Evaluating the outcomes of submerged co-cultivation: production of lovastatin and other secondary metabolites by Aspergillus terreus in fungal co-cultures

被引:0
|
作者
Tomasz Boruta
Iwona Milczarek
Marcin Bizukojc
机构
[1] Lodz University of Technology,Faculty of Process and Environmental Engineering, Department of Bioprocess Engineering
来源
关键词
Secondary metabolites; Lovastatin; Co-culture; Submerged cultivation;
D O I
暂无
中图分类号
学科分类号
摘要
The goal of the study was to compare the production of secondary metabolites by Aspergillus terreus ATCC 20542 under the conditions of submerged mono- and co-cultivation. The suggested experimental scheme encompassed a diverse set of co-culture initiation strategies differing mostly with respect to the development stage of tested fungal strains at the moment of their confrontation. Three species of filamentous fungi exhibiting distinct patterns of morphological evolution under submerged conditions, namely Penicillium rubens, Chaetomium globosum, and Mucor racemosus, were selected as the co-cultivation partners of A. terreus. The choice of the co-cultivated species and the approach of co-culture triggering noticeably influenced the levels of lovastatin (mevinolinic acid), (+)-geodin, asterric acid, and butyrolactone I in the broth. Even though the evaluated co-cultures did not lead to the increased titers of lovastatin relative to standard monocultures, the biosynthesis of the remaining three metabolites was either enhanced or inhibited depending on the experimental variant. The production of butyrolactone I turned out to be particularly affected by the presence of C. globosum. Interestingly, in the A. terreus/C. globosum co-cultures, the decrease of lovastatin concentration was recorded. According to the most probable scenario, lovastatin was in this case converted to monacolin J acid, a polyketide molecule that may be applied as a substrate for the synthesis of statin drugs. The study revealed that the spores of two distinct fungal species, namely A. terreus and C. globosum, co-agglomerate under submerged conditions to form pellets. Finally, the biosynthetic performance of co-cultures involving four fungal species was evaluated.
引用
收藏
页码:5593 / 5605
页数:12
相关论文
共 50 条
  • [41] Impact of elicitors (alginate, Bacillus cereus, and cholesterol) on the production of secondary metabolite (lovastatin, (+)-geodin, and sulochrin) by Aspergillus terreus ATCC 20542 during submerged fermentation
    Zaini, Nurul Solehah Mohd
    Hasan, Hanan
    Abbas, Ali
    Montoya, Alejandro
    Rahim, Muhamad Hafiz Abd
    BIOCATALYSIS AND AGRICULTURAL BIOTECHNOLOGY, 2024, 55
  • [42] Developing co-cultures of bacterial isolates from the bryozoan Cristatella mucedo for the discovery of novel secondary metabolites
    Marquez, Tocino, I
    Zhel, M.
    Pjevac, P.
    Kirkegaard, R.
    Flieder, M.
    Loy, A.
    Rattei, T.
    Zotchev, S.
    PLANTA MEDICA, 2022, 88 (15) : 1438 - 1438
  • [43] Co-Cultivation of Fungal and Microalgal Cells as an Efficient System for Harvesting Microalgal Cells, Lipid Production and Wastewater Treatment
    Wrede, Digby
    Taha, Mohamed
    Miranda, Ana F.
    Kadali, Krishna
    Stevenson, Trevor
    Ball, Andrew S.
    Mouradov, Aidyn
    PLOS ONE, 2014, 9 (11):
  • [44] Induced production of defensive secondary metabolites from Aspergillus fumigatiaffinis by co-culture with Aspergillus alabamensis
    Hu, Zhibo
    Cui, Haishan
    Wang, Qiang
    Li, Cheng
    Chen, Senhua
    Gao, Zhizeng
    Liu, Lan
    Peng, Bo
    Li, Jing
    PHYTOCHEMISTRY, 2024, 225
  • [45] Search for novel metabolites in fungal endophytes: study of Phomopsis sp and Colletotrichum sp co-cultivation and Botryosphaeria mamane epigenetic modification
    Triastuti, A.
    Vansteelandt, M.
    Barakat, F.
    Jargeat, P.
    Rieusset, L.
    Fabre, N.
    Amasifuen, C.
    Valentin, A.
    Haddad, M.
    PLANTA MEDICA, 2016, 82
  • [46] Enhanced biodiesel production through phyco-myco co-cultivation of Chlorella minutissima and Aspergillus awamori: An integrated approach
    Dash, Archana
    Banerjee, Rintu
    BIORESOURCE TECHNOLOGY, 2017, 238 : 502 - 509
  • [47] Induction of antimicrobial, antioxidant metabolites production by co-cultivation of two red-sea-sponge-associated Aspergillus sp. CO2 and Bacillus sp. COBZ21
    Ahmed A. Hamed
    Mosad A. Ghareeb
    Ayda K. Kelany
    Mohamed Abdelraof
    Hoda A. Kabary
    Nariman R. Soliman
    Mohamed E. Elawady
    BMC Biotechnology, 24
  • [48] Induction of antimicrobial, antioxidant metabolites production by co-cultivation of two red-sea-sponge-associated Aspergillus sp. CO2 and Bacillus sp. COBZ21
    Hamed, Ahmed A.
    Ghareeb, Mosad A.
    Kelany, Ayda K.
    Abdelraof, Mohamed
    Kabary, Hoda A.
    Soliman, Nariman R.
    Elawady, Mohamed E.
    BMC BIOTECHNOLOGY, 2024, 24 (01)
  • [49] Enhanced biovalorization of palm biomass wastes as biodiesel feedstocks through integrated solid-state and submerged fermentations by fungal co-cultures
    Intasit, Rawitsara
    Cheirsilp, Benjamas
    Louhasakul, Yasmi
    Thongchul, Nuttha
    BIORESOURCE TECHNOLOGY, 2023, 380
  • [50] Inducing secondary metabolite production by the soil-dwelling fungus Aspergillus terreus through bacterial co-culture
    Chen, Huiqin
    Daletos, Georgios
    Abdel-Aziz, Mohamed S.
    Thomy, Dhana
    Dai, Haofu
    Broetz-Oesterhelt, Heike
    Lin, Wenhan
    Proksch, Peter
    PHYTOCHEMISTRY LETTERS, 2015, 12 : 35 - 41