1.A new cyclopeptide from Selaginella tamariscina.
Xin-Jia YAN ; Jing WEN ; Yang SONG ; Dong-Mei SHA ; Ma-Li-Niu SHA ; Shao-Shan ZHANG ; Yuan LIU
China Journal of Chinese Materia Medica 2022;47(16):4391-4394
One new cyclopeptide was isolated from the ethyl acetate fraction of the 75% EtOH extract of Selaginella tamariscina by various column chromatography methods(HP-20, polyamide and semi-preparative HPLC). Its structure was identified as selapeptin A(1) by extensive spectroscopic analysis(HR-ESI-MS, 1 D and 2 D NMR). Compound 1 was evaluated for cytotoxic activities by MTT assay. It showed potent cytotoxic activity against B16 F10 with the inhibition rate of 51.57%±4.34% at 40 μmol·L~(-1) while had no impacts on MDA-MB-231 and MDA-MB-468 at 100 μmol·L~(-1).
Chromatography, High Pressure Liquid
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Magnetic Resonance Spectroscopy
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Molecular Structure
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Peptides, Cyclic/pharmacology*
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Selaginellaceae/chemistry*
2.Research progress on chemical constituents,pharmacological activities,and quality control of Patrinia villosa.
Yu FAN ; Dong-Mei SHA ; Ma-Li-Niu SHA ; Jian-Long LAN ; Lai-Yue-Bu HAI ; Bie-Jun-Zhang QU ; Xin-Jia YAN ; Yuan LIU
China Journal of Chinese Materia Medica 2022;47(22):6005-6019
Patrinia villosa, regarding its functions in clearing heat and detoxification and eliminating carbuncles and pus, is widely used as a traditional medicinal herb that contains rich nutrition and substances such as various amino acids, vitamins, and soluble su-gar, and it is also an edible wild herb in Chinese folk tradition for 2 000 years. In 1973, Japanese scholars firstly separated three iridoids from Japanese P. villosa, and by 2021, chemical components such as flavonoids, iridoids, organic acids, triterpenoids, phenylpropanoids, and steroids have been found, which have multiple pharmacological effects, including antioxidant, antitumor, anti-diarrhea, antibacterial, sedative, and liver protection capabilities. Studies indicate that flavonoids, saponins, phenylpropanoids, and triterpenoids in P. villosa are vital substances for its pharmacological activities. However, the quality of this medicinal material cannot be controlled due to the unclear records in ancient books in the past dynasties and different drug use habits in different places, and thus its circulation is chaotic. At present, researchers have used flavonoids, organic acids, phenylpropanoids, triterpenoid saponins, and other compounds to conduct studies in this regard. Therefore, on the basis of the existing literature resources, we comprehensively summarize the chemical constituents, pharmacological activities, and quality control of P. villosa to further provide a reference for the safety and effectiveness of clinical drug use and lay a foundation for the follow-up experimental research.
Patrinia/chemistry*
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Flavonoids/pharmacology*
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Saponins
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Triterpenes/pharmacology*
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Iridoids
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Quality Control
3.An interlaboratory comparison study on the detection of RUNX1-RUNX1T1 fusion transcript levels and WT1 transcript levels.
Ya Zhen QIN ; Li Wen ZHU ; Shang LIN ; Su Xia GENG ; Sheng Wei LIU ; Hui CHENG ; Cheng Ye WU ; Min XIAO ; Xiao Qing LI ; Rui Ping HU ; Li Li WANG ; Hai Yan LIU ; Dao Xin MA ; Tao GUAN ; Yuan Xin YE ; Ting NIU ; Jian Nong CEN ; Li Sha LU ; Li SUN ; Tong Hua YANG ; Yun Gui WANG ; Tao LI ; Yue WANG ; Qing Hua LI ; Xiao Su ZHAO ; Ling Di LI ; Wen Min CHEN ; Ling Yu LONG ; Xiao Jun HUANG
Chinese Journal of Hematology 2019;40(11):889-894
Objective: To investigate the current status and real performance of the detection of RUNX1-RUNX1T1 fusion transcript levels and WT1 transcript levels in China through interlaboratory comparison. Methods: Peking University People's Hospital (PKUPH) prepared the samples for comparison. That is, the fresh RUNX1-RUNX1T1 positive (+) bone morrow nucleated cells were serially diluted with RUNX1-RUNX1T1 negative (-) nucleated cells from different patients. Totally 23 sets with 14 different samples per set were prepared. TRIzol reagent was added in each tube and thoroughly mixed with cells for homogenization. Each laboratory simultaneously tested RUNX1-RUNX1T1 and WT1 transcript levels of one set of samples by real-time quantitative PCR method. All transcript levels were reported as the percentage of RUNX1-RUNX1T1 or WT1 transcript copies/ABL copies. Spearman correlation coefficient between the reported transcript levels of each participated laboratory and those of PKUPH was calculated. Results: ①RUNX1-RUNX1T1 comparison: 9 samples were (+) and 5 were (-) , the false negative and positive rates of the 20 participated laboratories were 0 (0/180) and 5% (5/100) , respectively. The reported transcript levels of all 9 positive samples were different among laboratories. The median reported transcript levels of 9 positive samples were from 0.060% to 176.7%, which covered 3.5-log. The ratios of each sample's highest to the lowest reported transcript levels were from 5.5 to 12.3 (one result which obviously deviated from other laboratories' results was not included) , 85% (17/20) of the laboratories had correlation coefficient ≥0.98. ②WT1 comparison: The median reported transcript levels of all 14 samples were from 0.17% to 67.6%, which covered 2.6-log. The ratios of each sample's highest to the lowest reported transcript levels were from 5.3-13.7, 62% (13/21) of the laboratories had correlation coefficient ≥0.98. ③ The relative relationship of the reported RUNX1-RUNX1T1 transcript levels between the participants and PKUPH was not always consistent with that of WT1 transcript levels. Both RUNX1-RUNX1T1 and WT1 transcript levels from 2 and 7 laboratories were individually lower than and higher than those of PKUPH, whereas for the rest 11 laboratories, one transcript level was higher than and the other was lower than that of PKUPH. Conclusion: The reported RUNX1-RUNX1T1 and WT1 transcript levels were different among laboratories for the same sample. Most of the participated laboratories reported highly consistent result with that of PKUPH. The relationship between laboratories of the different transcript levels may not be the same.
China
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Core Binding Factor Alpha 2 Subunit
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Humans
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Leukemia, Myeloid, Acute
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RUNX1 Translocation Partner 1 Protein
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Real-Time Polymerase Chain Reaction
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Transcription, Genetic
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WT1 Proteins