Enhancing polypropylene bioconversion and lipogenesis by Yarrowia lipolytica using a chemical/biological hybrid process

2021 ◽  
Vol 332 ◽  
pp. 94-102
Author(s):  
Merhawi Mihreteab ◽  
Bryan A. Stubblefield ◽  
Eric S. Gilbert
Planta Medica ◽  
2006 ◽  
Vol 72 (11) ◽  
Author(s):  
O Gortzi ◽  
S Papanikolaou ◽  
S Lalas ◽  
M Galiotou-Panayotou ◽  
P Mitliaga

Desalination ◽  
2021 ◽  
Vol 507 ◽  
pp. 114938
Author(s):  
Yangbo Qiu ◽  
Yayue Lv ◽  
Cong Tang ◽  
Junbin Liao ◽  
Huimin Ruan ◽  
...  

Author(s):  
Mehadi Aman ◽  
Yujiro Takeda ◽  
Kazuatsu Ito ◽  
Kaoru Yamamoto ◽  
Kohei Tanaka ◽  
...  

LWT ◽  
2021 ◽  
pp. 111760
Author(s):  
Samantha Rossi ◽  
Luigi Parrotta ◽  
Stefano Del Duca ◽  
Marco Dalla Rosa ◽  
Francesca Patrignani ◽  
...  

Author(s):  
Tamás Hergert ◽  
Béla Mátravölgyi ◽  
Róbert Örkényi ◽  
János Éles ◽  
Ferenc Faigl

AbstractA three-step batch-flow hybrid process has been developed for an expeditious synthesis of the enynol key intermediate of antifungal terbinafine. This procedure involves consecutive organometallic steps without the necessity of any in-line purification: after a metalation by n-butyllithium, a selective addition of the lithium salt was elaborated followed by a Grignard reaction resulting in a high yield of 6,6-dimethylhept-1-en-4-yn-3-ol. Moreover, as an alternative to tetrahydrofuran, cyclopentyl methyl ether was used as solvent implementing a safe, sustainable, yet selective synthetic process. Even on a laboratory-scale, the optimized batch-flow hybrid process had a theoretical throughput of 41 g/h. Furthermore, the newly developed process provides an efficient synthesis route to the key-intermediate, while making acrolein obsolete, minimizing side-products, and enabling safe and convenient scale-up.


Fermentation ◽  
2021 ◽  
Vol 7 (2) ◽  
pp. 88
Author(s):  
Paulina Snopek ◽  
Dorota Nowak ◽  
Bartłomiej Zieniuk ◽  
Agata Fabiszewska

Yarrowia lipolytica is one of the most studied non-conventional forms of yeast, exhibiting a high secretory capacity and producing many industrially important and valuable metabolites. The yeast conceals a great biotechnological potential to synthesize organic acids, sweeteners, microbial oil, or fragrances. The vast majority of bioprocesses are carried out in bioreactors, where suitable culture conditions are provided. In the current study, the effect of agitation speed (200–600 rpm) and air flow rate (0.0375–2.0 dm3/(dm3 × min)) on the biomass yield and lipase activity of Y. lipolytica KKP 379 is analyzed in a growth medium containing waste fish oil. The increase of aeration intensity limited the period of oxygen deficit in the medium. Simultaneously, an increase in lipolytic activity was observed from 2.09 U/cm3 to 14.21 U/cm3; however, an excessive agitation speed likely caused oxidative or shear stresses, and a reduction in lipolytic activity was observed. Moreover, it is confirmed that the synthesis of lipases is related to oxygen consumption, pH, and the yeast growth phase, and appropriate process selection may provide two advantages, namely, the maximum use of the waste carbon source and the production of lipolytic enzymes that are valuable in many industries.


2021 ◽  
pp. 124659
Author(s):  
Satish Kommoji ◽  
M. Gopinath ◽  
Polinati Satya Sagar ◽  
D. Yuvaraj ◽  
J. Iyyappan ◽  
...  

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