Escherichia coli BL21(DE3) optimized deletion mutant as the host for whole-cell biotransformation of N‑acetyl‑d‑neuraminic acid
N ‑Acetyl‑ d ‑neuraminic acid (Neu5Ac) is the crucial compound for the chemical synthesis of antiflu medicine Zanamivir. Chemoenzymatic synthesis of Neu5Ac involves N -acetyl- d -glucosamine 2-epimerase (AGE)-catalyzed epimerization of N -acetyl- d -glucosamine (GlcNAc) to N -acetyl- d -mannosamine...
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Veröffentlicht in: | Biotechnology letters 2023-12, Vol.45 (11-12), p.1521-1528 |
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Sprache: | eng |
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Zusammenfassung: | N
‑Acetyl‑
d
‑neuraminic acid (Neu5Ac) is the crucial compound for the chemical synthesis of antiflu medicine Zanamivir. Chemoenzymatic synthesis of Neu5Ac involves
N
-acetyl-
d
-glucosamine 2-epimerase (AGE)-catalyzed epimerization of
N
-acetyl-
d
-glucosamine (GlcNAc) to
N
-acetyl-
d
-mannosamine (ManNAc), and aldolase-catalyzed condensation between ManNAc and pyruvate. Host optimization plays an important role in the whole-cell biotransformation of value-added compounds. In this study, via single-plasmid biotransformation system, we showed that the AGE gene
BT0453
, cloned from human gut microorganism
Bacteroides thetaiotaomicron
VPI-5482, showed the highest biotransformation yield among the AGE genes tested; and there is no clear Neu5Ac yield difference between the
BT0453
coupled with one aldolase coding
nanA
gene and two
nanA
genes. Next,
Escherichia coli
chromosomal genes involved in substrate degradation, product exportation and pH change were deleted via recombineering and CRISPR/Cas9. With the final
E. coli
BL21(DE3) Δ
nanA
Δ
nag
Δ
poxB
as host, a significant 16.5% yield improvement was obtained. Furthermore, precursor (pyruvate) feeding resulted in 3.2% yield improvement, reaching 66.8% molar biotransformation. The result highlights the importance of host optimization, and set the stage for further metabolic engineering of whole-cell biotransformation of Neu5Ac. |
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ISSN: | 0141-5492 1573-6776 |
DOI: | 10.1007/s10529-023-03426-3 |