Glekas Panayiotis D, Martzoukou Olga, Mastrodima Maria-Eleni, Zarkadoulas Efstathios, Kanakoglou Dimitrios S, Kekos Dimitris, Pachnos Michalis, Mavridis George, Mamma Diomi, Hatzinikolaou Dimitris G
Enzyme and Microbial Biotechnology Unit, Department of Biology, National and Kapodistrian University of Athens, Zografou Campus, 15784 Athens, Greece.
Department of Biological Chemistry, Medical School, National and Kapodistrian University of Athens, 75 Mikras Asias Street, 11527 Athens, Greece.
AIMS Microbiol. 2022 Dec 15;8(4):484-506. doi: 10.3934/microbiol.2022032. eCollection 2022.
Sustainable biodesulfurization (BDS) processes require the use of microbial biocatalysts that display high activity against the recalcitrant heterocyclic sulfur compounds and can simultaneously withstand the harsh conditions of contact with petroleum products, inherent to any industrial biphasic BDS system. In this framework, the functional microbial BDS-related diversity in a naturally oil-exposed ecosystem, was examined through a 4,6-dimethyl-dibenzothiophene based enrichment process. Two new sp. strains were isolated, which during a medium optimization process revealed a significantly enhanced BDS activity profile when compared to the model strain IGTS8. In biocatalyst stability studies conducted in biphasic mode using partially hydrodesulfurized diesel under various process conditions, the new strains also presented an enhanced stability phenotype. In these studies, it was also demonstrated for all strains, that the BDS activity losses were decoupled from the overall cells' viability, in addition to the fact that the use of whole-broth biocatalyst positively affected BDS performance.
可持续生物脱硫(BDS)工艺需要使用对难降解的杂环硫化合物具有高活性且能同时耐受与石油产品接触的苛刻条件的微生物生物催化剂,这是任何工业双相BDS系统所固有的。在此框架下,通过基于4,6-二甲基二苯并噻吩的富集过程,研究了天然油暴露生态系统中与功能性微生物BDS相关的多样性。分离出了两株新的菌株,在培养基优化过程中,与模型菌株IGTS8相比,它们显示出显著增强的BDS活性谱。在使用部分加氢脱硫柴油在各种工艺条件下以双相模式进行的生物催化剂稳定性研究中,新菌株也表现出增强的稳定性表型。在这些研究中,还证明了对于所有菌株,除了使用全发酵液生物催化剂对BDS性能有积极影响这一事实外,BDS活性损失与整个细胞的活力是解耦的。