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Patrinoside and Patrinoside A from Patrinia scabiosaefolia Improve Insulin Resistance by Inhibiting NF-κB, MAPK Pathways and Oxidative Stress in RAW264.7 and 3 T3-L1 Cells

Тип публикацииJournal Article
Дата публикации2023-01-24
scimago Q1
SJR1.673
CiteScore16.9
Impact factor
ISSN19420900, 19420994
Biochemistry
General Medicine
Cell Biology
Aging
Краткое описание

Patrinia scabiosaefolia, as traditional food and medicine plant, was used to treat appendicitis, enteritis, and hepatitis for thousand years in China. Patrinoside and patrinoside A isolated from P. scabiosaefolia could significantly improve insulin resistance (IR) by activating PI-3 K/AKT signaling pathway in our previous study. Since IR is closely related to inflammation, their anti-inflammatory activities in RAW264.7 inflammatory model induced by LPS and in 3 T3-L1 IR inflammatory model induced by TNF-α were evaluated to identify whether the effects on improving IR related to anti-inflammatory activity. In RAW264.7 cells, patrinoside and patrinoside A significantly inhibited the transcription and secretion of inflammatory mediators NO, TNF-α, and IL-6. Western blot analysis showed that the significant inhibition of phosphorylation of IκB and P65 and P38, ERK and JNK suggested that the effects were exerted through NF-κB pathway and MAPK pathway. In 3 T3-L1 cells, patrinoside and patrinoside A also inhibited the activation of NF-κB and MAPK pathways through inhibiting the transcriptions of inflammatory cytokines IL-6 and chemokines MCP-1 and MIP-1α. These events resulted in the inhibition of macrophages migration to adipocytes. In addition, patrinoside and patrinoside A ameliorated oxidative stress by inhibiting ROS release in LPS-stimulated RAW264.7 cells. In conclusion, patrinoside and patrinoside A could active PI-3 K/AKT pathway, inhibit NF-κB pathway, MAPK pathway, and improve oxidative stress, which showed multipathways on improving IR. These results provided the scientific basis for material basis and mechanism on improving IR of P. scabiosaefolia.

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European Journal of Pharmacology
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Liu Z. et al. Patrinoside and Patrinoside A from Patrinia scabiosaefolia Improve Insulin Resistance by Inhibiting NF-κB, MAPK Pathways and Oxidative Stress in RAW264.7 and 3 T3-L1 Cells // Oxidative Medicine and Cellular Longevity. 2023. Vol. 2023. pp. 1-16.
ГОСТ со всеми авторами (до 50) Скопировать
Liu Z., Wang M., Liu Y., Ren M., Xi X., Li S., Kang W. Patrinoside and Patrinoside A from Patrinia scabiosaefolia Improve Insulin Resistance by Inhibiting NF-κB, MAPK Pathways and Oxidative Stress in RAW264.7 and 3 T3-L1 Cells // Oxidative Medicine and Cellular Longevity. 2023. Vol. 2023. pp. 1-16.
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TY - JOUR
DO - 10.1155/2023/9069645
UR - https://doi.org/10.1155/2023/9069645
TI - Patrinoside and Patrinoside A from Patrinia scabiosaefolia Improve Insulin Resistance by Inhibiting NF-κB, MAPK Pathways and Oxidative Stress in RAW264.7 and 3 T3-L1 Cells
T2 - Oxidative Medicine and Cellular Longevity
AU - Liu, Zhenhua
AU - Wang, Mengke
AU - Liu, Yuhang
AU - Ren, Mengjie
AU - Xi, Xuefeng
AU - Li, Shiming
AU - Kang, Wenyi
PY - 2023
DA - 2023/01/24
PB - Hindawi Limited
SP - 1-16
VL - 2023
PMID - 36733419
SN - 1942-0900
SN - 1942-0994
ER -
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@article{2023_Liu,
author = {Zhenhua Liu and Mengke Wang and Yuhang Liu and Mengjie Ren and Xuefeng Xi and Shiming Li and Wenyi Kang},
title = {Patrinoside and Patrinoside A from Patrinia scabiosaefolia Improve Insulin Resistance by Inhibiting NF-κB, MAPK Pathways and Oxidative Stress in RAW264.7 and 3 T3-L1 Cells},
journal = {Oxidative Medicine and Cellular Longevity},
year = {2023},
volume = {2023},
publisher = {Hindawi Limited},
month = {jan},
url = {https://doi.org/10.1155/2023/9069645},
pages = {1--16},
doi = {10.1155/2023/9069645}
}