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Research ArticleExperimental Studies

Further Quantitative Structure–Cytotoxicity Relationship Analysis of 3-Styrylchromones

KOICHI TAKAO, KAORI HOSHI, HIROSHI SAKAGAMI, HAIXIA SHI, KENJIRO BANDOW, JUNKO NAGAI, YOSHIHIRO UESAWA, AKITO TOMOMURA, MINEKO TOMOMURA and YOSHIAKI SUGITA
Anticancer Research January 2020, 40 (1) 87-95; DOI: https://doi.org/10.21873/anticanres.13929
KOICHI TAKAO
1Department of Pharmaceutical Sciences, Faculty of Pharmacy and Pharmaceutical Sciences, Josai University, Saitama, Japan
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KAORI HOSHI
1Department of Pharmaceutical Sciences, Faculty of Pharmacy and Pharmaceutical Sciences, Josai University, Saitama, Japan
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HIROSHI SAKAGAMI
2Meikai University Research Institute of Odontology (M-RIO), Saitama, Japan
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  • For correspondence: sakagami{at}dent.meikai.ac.jp
HAIXIA SHI
2Meikai University Research Institute of Odontology (M-RIO), Saitama, Japan
3Shanghai Ninth People's Hospital, Shanghai Jiatong University School of Medicine, Shanghai, P.R. China
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KENJIRO BANDOW
4Division of Biochemistry, Meikai University School of Dentistry, Saitama, Japan
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JUNKO NAGAI
5Department of Medical Molecular Informatics, Meiji Pharmaceutical University, Tokyo, Japan
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YOSHIHIRO UESAWA
5Department of Medical Molecular Informatics, Meiji Pharmaceutical University, Tokyo, Japan
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AKITO TOMOMURA
4Division of Biochemistry, Meikai University School of Dentistry, Saitama, Japan
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MINEKO TOMOMURA
6Department of Oral Health Sciences, Meikai University School of Sciences, Chiba, Japan
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YOSHIAKI SUGITA
1Department of Pharmaceutical Sciences, Faculty of Pharmacy and Pharmaceutical Sciences, Josai University, Saitama, Japan
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Abstract

Background/Aim: Very few studies are available about the biological activity of 3-styrylchromones. Our previous study demonstrated the importance of methoxy group at 6-position of the chromone ring and hydroxyl group at 4’-position of phenyl group in styryl moiety. As a sequel of this study, we synthesized fourteen compounds that include eight 3-styrylchromones where methoxy group was introduced at 7-position of chromone rings, and then evaluated their tumor-specificity. Materials and Methods: Tumor-specificity (TS) was calculated by relative cytotoxicity against human oral squamous cell carcinoma cell lines versus human normal oral cells. Apoptosis induction and growth arrest were monitored by cell-cycle analysis. Quantitative structure–activity relationship analysis of TS was performed with 3,167 chemical descriptors. Results and Discussion: Two compounds, 7-methoxy-3-[(1E)-2-phenylethenyl]-4H-1-benzopyran-4-one [7] and 3-[(1E)-2-(4-hydroxyphenyl)ethenyl]-7-methoxy-4H-1-benzopyran-4-one [14] showed higher tumor-specificity than doxorubicin and 5-FU, suggesting the importance of methoxy group in 7-position of the chromone ring. These compounds induced the apoptosis and mitotic arrest in HSC-2 cells. The tumor-specificity of 3-styrylchromone derivatives were most correlated with descriptors for molecule shape and electronic charge. The present study suggested that modification by introducing methoxy group at 7-position, instead at 6-position, further increased the tumor-specificity of 3-styrylchromone.

  • 3-Styrylchromones
  • methoxy group
  • cytotoxicity
  • tumor-specificity
  • QSAR analysis
  • cell cycle analysis
  • molecular shape
  • Received November 20, 2019.
  • Revision received November 26, 2019.
  • Accepted December 2, 2019.
  • Copyright© 2020, International Institute of Anticancer Research (Dr. George J. Delinasios), All rights reserved
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Further Quantitative Structure–Cytotoxicity Relationship Analysis of 3-Styrylchromones
KOICHI TAKAO, KAORI HOSHI, HIROSHI SAKAGAMI, HAIXIA SHI, KENJIRO BANDOW, JUNKO NAGAI, YOSHIHIRO UESAWA, AKITO TOMOMURA, MINEKO TOMOMURA, YOSHIAKI SUGITA
Anticancer Research Jan 2020, 40 (1) 87-95; DOI: 10.21873/anticanres.13929

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Further Quantitative Structure–Cytotoxicity Relationship Analysis of 3-Styrylchromones
KOICHI TAKAO, KAORI HOSHI, HIROSHI SAKAGAMI, HAIXIA SHI, KENJIRO BANDOW, JUNKO NAGAI, YOSHIHIRO UESAWA, AKITO TOMOMURA, MINEKO TOMOMURA, YOSHIAKI SUGITA
Anticancer Research Jan 2020, 40 (1) 87-95; DOI: 10.21873/anticanres.13929
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Keywords

  • 3-styrylchromones
  • methoxy group
  • cytotoxicity
  • tumor-specificity
  • QSAR analysis
  • cell cycle analysis
  • molecular shape
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