TY - JOUR
T1 - Low Molar Mass Dextran
T2 - One-Step Synthesis With Dextransucrase by Site-Directed Mutagenesis and its Potential of Iron-Loading
AU - Wang, Tingting
AU - Jiang, Zhiming
AU - Wang, Yiya
AU - Wu, Hao
AU - Fang, Yan
AU - Dong, Weiliang
AU - Wu, Bin
AU - Ma, Jiangfeng
AU - Jiang, Min
N1 - Publisher Copyright:
© Copyright © 2021 Wang, Jiang, Wang, Wu, Fang, Dong, Wu, Ma and Jiang.
PY - 2021/9/9
Y1 - 2021/9/9
N2 - Iron dextran is a common anti-anemia drug, and it requires low molar mass dextran as substrate. In this work, we selected 11 amino acid residues in domain A/B of DSR-MΔ2 within a 5-angstrom distance from sucrose for site-directed mutagenesis by molecular docking. Mutation of Q634 did not affect the enzyme catalytic activity, but showed an obvious impact on the ratio of low molecular weight dextran (L-dextran, 3,000–5,000 Da) and relatively higher molecular weight dextran (H-dextran, around 10,000 Da). L-dextran was the main product synthesized by DSR-MΔ2 Q634A, and its average molecular weight was 3,951 Da with a polydispersity index <1.3. The structural characterization of this homopolysaccharide revealed that it was a dextran, with 86.0% α(1→6) and 14.0% α(1→4) glycosidic linkages. Moreover, L-dextran was oxidized with NaOH and chelated with ferric trichloride, and an OL-dextran-iron complex was synthesized with a high iron-loading potential of 33.5% (w/w). Altogether, mutation of amino acids near the sucrose binding site of dextransucrase can affect the chain elongation process, making it possible to modulate dextran size.
AB - Iron dextran is a common anti-anemia drug, and it requires low molar mass dextran as substrate. In this work, we selected 11 amino acid residues in domain A/B of DSR-MΔ2 within a 5-angstrom distance from sucrose for site-directed mutagenesis by molecular docking. Mutation of Q634 did not affect the enzyme catalytic activity, but showed an obvious impact on the ratio of low molecular weight dextran (L-dextran, 3,000–5,000 Da) and relatively higher molecular weight dextran (H-dextran, around 10,000 Da). L-dextran was the main product synthesized by DSR-MΔ2 Q634A, and its average molecular weight was 3,951 Da with a polydispersity index <1.3. The structural characterization of this homopolysaccharide revealed that it was a dextran, with 86.0% α(1→6) and 14.0% α(1→4) glycosidic linkages. Moreover, L-dextran was oxidized with NaOH and chelated with ferric trichloride, and an OL-dextran-iron complex was synthesized with a high iron-loading potential of 33.5% (w/w). Altogether, mutation of amino acids near the sucrose binding site of dextransucrase can affect the chain elongation process, making it possible to modulate dextran size.
KW - GH70 family
KW - dextransucrase
KW - iron dextran
KW - low molar mass dextran
KW - site-directed mutagenesis
UR - http://www.scopus.com/inward/record.url?scp=85115681857&partnerID=8YFLogxK
U2 - 10.3389/fbioe.2021.747602
DO - 10.3389/fbioe.2021.747602
M3 - 文章
AN - SCOPUS:85115681857
SN - 2296-4185
VL - 9
JO - Frontiers in Bioengineering and Biotechnology
JF - Frontiers in Bioengineering and Biotechnology
M1 - 747602
ER -