Exploration of diverse secondary metabolites from Penicillium brasilianum by co-culturing with Armillaria mellea

被引:1
作者
Rong, Xiaoting [1 ]
Zhang, Lihua [2 ]
He, Wenni [1 ]
Guo, Zhe [1 ]
Lv, Hui [1 ]
Bai, Jinglin [1 ]
Yu, Liyan [1 ]
Zhang, Lixin [3 ]
Zhang, Tao [1 ]
机构
[1] Chinese Acad Med Sci & Peking Union Med Coll, Inst Med Biotechnol, Beijing 100050, Peoples R China
[2] Tianjin Univ Tradit Chinese Med, Inst Tradit Chinese Med, Natl Key Lab Chinese Med Modernizat, State Key Lab Component Based Chinese Med, Tianjin 301617, Peoples R China
[3] East China Univ Sci & Technol, State Key Lab Bioreactor Engn, Shanghai 200237, Peoples R China
基金
中国国家自然科学基金;
关键词
Co-culture; Penicillium brasilianum; Armillaria mellea; Secondary metabolites; Sesquiterpenes; GENE-CLUSTER; CHEMICAL DIVERSITY; ACID; BIOSYNTHESIS; IDENTIFICATION; STREPTOMYCES; EXPRESSION; DISCOVERY; LEADS;
D O I
10.1007/s00253-024-13282-4
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Bioinformatic analysis revealed that the genomes of ubiquitous Penicillium spp. might carry dozens of biosynthetic gene clusters (BGCs), yet many clusters have remained uncharacterized. In this study, a detailed investigation of co-culture fermentation including the basidiomycete Armillaria mellea CPCC 400891 and the P. brasilianum CGMCC 3.4402 enabled the isolation of five new compounds including two bisabolene-type sesquiterpenes (arpenibisabolanes A and B), two carotane-type sesquiterpenes (arpenicarotanes A and B), and one polyketide (arpenichorismite A) along with seven known compounds. The assignments of their structures were deduced by the extensive analyses of detailed spectroscopic data, electronic circular dichroism spectra, together with delimitation of the biogenesis. Most new compounds were not detected in monocultures under the same fermentation conditions. Arpenibisabolane A represents the first example of a 6/5-fused bicyclic bisabolene. The bioassay of these five new compounds exhibited no cytotoxic activities in vitro against three human cancer cell lines (A549, MCF-7, and HepG2). Moreover, sequence alignments and bioinformatic analysis to other metabolic pathways, two BGCs including Pb-bis and Pb-car, responsible for generating sesquiterpenoids from co-culture were identified, respectively. Furthermore, based on the chemical structures and deduced gene functions of the two clusters, a hypothetic metabolic pathway for biosynthesizing induced sesquiterpenoids was proposed. These results demonstrated that the co-culture approach would facilitate bioprospecting for new metabolites even from the well-studied microbes. Our findings would provide opportunities for further understanding of the biosynthesis of intriguing sesquiterpenoids via metabolic engineering strategies.
引用
收藏
页数:14
相关论文
共 62 条
  • [1] Expanding the chemical diversity of an endophytic fungus Bulgaria inquinans, an ascomycete associated with mistletoe, through an OSMAC approach
    Ariantari, Ni P.
    Daletos, Georgios
    Mandi, Attila
    Kurtan, Tibor
    Muller, Werner E. G.
    Lin, Wenhan
    Ancheeva, Elena
    Proksch, Peter
    [J]. RSC ADVANCES, 2019, 9 (43) : 25119 - 25132
  • [2] UniProt: the Universal Protein Knowledgebase in 2023
    Bateman, Alex
    Martin, Maria-Jesus
    Orchard, Sandra
    Magrane, Michele
    Ahmad, Shadab
    Alpi, Emanuele
    Bowler-Barnett, Emily H.
    Britto, Ramona
    Cukura, Austra
    Denny, Paul
    Dogan, Tunca
    Ebenezer, ThankGod
    Fan, Jun
    Garmiri, Penelope
    Gonzales, Leonardo Jose da Costa
    Hatton-Ellis, Emma
    Hussein, Abdulrahman
    Ignatchenko, Alexandr
    Insana, Giuseppe
    Ishtiaq, Rizwan
    Joshi, Vishal
    Jyothi, Dushyanth
    Kandasaamy, Swaathi
    Lock, Antonia
    Luciani, Aurelien
    Lugaric, Marija
    Luo, Jie
    Lussi, Yvonne
    MacDougall, Alistair
    Madeira, Fabio
    Mahmoudy, Mahdi
    Mishra, Alok
    Moulang, Katie
    Nightingale, Andrew
    Pundir, Sangya
    Qi, Guoying
    Raj, Shriya
    Raposo, Pedro
    Rice, Daniel L.
    Saidi, Rabie
    Santos, Rafael
    Speretta, Elena
    Stephenson, James
    Totoo, Prabhat
    Turner, Edward
    Tyagi, Nidhi
    Vasudev, Preethi
    Warner, Kate
    Watkins, Xavier
    Zellner, Hermann
    [J]. NUCLEIC ACIDS RESEARCH, 2023, 51 (D1) : D523 - D531
  • [3] Secrets of the subterranean pathosystem of Armillaria
    Baumgartner, Kendra
    Coetzee, Martin P. A.
    Hoffmeister, Dirk
    [J]. MOLECULAR PLANT PATHOLOGY, 2011, 12 (06) : 515 - 534
  • [4] Insights into Penicillium brasilianum Secondary Metabolism and Its Biotechnological Potential
    Bazioli, Jaqueline Moraes
    Amaral, Luciana Da Silva
    Fill, Taicia Pacheco
    Rodrigues-Filho, Edson
    [J]. MOLECULES, 2017, 22 (06):
  • [5] Metabolite induction via microorganism co-culture: A potential way to enhance chemical diversity for drug discovery
    Bertrand, Samuel
    Bohni, Nadine
    Schnee, Sylvain
    Schumpp, Olivier
    Gindro, Katia
    Wolfender, Jean-Luc
    [J]. BIOTECHNOLOGY ADVANCES, 2014, 32 (06) : 1180 - 1204
  • [6] Biologically Active Secondary Metabolites from the Fungi
    Bills, Gerald F.
    Gloer, James B.
    [J]. MICROBIOLOGY SPECTRUM, 2016, 4 (06):
  • [7] The antiSMASH database version 2: a comprehensive resource on secondary metabolite biosynthetic gene clusters
    Blin, Kai
    Andreu, Victoria Pascal
    de los Santos, Emmanuel L. C.
    Del Carratore, Francesco
    Lee, Sang Yup
    Medema, Marnix H.
    Weber, Tilmann
    [J]. NUCLEIC ACIDS RESEARCH, 2019, 47 (D1) : D625 - D630
  • [8] Bode HB, 2002, CHEMBIOCHEM, V3, P619, DOI 10.1002/1439-7633(20020703)3:7<619::AID-CBIC619>3.0.CO
  • [9] 2-9
  • [10] Fungal secretomes - nature's toolbox for white biotechnology
    Bouws, Henning
    Wattenberg, Andreas
    Zorn, Holger
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2008, 80 (03) : 381 - 388