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1.
Metab Eng ; 77: 76-88, 2023 05.
Artículo en Inglés | MEDLINE | ID: mdl-36948241

RESUMEN

Candida viswanathii is a promising cell factory for producing dodecanedioic acid (DDA) and other long chain dicarboxylic acids. However, metabolic engineering of C. viswanathii is difficult partly due to the lack of synthetic biology toolkits. Here we developed CRISPR-based approaches for rational genome and metabolic engineering of C. viswanathii. We first optimized the CRISPR system and protocol to promote the homozygous gene integration efficiency to >60%. We also designed a split CRISPR system for one-step integration of multiple genes into C. viswanathii. We uncovered that co-expression of CYP52A19, CPRb and FAO2 that catalyze different steps in the biotransformation enhances DDA production and abolishes accumulation of intermediates. We also unveiled that co-expression of additional enzyme POS5 further promotes DDA production and augments cell growth. We harnessed the split CRISPR system to co-integrate these 4 genes (13.6 kb) into C. viswanathii and generated a stable strain that doubles the DDA titer (224 g/L), molar conversion (83%) and productivity (1.87 g/L/h) when compared with the parent strain. This study altogether identifies appropriate enzymes/promoters to augment dodecane conversion to DDA and implicates the potential of split CRISPR system for metabolic engineering of C. viswanathii.


Asunto(s)
Candida , Ingeniería Metabólica , Candida/genética , Candida/metabolismo , Ácidos Dicarboxílicos/metabolismo , Sistemas CRISPR-Cas
2.
ACS Synth Biol ; 9(5): 1138-1149, 2020 05 15.
Artículo en Inglés | MEDLINE | ID: mdl-32298581

RESUMEN

FDCA (2,5-furandicarboxylic acid) can be enzymatically converted from HMF (5-hydroxymethylfurfural). Pseudomonas putida S12 is promising for FDCA production, but generating stable P. putida S12 is difficult due to its polyploidy and lack of genome engineering tools. Here we showed that coupling CRISPR and λ-Red recombineering enabled one-step gene integration with high efficiency and frequency, and simultaneously replaced endogenous genes in all chromosomes. Using this approach, we generated two stable P. putida S12 strains expressing HMF/furfural oxidoreductase (HMFH) and HMF oxidase (HMFO), both being able to convert 50 mM HMF to ≈42-43 mM FDCA in 24 h. Cosupplementation of MnO2 and CaCO3 to the medium drastically improved the cell tolerance to HMF and enhanced FDCA production. Cointegrating HMFH and HMFT1 (HMF transporter) genes further improved FDCA production, enabling the cells to convert 250 mM HMF to 196 mM (30.6 g/L) FDCA in 24 h. This study implicates the potentials of CRISPR for generating stable P. putida S12 strains for FDCA production.


Asunto(s)
Repeticiones Palindrómicas Cortas Agrupadas y Regularmente Espaciadas/genética , Ácidos Dicarboxílicos/metabolismo , Furanos/metabolismo , Ingeniería Metabólica/métodos , Pseudomonas putida/metabolismo , Aldehído Reductasa/genética , Carbonato de Calcio/química , Cromatografía Líquida de Alta Presión , Ácidos Dicarboxílicos/análisis , Ácidos Dicarboxílicos/química , Furanos/análisis , Furanos/química , Dosificación de Gen , Edición Génica , Compuestos de Manganeso/química , Óxidos/química , Oxidorreductasas/genética , Plásmidos/genética , Plásmidos/metabolismo , Pseudomonas putida/química , Pseudomonas putida/genética
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