| Literature DB >> 34065782 |
Tao Wang1, Lingyu Li1,2, Weibing Zhuang1, Fengjiao Zhang1, Xiaochun Shu1, Ning Wang1, Zhong Wang1.
Abstract
Taxol is one of the most effective anticancer drugs in the world that is widely used in the treatments of breast, lung and ovarian cancer. The elucidation of the taxol biosynthetic pathway is the key to solve the problem of taxol supply. So far, the taxol biosynthetic pathway has been reported to require an estimated 20 steps of enzymatic reactions, and sixteen enzymes involved in the taxol pathway have been well characterized, including a novel taxane-10β-hydroxylase (T10βOH) and a newly putative β-phenylalanyl-CoA ligase (PCL). Moreover, the source and formation of the taxane core and the details of the downstream synthetic pathway have been basically depicted, while the modification of the core taxane skeleton has not been fully reported, mainly concerning the developments from diol intermediates to 2-debenzoyltaxane. The acylation reaction mediated by specialized Taxus BAHD family acyltransferases (ACTs) is recognized as one of the most important steps in the modification of core taxane skeleton that contribute to the increase of taxol yield. Recently, the influence of acylation on the functional and structural diversity of taxanes has also been continuously revealed. This review summarizes the latest research advances of the taxol biosynthetic pathway and systematically discusses the acylation reactions supported by Taxus ACTs. The underlying mechanism could improve the understanding of taxol biosynthesis, and provide a theoretical basis for the mass production of taxol.Entities:
Keywords: acylation reaction; acyltransferase; biosynthetic pathway; latest research progress; taxol
Year: 2021 PMID: 34065782 PMCID: PMC8151764 DOI: 10.3390/molecules26102855
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Putative taxol biosynthetic pathway. (A) The source and formation of the taxane core. (B) The modification of the core taxane skeleton. (C) The synthesis of the β-phenylalanyl-CoA side chain and the assembly of taxol. The solid arrows show the identified steps. The dotted arrows show the unknown steps. Steps marked by red color represent the uncharacterized enzymatic reactions. Dotted frame represents intermediate steps of the pathway where several enzymes and the order of their reactions are unknown.
Characterized key enzymes in the taxol pathway.
| Enzyme Abbreviation | Size (kDa) | Probable Localization | GenBank Number |
|---|---|---|---|
| Geranylgeranyl diphosphate synthase GGPPS | 42 | Plastids | AF081514 |
| Taxadiene synthase TS | 98 | Plastids | AY364469 |
| Taxadiene-5α-hydroxylase T5αOH | 56 | Endoplasmic reticulum | AY289209 |
| Taxane-10β-hydroxylase T10βOH | 56 | Endoplasmic reticulum | AF318211 |
| Taxane-10β-hydroxylase a T10βOH | 55 | Endoplasmic reticulum | AY563635 |
| Taxadiene-13α-hydroxylase T13αOH | 54 | Endoplasmic reticulum | AY056019 |
| Taxane-2α-hydroxylase T2αOH | 55 | Endoplasmic reticulum | AY518383 |
| Taxane-9α-hydroxylase T9αOH | 55 | Endoplasmic reticulum | KF773141 |
| Taxane-7β-hydroxylase T7βOH | 56 | Endoplasmic reticulum | AY307951 |
| Taxadiene-5α-ol- | 49 | Cytosol | AF190130 |
| Taxane-2α- | 50 | Cytosol | AF297618 |
| 10-deacetylbaccatin III-10- | 49 | Cytosol | AF193765 |
| Baccatin III: 3-amino, 13-phenylpropanoyltransferase BAPT | 50 | Cytosol | AY082804 |
| 49 | Cytosol | AF466397 | |
| Phenylalanine aminomutase PAM | 76 | Cytosol | AY582743 |
| β-phenylalanyl-CoA ligase b PCL | 59 | Cytosol | KM593667 |
a A second taxane-10β-hydroxylase has also been found; b The PCL listed here is a putative candidate isolated from T. baccata cultures.
Figure 2Putative intermediate steps of the taxol pathway. (A) T2αOH- and T7βOH-mediated hydroxylation reactions. (B) T9αOH-mediated hydroxylation reaction in Ginkgo biloba cells.
Figure 3Outline of the synthesis and utilization of 2-debenzoyl-7,13-diacetylbaccatin III. Step a and step b indicate the synthetic pathway of 2-debenzoyl-7,13-diacetylbaccatin III from 10-deacetylbaccatin III. Step c indicates the reaction catalyzed by TBT in the presence of benzoyl-CoA.
Figure 4The enzyme DBTNBT catalyzes the surrogate substrate N-debenzoyl-(3′RS)-2′-deoxytaxol with benzoyl-CoA to form 2′-deoxytaxol.