retrieved completely or partially assembled genomic sequences of fungal species belonging to Hypocreales from public databases. SM biosynthesizing genes were predicted from the selected genomes using antiSMASH program. Adenylation (A) domains were extracted from the predicted NRPS, NRPS-like and NRPS-PKS hybrid genes, and used them to construct a phylogenetic tree. Based on the preliminary results of SM biosynthetic gene prediction in B. bassiana, we analyzed the conserved gene orders of beauvericin and bassianolide biosynthetic gene clusters among the hypocrealean fungi. Reciprocal best blast hit (RBH) approach was performed to identify the regions orthologous to the biosynthetic gene cluster in the selected fungal genomes. A clear recombination pattern was recognized in the inferred A-domain tree in which A-domains in the 1st and 2nd modules of beauvericin and bassianolide synthetases were grouped in CYCLO and EAS clades, respectively, suggesting that two modules of each synthetase have evolved independently. In addition, inferred topologies were congruent with the species phylogeny of Cordycipitaceae, indicating that the gene fusion event have occurred before the species divergence. Beauvericin and bassianolide synthetases turned out to possess identical domain organization as C-A-T-C-A-NM-T-T-C. We also predicted precursors of beauvericin and bassianolide synthetases based on the extracted signature residues in A-domain core motifs. The result showed that the A-domains in the 1st module of both synthetases select D-2-hydroxyisovalerate (D-Hiv), while A-domains in the 2nd modules specifically activate L-phenylalanine (Phe) in beauvericin synthetase and leucine (Leu) in bassianolide synthetase. antiSMASH ver. 2.0 predicted 15 genes in the beauvericin biosynthetic gene cluster of the B. bassiana genome dispersed across a total length of approximately 50kb. The beauvericin biosynthetic gene cluster contains beauvericin synthetase as well as kivr gene encoding NADPH-dependent ketoisovalerate reductase which is necessary to convert 2-ketoisovalarate to D-Hiv and a gene encoding a putative Gal4-like transcriptional regulator. Our syntenic comparison showed that species in Cordycipitaceae have almost conserved beauvericin biosynthetic gene cluster although the gene order and direction were sometimes variable. It is intriguing that there is no region orthologous to beauvericin synthetase gene in Cordyceps militaris genome. It is likely that beauvericin synthetase was present in common ancestor of Cordycipitaceae but selective gene loss has occurred in several species including C. militaris. Putative bassianolide biosynthetic gene cluster consisted of 16 genes including bassianolide synthetase, cytochrome P450 monooxygenase, and putative Gal4-like transcriptional regulator genes. Our synteny analysis found that only B. bassiana possessed a bassianolide synthetase gene among the studied fungi. This result is consistent with the groupings in A-domain tree in which bassianolide synthetase gene found in B. bassiana was not grouped with NRPS genes predicted in other species. We hypothesized that bassianolide biosynthesizing cluster genes in B. bassiana are possibly acquired by horizontal gene transfer (HGT) from distantly related fungi. The present study showed that B. bassiana is the only species capable of producing both beauvericin and bassianolide. This property led to B. bassiana infect multiple hosts and to be a potential biological control agent against agricultural pests.

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