Open Access
Oxygen mediated oxidative couplings of flavones in alkaline water
Xin Yang
1
,
Sophie Hui Min Lim
1
,
Jiachen Lin
1
,
Jie Wu
2, 3
,
Haidi Tang
2, 3
,
Fengyue Zhao
4
,
Fang Liu
4
,
Cheng-hua Sun
5
,
Xiangcheng Shi
2
,
Yulong Kuang
2
,
Joanne Yi Hui Toy
1
,
Ke Du
1
,
Yuannian Zhang
1
,
Xiang Wang
1
,
Mingtai Sun
1
,
Zhixuan Song
1
,
Tian Wang
2
,
Jien Wu
2
,
K. N. Houk
6
,
Dejian Huang
1, 3
3
National University of Singapore (Suzhou) Research Institute, Suzhou, China
|
Publication type: Journal Article
Publication date: 2022-10-28
scimago Q1
wos Q1
SJR: 4.761
CiteScore: 23.4
Impact factor: 15.7
ISSN: 20411723
PubMed ID:
36307433
General Chemistry
General Biochemistry, Genetics and Molecular Biology
Multidisciplinary
General Physics and Astronomy
Abstract
Catalyzed oxidative C-C bond coupling reactions play an important role in the chemical synthesis of complex natural products of medicinal importance. However, the poor functional group tolerance renders them unfit for the synthesis of naturally occurring polyphenolic flavones. We find that molecular oxygen in alkaline water acts as a hydrogen atom acceptor and oxidant in catalyst-free (without added catalyst) oxidative coupling of luteolin and other flavones. By this facile method, we achieve the synthesis of a small collection of flavone dimers and trimers including naturally occurring dicranolomin, philonotisflavone, dehydrohegoflavone, distichumtriluteolin, and cyclodistichumtriluteolin. Mechanistic studies using both experimental and computational chemistry uncover the underlying reasons for optimal pH, oxygen availability, and counter-cations that define the success of the reaction. We expect our reaction opens up a green and sustainable way to synthesize flavonoid dimers and oligomers using the readily available monomeric flavonoids isolated from biomass and exploiting their use for health care products and treatment of diseases. Catalysed oxidative C-C bond formation reactions are important in the synthesis of natural products, but poorly tolerated by polyphenolic flavones. Here the authors report the reactivity of molecular oxygen in alkaline water without added catalyst for the synthesis of a collection of flavone dimers and trimers.
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17
Total citations:
17
Citations from 2024:
14
(82.36%)
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GOST
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Yang X. et al. Oxygen mediated oxidative couplings of flavones in alkaline water // Nature Communications. 2022. Vol. 13. No. 1. 6424
GOST all authors (up to 50)
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Yang X., Lim S. H. M., Lin J., Wu J., Tang H., Zhao F., Liu F., Sun C., Shi X., Kuang Y., Toy J. Y. H., Du K., Zhang Y., Wang X., Sun M., Song Z., Wang T., Wu J., Houk K. N., Huang D. Oxygen mediated oxidative couplings of flavones in alkaline water // Nature Communications. 2022. Vol. 13. No. 1. 6424
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RIS
Copy
TY - JOUR
DO - 10.1038/s41467-022-34123-w
UR - https://doi.org/10.1038/s41467-022-34123-w
TI - Oxygen mediated oxidative couplings of flavones in alkaline water
T2 - Nature Communications
AU - Yang, Xin
AU - Lim, Sophie Hui Min
AU - Lin, Jiachen
AU - Wu, Jie
AU - Tang, Haidi
AU - Zhao, Fengyue
AU - Liu, Fang
AU - Sun, Cheng-hua
AU - Shi, Xiangcheng
AU - Kuang, Yulong
AU - Toy, Joanne Yi Hui
AU - Du, Ke
AU - Zhang, Yuannian
AU - Wang, Xiang
AU - Sun, Mingtai
AU - Song, Zhixuan
AU - Wang, Tian
AU - Wu, Jien
AU - Houk, K. N.
AU - Huang, Dejian
PY - 2022
DA - 2022/10/28
PB - Springer Nature
IS - 1
VL - 13
PMID - 36307433
SN - 2041-1723
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2022_Yang,
author = {Xin Yang and Sophie Hui Min Lim and Jiachen Lin and Jie Wu and Haidi Tang and Fengyue Zhao and Fang Liu and Cheng-hua Sun and Xiangcheng Shi and Yulong Kuang and Joanne Yi Hui Toy and Ke Du and Yuannian Zhang and Xiang Wang and Mingtai Sun and Zhixuan Song and Tian Wang and Jien Wu and K. N. Houk and Dejian Huang},
title = {Oxygen mediated oxidative couplings of flavones in alkaline water},
journal = {Nature Communications},
year = {2022},
volume = {13},
publisher = {Springer Nature},
month = {oct},
url = {https://doi.org/10.1038/s41467-022-34123-w},
number = {1},
pages = {6424},
doi = {10.1038/s41467-022-34123-w}
}