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Identification of novel Nrf2 activators from Cinnamomum chartophyllum H.W. Li and their potential application of preventing oxidative insults in human lung epithelial cells

Authors :
Ai-Ling Li
Xiao-Ning Wang
Ming-Xing Zhou
Bin Sun
Yan-Ru Li
Xue-Sen Wen
Tao Shen
Guo-Hui Li
Hong-Xiang Lou
Dong-Mei Ren
Xu Youwei
Source :
Redox Biology, Redox Biology, Vol 14, Iss, Pp 154-163 (2018)
Publication Year :
2017

Abstract

Human lung tissue, directly exposed to the environmental oxidants and toxicants, is apt to be harmed to bring about acute or chronic oxidative insults. The nuclear factor erythroid 2-related factor 2 (Nrf2) represents a central cellular defense mechanism, and is a target for developing agents against oxidative insult-induced human lung diseases. Our previous study found that the EtOH extract of Cinnamomum chartophyllum protected human bronchial epithelial cells against oxidative insults via Nrf2 activation. In this study, a systemic phytochemical investigation of the aerial parts of C. chartophyllum led to the isolation of thirty chemical constituents, which were further evaluated for their Nrf2 inducing potential using NAD(P)H: quinone reductase (QR) assay. Among these purified constituents, a sesquiterpenoid bearing α, β-unsaturated ketone group, 3S-(+)-9-oxonerolidol (NLD), and a diphenyl sharing phenolic groups, 3, 3′, 4, 4′-tetrahydroxydiphenyl (THD) significantly activated Nrf2 and its downstream genes, NAD(P)H quinone oxidoreductase 1 (NQO-1), and γ-glutamyl cysteine synthetase (γ-GCS), and enhanced the nuclear translocation and stabilization of Nrf2 in human lung epithelial cells. Importantly, NLD and THD had no toxicities under the Nrf2 inducing doses. THD also demonstrated a potential of interrupting Nrf2-Keap1 protein–protein interaction (PPI). Furthermore, NLD and THD protected human lung epithelial cells against sodium arsenite [As(III)]-induced cytotoxicity. Taken together, we conclude that NLD and THD are two novel Nrf2 activators with potential application of preventing acute and chronic oxidative insults in human lung tissue.<br />Graphical abstract fx1<br />Highlights • The chemical compositions of Cinnamomum chartophyllum are firstly identified. • The active ingredients supporting the biological functions of C. chartophyllum are verified. • NLD and THD are identified to be Nrf2 activators for the first time. • NLD and THD protect human lung epithelial cells against As(III)-induced cytotoxicity.

Subjects

Subjects :
0301 basic medicine
Sodium arsenite
Clinical Biochemistry
medicine.disease_cause
MTT, 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazoliumbromide
Biochemistry
Nrf2, nuclear factor erythroid 2-related factor 2
GST, glutathione S-transferase
CC, column chromatography
EB, ethidium bromide
chemistry.chemical_compound
Mice
0302 clinical medicine
SF, sulforaphane
NAD(P)H Dehydrogenase (Quinone)
QR, NAD(P)H: quinone reductase
Cytotoxicity
lcsh:QH301-705.5
NQO1, NAD(P)H: quinone oxidoreductase
HO-1, heme oxygenase-1
DAPI, 6-diamidino-2-phenylindole
Nrf2 activator
lcsh:R5-920
Chemistry
respiratory system
Sodium Compounds
Biphenyl compound
Molecular Docking Simulation
Keap1, Kelch-like ECH-associated protein 1
030220 oncology & carcinogenesis
lcsh:Medicine (General)
Sesquiterpenes
Research Paper
AO, acridine orange
Arsenites
Cell Survival
NF-E2-Related Factor 2
Glutamate-Cysteine Ligase
PPI, protein–protein interaction
ARE, antioxidant response element
Oxidative phosphorylation
Protective Agents
Cell Line
Arsenic
RNS, reactive nitrogen species
03 medical and health sciences
ROS, reactive oxygen species
CHX, cycloheximide
medicine
Animals
Humans
THD, 3, 3′, 4, 4′-tetrahydroxydiphenyl
Cinnamomum
Binding Sites
Cinnamomum chartophyllum
Plant Extracts
Organic Chemistry
Biphenyl Compounds
As(III), sodium arsenite
γ-GCS, γ-glutamylcysteine synthetase
Epithelial Cells
Plant Components, Aerial
NLD, 3S-(+)-9-oxonerolidol
Molecular biology
Protein Structure, Tertiary
Oxidative Stress
030104 developmental biology
lcsh:Biology (General)
COPD, chronic obstructive pulmonary disease
Oxidative insult
Cell culture
NAD+ kinase
Oxidative stress

Details

ISSN :
22132317
Volume :
14
Database :
OpenAIRE
Journal :
Redox biology
Accession number :
edsair.doi.dedup.....dca663df452f6a9ecc3d01d7c1525665