1.Identification of a Novel Synthetic Cathinone CMMP
Si-Yang HE ; Qian-Ya DENG ; Shui-Qing ZHENG ; Chun-Fang NI ; Wen-Juan SUN ; Fang-Qi CAO ; Chen LIANG ; Fei-Jun GONG
Journal of Forensic Medicine 2024;40(6):550-556
Objective To establish a method to identify an unknown substance based on the combined use of gas chromatography-quadrupole time-of-flight mass spectrometry(GC-QTOF-MS),ultra-high performance liquid chromatography-quadrupole/electrostatic field orbitrap high resolution mass spectrometry(UPLC-Q/Orbitrap HRMS)and nuclear magnetic resonance(NMR)techniques.Methods The unknown substance was dissolved in methanol and was detected by GC-QTOF-MS and UPLC-Q/Orbitrap HRMS,and was dissolved in methanol-d4 to be detected by NMR.Results The main characteristics ion peaks of components with retention time of 9.67 min in GC-QTOF-MS measured were 84.080 8,110.999 7,128.107 0(base peak),138.994 7,etc.The protonated molecular ion peak m/z in UPLC-Q/Orbitrap HRMS was 268.109 3.It was inferred that the unknown substance was an analog of the syn-thetic cathinone substance 2-methyl-1-[4-(methylthio)phenyl]-2-morpholinopropan-1-one(MTMP)by comparing the mass spectrum information and molecular structure of MTMP.NMR analysis confirmed it as a novel N-morpholine substituted synthetic cathinone substance 1-(4-chlorophenyl)-2-methyl-2-morpholinopropan-1-one(CMMP).Conclusion The method established in this study can be used for structural confirmation of CMMP.
2.Rapid Screening of 60 Types of Natural Toxins in Whole Blood by UPLC-Q/Orbitrap HRMS
Zhu-Tao GUO ; Qian-Ya DENG ; Si-Yang HE ; Shui-Qing ZHENG ; Rong WANG ; Wen-Juan SUN ; Chen LIANG ; Chun-Fang NI
Journal of Forensic Medicine 2024;40(6):564-568
Objective To establish a rapid screening method for 60 types of natural toxins in whole blood by ultra-high performance liquid chromatography-quadrupole/electrostatic field orbitrap high reso-lution mass spectrometry(UPLC-Q/Orbitrap HRMS).Methods The chromatographic and mass spectro-metric information of 60 standard samples of natural toxins were analyzed and recorded,and a screening database was built.Whole blood was pretreated by protein precipitation method combined with ultrasonic-assisted dispersion,and then a Hypersil GOLDTM C18 column was used with 5 mmol/L ammonium for-mate aqueous solution(containing 0.1%formic acid)and acetonitrile as mobile phase for gradient elu-tion.In the positive ion mode,the data were collected in full scan/data-dependent secondary scan(Full MS/dd-MS2)mode.Based on the established screening library,the rapid screening of 60 types of natural toxins in whole blood was realized by TraceFinder software.Results A UPLC-Q/Orbitrap HRMS method was developed for the screening of 60 types of natural toxins in whole blood.Except for the limit of detection(LOD)of oxymatrine(20 ng/mL)and strophanthidin(40 ng/mL),the LOD for the other 58 natural toxins was in the range of 0.05-5 ng/mL.Conclusion This method has a simple and efficient pretreatment process and can achieve rapid screening of 60 types of natural toxins in whole blood.
3.Chinese expert consensus on blood support mode and blood transfusion strategies for emergency treatment of severe trauma patients (version 2024)
Yao LU ; Yang LI ; Leiying ZHANG ; Hao TANG ; Huidan JING ; Yaoli WANG ; Xiangzhi JIA ; Li BA ; Maohong BIAN ; Dan CAI ; Hui CAI ; Xiaohong CAI ; Zhanshan ZHA ; Bingyu CHEN ; Daqing CHEN ; Feng CHEN ; Guoan CHEN ; Haiming CHEN ; Jing CHEN ; Min CHEN ; Qing CHEN ; Shu CHEN ; Xi CHEN ; Jinfeng CHENG ; Xiaoling CHU ; Hongwang CUI ; Xin CUI ; Zhen DA ; Ying DAI ; Surong DENG ; Weiqun DONG ; Weimin FAN ; Ke FENG ; Danhui FU ; Yongshui FU ; Qi FU ; Xuemei FU ; Jia GAN ; Xinyu GAN ; Wei GAO ; Huaizheng GONG ; Rong GUI ; Geng GUO ; Ning HAN ; Yiwen HAO ; Wubing HE ; Qiang HONG ; Ruiqin HOU ; Wei HOU ; Jie HU ; Peiyang HU ; Xi HU ; Xiaoyu HU ; Guangbin HUANG ; Jie HUANG ; Xiangyan