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Biocatalytic cascade to polysaccharide amination

  • Xuebin Feng
  • , Siyi Hong
  • , Hongbo Zhao
  • , Thu V. Vuong
  • , Emma R. Master*
  • *Tämän työn vastaava kirjoittaja
  • University of Toronto
  • University of Helsinki

Tutkimustuotos: LehtiartikkeliArticleScientificvertaisarvioitu

3 Sitaatiot (Scopus)
119 Lataukset (Pure)

Abstrakti

Background: Chitin, the main form of aminated polysaccharide in nature, is a biocompatible, polycationic, and antimicrobial biopolymer used extensively in industrial processes. Despite the abundance of chitin, applications thereof are hampered by difficulties in feedstock harvesting and limited structural versatility. To address these problems, we proposed a two-step cascade employing carbohydrate oxidoreductases and amine transaminases for plant polysaccharide aminations via one-pot reactions. Using a galactose oxidase from Fusarium graminearum for oxidation, this study compared the performance of CvATA (from Chromobacterium violaceum) and SpATA (from Silicibacter pomeroyi) on a range of oxidized carbohydrates with various structures and sizes. Using a rational enzyme engineering approach, four point mutations were introduced on the SpATA surface, and their effects on enzyme activity were evaluated. Results: Herein, a quantitative colorimetric assay was developed to enable simple and accurate time-course measurement of the yield of transamination reactions. With higher operational stability, SpATA produced higher product yields in 36 h reactions despite its lower initial activity. Successful amination of oxidized galactomannan by SpATA was confirmed using a deuterium labeling method; higher aminated carbohydrate yields achieved with SpATA compared to CvATA were verified using HPLC and XPS. By balancing the oxidase and transaminase loadings, improved operating conditions were identified where the side product formation was largely suppressed without negatively impacting the product yield. SpATA mutants with multiple alanine substitutions besides E407A showed improved product yield. The E407A mutation reduced SpATA activity substantially, supporting its predicted role in maintaining the dimeric enzyme structure. Conclusions: Using oxidase–amine transaminase cascades, the study demonstrated a fully enzymatic route to polysaccharide amination. Although the activity of SpATA may be further improved via enzyme engineering, the low operational stability of characterized amine transaminases, as a result of low retention of PMP cofactors, was identified as a key factor limiting the yield of the designed cascade. To increase the process feasibility, future efforts to engineer improved SpATA variants should focus on improving the cofactor affinity, and thus the operational stability of the enzyme. Graphical Abstract: (Figure presented.).

AlkuperäiskieliEnglanti
Artikkeli34
Sivumäärä15
JulkaisuBiotechnology for Biofuels and Bioproducts
Vuosikerta17
Numero1
DOI - pysyväislinkit
TilaJulkaistu - 27 helmik. 2024
OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

Rahoitus

This work was conducted with funding from the NSERC CREATE for BioZone project (Grant # 528163), the NSERC Alliance “BioMax” project (Grant # ALLRP 570676-2021), and the Academy of Finland COCOA project (Grant # 308996 and 308997).

YK:n kestävän kehityksen tavoitteet

Tämä tuotos edistää seuraavia kestävän kehityksen tavoitteita:

  1. SDG 12 – Vastuullinen kulutus ja tuotanto
    SDG 12 – Vastuullinen kulutus ja tuotanto

Sormenjälki

Sukella tutkimusaiheisiin 'Biocatalytic cascade to polysaccharide amination'. Ne muodostavat yhdessä ainutlaatuisen sormenjäljen.
  • Oksidoreduktaasien valjastaminen oligosakkaridien aktivointiin

    Master, E. (Vastuullinen johtaja), Karppi, J. (Projektin jäsen), Ioannou, E. (Projektin jäsen) & Mollerup, F. (Projektin jäsen)

    01/09/201731/12/2020

    Projekti: Academy of Finland: Other research funding

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