Cargando…

Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells

This research aimed to determine the target protein and molecular mechanism of trans-(±)-kusunokinin ((±)-KU) derivatives (trans-(±)-ARC and trans-(±)-TTPG-B). Molecular docking was used to predict potential synthesized (±)-KU targets among 22 proteins. The (±)-TTPG-B bound HSP90α better than EC44,...

Descripción completa

Detalles Bibliográficos
Autores principales: Rattanaburee, Thidarath, Chompunud Na Ayudhya, Chompunud, Thongpanchang, Tienthong, Tipmanee, Varomyalin, Graidist, Potchanapond
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650166/
https://www.ncbi.nlm.nih.gov/pubmed/37959760
http://dx.doi.org/10.3390/molecules28217342
_version_ 1785135718196051968
author Rattanaburee, Thidarath
Chompunud Na Ayudhya, Chompunud
Thongpanchang, Tienthong
Tipmanee, Varomyalin
Graidist, Potchanapond
author_facet Rattanaburee, Thidarath
Chompunud Na Ayudhya, Chompunud
Thongpanchang, Tienthong
Tipmanee, Varomyalin
Graidist, Potchanapond
author_sort Rattanaburee, Thidarath
collection PubMed
description This research aimed to determine the target protein and molecular mechanism of trans-(±)-kusunokinin ((±)-KU) derivatives (trans-(±)-ARC and trans-(±)-TTPG-B). Molecular docking was used to predict potential synthesized (±)-KU targets among 22 proteins. The (±)-TTPG-B bound HSP90α better than EC44, native (±)-KU and (-)-KU, and (±)-KU and (−)-ARC. In contrast, (−)-ARC bound PI3K more strongly than any other test compound. CSF1R and AKR1B1 were not supposed to be the target of (±)-TTPG-B and (±)-ARC, unlike native (±)-KU. The (±)-TTPG-B bound Tyr139 and Trp162 of HSP90α. Moreover, (−)-ARC bound PI3K via hydrogen bonds and π-π stacking at distinct amino acids, which was different from the other tested compounds. Using half of the IC(50) concentration, (±)-TTPG-B, (±)-KU and (±)-ARC enhanced cell cycle arrest at the G0/G1 phase after 12 h and 24 h on KKU-M213 (CCA) cells. The (±)-TTPG-B showed a stronger inhibitory effect than (±)-ARC and (±)-KU on HSP90α, PI3K, HSP90β, c-Myc, AKT, MEK1, CyclinB1, CyclinD1, and CDK1 for 24 and 48 h after treatment with the same concentration (0.015 µM). Thus, trans-(±)-TTPG-B, a newly synthesized compound, has pharmacological potential for development as a target therapy for CCA treatment.
format Online
Article
Text
id pubmed-10650166
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106501662023-10-30 Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells Rattanaburee, Thidarath Chompunud Na Ayudhya, Chompunud Thongpanchang, Tienthong Tipmanee, Varomyalin Graidist, Potchanapond Molecules Article This research aimed to determine the target protein and molecular mechanism of trans-(±)-kusunokinin ((±)-KU) derivatives (trans-(±)-ARC and trans-(±)-TTPG-B). Molecular docking was used to predict potential synthesized (±)-KU targets among 22 proteins. The (±)-TTPG-B bound HSP90α better than EC44, native (±)-KU and (-)-KU, and (±)-KU and (−)-ARC. In contrast, (−)-ARC bound PI3K more strongly than any other test compound. CSF1R and AKR1B1 were not supposed to be the target of (±)-TTPG-B and (±)-ARC, unlike native (±)-KU. The (±)-TTPG-B bound Tyr139 and Trp162 of HSP90α. Moreover, (−)-ARC bound PI3K via hydrogen bonds and π-π stacking at distinct amino acids, which was different from the other tested compounds. Using half of the IC(50) concentration, (±)-TTPG-B, (±)-KU and (±)-ARC enhanced cell cycle arrest at the G0/G1 phase after 12 h and 24 h on KKU-M213 (CCA) cells. The (±)-TTPG-B showed a stronger inhibitory effect than (±)-ARC and (±)-KU on HSP90α, PI3K, HSP90β, c-Myc, AKT, MEK1, CyclinB1, CyclinD1, and CDK1 for 24 and 48 h after treatment with the same concentration (0.015 µM). Thus, trans-(±)-TTPG-B, a newly synthesized compound, has pharmacological potential for development as a target therapy for CCA treatment. MDPI 2023-10-30 /pmc/articles/PMC10650166/ /pubmed/37959760 http://dx.doi.org/10.3390/molecules28217342 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rattanaburee, Thidarath
Chompunud Na Ayudhya, Chompunud
Thongpanchang, Tienthong
Tipmanee, Varomyalin
Graidist, Potchanapond
Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title_full Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title_fullStr Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title_full_unstemmed Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title_short Trans-(±)-TTPG-B Attenuates Cell Cycle Progression and Inhibits Cell Proliferation on Cholangiocarcinoma Cells
title_sort trans-(±)-ttpg-b attenuates cell cycle progression and inhibits cell proliferation on cholangiocarcinoma cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650166/
https://www.ncbi.nlm.nih.gov/pubmed/37959760
http://dx.doi.org/10.3390/molecules28217342
work_keys_str_mv AT rattanabureethidarath transttpgbattenuatescellcycleprogressionandinhibitscellproliferationoncholangiocarcinomacells
AT chompunudnaayudhyachompunud transttpgbattenuatescellcycleprogressionandinhibitscellproliferationoncholangiocarcinomacells
AT thongpanchangtienthong transttpgbattenuatescellcycleprogressionandinhibitscellproliferationoncholangiocarcinomacells
AT tipmaneevaromyalin transttpgbattenuatescellcycleprogressionandinhibitscellproliferationoncholangiocarcinomacells
AT graidistpotchanapond transttpgbattenuatescellcycleprogressionandinhibitscellproliferationoncholangiocarcinomacells