HUANG ; Yuanshuai HUANG ; Shouyong HUN ; Xuebing JIANG ; Ping JIN ; Dong LAI ; Aiping LE ; Hongmei LI ; Bijuan LI ; Cuiying LI ; Daihong LI ; Haihong LI ; He LI ; Hui LI ; Jianping LI ; Ning LI ; Xiying LI ; Xiangmin LI ; Xiaofei LI ; Xiaojuan LI ; Zhiqiang LI ; Zhongjun LI ; Zunyan LI ; Huaqin LIANG ; Xiaohua LIANG ; Dongfa LIAO ; Qun LIAO ; Yan LIAO ; Jiajin LIN ; Chunxia LIU ; Fenghua LIU ; Peixian LIU ; Tiemei LIU ; Xiaoxin LIU ; Zhiwei LIU ; Zhongdi LIU ; Hua LU ; Jianfeng LUAN ; Jianjun LUO ; Qun LUO ; Dingfeng LYU ; Qi LYU ; Xianping LYU ; Aijun MA ; Liqiang MA ; Shuxuan MA ; Xainjun MA ; Xiaogang MA ; Xiaoli MA ; Guoqing MAO ; Shijie MU ; Shaolin NIE ; Shujuan OUYANG ; Xilin OUYANG ; Chunqiu PAN ; Jian PAN ; Xiaohua PAN ; Lei PENG ; Tao PENG ; Baohua QIAN ; Shu QIAO ; Li QIN ; Ying REN ; Zhaoqi REN ; Ruiming RONG ; Changshan SU ; Mingwei SUN ; Wenwu SUN ; Zhenwei SUN ; Haiping TANG ; Xiaofeng TANG ; Changjiu TANG ; Cuihua TAO ; Zhibin TIAN ; Juan WANG ; Baoyan WANG ; Chunyan WANG ; Gefei WANG ; Haiyan WANG ; Hongjie WANG ; Peng WANG ; Pengli WANG ; Qiushi WANG ; Xiaoning WANG ; Xinhua WANG ; Xuefeng WANG ; Yong WANG ; Yongjun WANG ; Yuanjie WANG ; Zhihua WANG ; Shaojun WEI ; Yaming WEI ; Jianbo WEN ; Jun WEN ; Jiang WU ; Jufeng WU ; Aijun XIA ; Fei XIA ; Rong XIA ; Jue XIE ; Yanchao XING ; Yan XIONG ; Feng XU ; Yongzhu XU ; Yongan XU ; Yonghe YAN ; Beizhan YAN ; Jiang YANG ; Jiangcun YANG ; Jun YANG ; Xinwen YANG ; Yongyi YANG ; Chunyan YAO ; Mingliang YE ; Changlin YIN ; Ming YIN ; Wen YIN ; Lianling YU ; Shuhong YU ; Zebo YU ; Yigang YU ; Anyong YU ; Hong YUAN ; Yi YUAN ; Chan ZHANG ; Jinjun ZHANG ; Jun ZHANG ; Kai ZHANG ; Leibing ZHANG ; Quan ZHANG ; Rongjiang ZHANG ; Sanming ZHANG ; Shengji ZHANG ; Shuo ZHANG ; Wei ZHANG ; Weidong ZHANG ; Xi ZHANG ; Xingwen ZHANG ; Guixi ZHANG ; Xiaojun ZHANG ; Guoqing ZHAO ; Jianpeng ZHAO ; Shuming ZHAO ; Beibei ZHENG ; Shangen ZHENG ; Huayou ZHOU ; Jicheng ZHOU ; Lihong ZHOU ; Mou ZHOU ; Xiaoyu ZHOU ; Xuelian ZHOU ; Yuan ZHOU ; Zheng ZHOU ; Zuhuang ZHOU ; Haiyan ZHU ; Peiyuan ZHU ; Changju ZHU ; Lili ZHU ; Zhengguo WANG ; Jianxin JIANG ; Deqing WANG ; Jiongcai LAN ; Quanli WANG ; Yang YU ; Lianyang ZHANG ; Aiqing WEN
Chinese Journal of Trauma 2024;40(10):865-881
Patients with severe trauma require an extremely timely treatment and transfusion plays an irreplaceable role in the emergency treatment of such patients. An increasing number of evidence-based medicinal evidences and clinical practices suggest that patients with severe traumatic bleeding benefit from early transfusion of low-titer group O whole blood or hemostatic resuscitation with red blood cells, plasma and platelet of a balanced ratio. However, the current domestic mode of blood supply cannot fully meet the requirements of timely and effective blood transfusion for emergency treatment of patients with severe trauma in clinical practice. In order to solve the key problems in blood supply and blood transfusion strategies for emergency treatment of severe trauma, Branch of Clinical Transfusion Medicine of Chinese Medical Association, Group for Trauma Emergency Care and Multiple Injuries of Trauma Branch of Chinese Medical Association, Young Scholar Group of Disaster Medicine Branch of Chinese Medical Association organized domestic experts of blood transfusion medicine and trauma treatment to jointly formulate Chinese expert consensus on blood support mode and blood transfusion strategies for emergency treatment of severe trauma patients ( version 2024). Based on the evidence-based medical evidence and Delphi method of expert consultation and voting, 10 recommendations were put forward from two aspects of blood support mode and transfusion strategies, aiming to provide a reference for transfusion resuscitation in the emergency treatment of severe trauma and further improve the success rate of treatment of patients with severe trauma.
