TY - JOUR
T1 - Construction of a UDP-Arabinose Regeneration System for Efficient Arabinosylation of Pentacyclic Triterpenoids
AU - Sun, Qiuyan
AU - Guo, Fang
AU - Ren, Shichao
AU - Zhang, Liang
AU - Liu, Xinhe
AU - Li, Chun
AU - Feng, Xudong
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/8/18
Y1 - 2023/8/18
N2 - Glycosylation is an important method of modifying natural products and is usually catalyzed by uridine 5′-diphosphate (UDP)-glycosyltransferase. UDP-β-l-arabinose (UDP-Ara) confers specific functions to natural products such as pentacyclic triterpenoids. However, UDP-arabinosyltransferase with high regioselectivity toward pentacyclic triterpenoids has rarely been reported. In addition, UDP-Ara is mainly biosynthesized from UDP-α-d-glucose (UDP-Glc) through several reaction steps, resulting in the high cost of UDP-Ara. Herein, UGT99D1 was systematically characterized for specifically transferring one moiety of arabinose to the C-3 position of typical pentacyclic triterpenoids. Subsequently, 15 enzymes from plants, mammals, and microorganisms were characterized, and a four-enzyme cascade comprising sucrose synthase, UDP-Glc dehydrogenase, UDP-α-d-glucuronic acid decarboxylase, and UDP-Glc 4-epimerase was constructed to transform sucrose into UDP-Ara with UDP recycling. This system was demonstrated to efficiently produce the arabinosylated derivative (Ara-BA) of typical pentacyclic triterpenoid betulinic acid (BA). Finally, the in vitro cytotoxicity tests indicated that Ara-BA showed much higher anticancer activities than BA. The established arabinosylation platform shows the potential to enhance the pharmacological activity of natural products.
AB - Glycosylation is an important method of modifying natural products and is usually catalyzed by uridine 5′-diphosphate (UDP)-glycosyltransferase. UDP-β-l-arabinose (UDP-Ara) confers specific functions to natural products such as pentacyclic triterpenoids. However, UDP-arabinosyltransferase with high regioselectivity toward pentacyclic triterpenoids has rarely been reported. In addition, UDP-Ara is mainly biosynthesized from UDP-α-d-glucose (UDP-Glc) through several reaction steps, resulting in the high cost of UDP-Ara. Herein, UGT99D1 was systematically characterized for specifically transferring one moiety of arabinose to the C-3 position of typical pentacyclic triterpenoids. Subsequently, 15 enzymes from plants, mammals, and microorganisms were characterized, and a four-enzyme cascade comprising sucrose synthase, UDP-Glc dehydrogenase, UDP-α-d-glucuronic acid decarboxylase, and UDP-Glc 4-epimerase was constructed to transform sucrose into UDP-Ara with UDP recycling. This system was demonstrated to efficiently produce the arabinosylated derivative (Ara-BA) of typical pentacyclic triterpenoid betulinic acid (BA). Finally, the in vitro cytotoxicity tests indicated that Ara-BA showed much higher anticancer activities than BA. The established arabinosylation platform shows the potential to enhance the pharmacological activity of natural products.
KW - UDP-arabinose regeneration system
KW - UDP-glycosyltransferase
KW - betulinic acid
KW - glycosylation
KW - natural product
KW - pentacyclic triterpenoid
UR - http://www.scopus.com/inward/record.url?scp=85166773019&partnerID=8YFLogxK
U2 - 10.1021/acssynbio.3c00351
DO - 10.1021/acssynbio.3c00351
M3 - Article
C2 - 37473419
AN - SCOPUS:85166773019
SN - 2161-5063
VL - 12
SP - 2463
EP - 2474
JO - ACS Synthetic Biology
JF - ACS Synthetic Biology
IS - 8
ER -