4.Porcine SIRT5 promotes replication of foot and mouth disease virus type O in PK-15 cells
Guo-Hui CHEN ; Xi-Juan SHI ; Xin-Tian BIE ; Xing YANG ; Si-Yue ZHAO ; Da-Jun ZHANG ; Deng-Shuai ZHAO ; Wen-Qian YAN ; Ling-Ling CHEN ; Mei-Yu ZHAO ; Lu HE ; Hai-Xue ZHENG ; Xia LIU ; Ke-Shan ZHANG
Chinese Journal of Zoonoses 2024;40(5):421-429
The effect of porcine SIRT5 on replication of foot and mouth disease virus type O(FMDV-O)and the underlying regulatory mechanism were investigated.Western blot and RT-qPCR analyses were employed to monitor expression of endoge-nous SIRT5 in PK-15 cells infected with FMDV-O.Three pairs of SIRT5-specific siRNAs were synthesized.Changes to SIRT5 and FMDV-O protein and transcript levels,in addition to virus copy numbers,were measured by western blot and RT-qPCR analyses.PK-15 cells were transfected with a eukaryotic SIRT5 expression plasmid.Western blot and RT-qPCR analyses were used to explore the impact of SIRT5 overexpression on FMDV-O replication.Meanwhile,RT-qPCR analysis was used to detect the effect of SIRT5 overexpression on the mRNA expression levels of type I interferon-stimulated genes induced by SeV and FMDV-O.The results showed that expression of SIRT5 was up-regulated in PK-15 cells infected with FMDV-O and siRNA interfered with SIRT5 to inhibit FMDV-O replication.SIRT5 overexpression promoted FMDV-O replication.SIRT5 over-expression decreased mRNA expression levels of interferon-stimulated genes induced by SeV and FMDV-O.These results suggest that FMDV-O infection stimulated expression of SIRT5 in PK-15 cells,while SIRT5 promoted FMDV-O rep-lication by inhibiting production of type I interferon-stimula-ted genes.These findings provide a reference to further ex-plore the mechanism underlying the ability of porcine SIRT5 to promote FMDV-O replication.
5.Comparison of volatile constituents from the rhizomes and fibrous roots of Atractylodes lancea
Yuan-yuan CHEN ; Lei CHEN ; Meng WANG ; Lin-qi SUN ; Juan DENG ; Xiao HUANG ; Qing-mei CHEN ; Wei WEI ; Yu-lu WAN ; Wen-jie WANG ; Kun YU
Chinese Traditional Patent Medicine 2024;46(10):3330-3337
AIM To compare the volatile constituents from the rhizomes and fibrous roots of Atractylodes lancea (Thunb.) DC..METHODS Paraffin sections of rhizomes and fibrous roots were made,and their transverse sections were observed under an optical microscope.Volatile oil was extracted by hydrodistillation.The contents of atractylodin,β-eudesmol,hinesol and atractyline were detected by GC-MS,and the volatile constituents were analysed.Principal component analysis and differential metabolite screening were performed by multivariate statistical analysis software.RESULTS In the transverse section of rhizomes,large oil chambers were observed,while oil cells were found in the fibrous roots.The volatile oil content in the fibrous roots is 24.88% of that in the rhizomes.A total of 55 common components,2 unique components of rhizomes and 6 unique components of fibrous roots were detected.The ratio of β-eudesmol,hinesol,atractyline and atractylodin in the rhizomes was 22.84∶1.16∶2.78∶1.00,while that in the fibrous roots was 5.59∶0.22∶0.97∶1.00.The volatile constituents in the rhizomes were significantly different from those in the fibrous root,and the groups were well discriminated from each other.Based on the OPLS-DA model,12 differential metabolites including hinesol and β-eudesmol were screened.CONCLUSION The volatile constituents of the rhizomes and fibrous roots of A.lancea are similar,but the contents are different,and the latter has a greater potential for comprehensive utilization.
6.Comparison of volatile constituents from the rhizomes and fibrous roots of Atractylodes lancea
Yuan-yuan CHEN ; Lei CHEN ; Meng WANG ; Lin-qi SUN ; Juan DENG ; Xiao HUANG ; Qing-mei CHEN ; Wei WEI ; Yu-lu WAN ; Wen-jie WANG ; Kun YU
Chinese Traditional Patent Medicine 2024;46(10):3330-3337
AIM To compare the volatile constituents from the rhizomes and fibrous roots of Atractylodes lancea (Thunb.) DC..METHODS Paraffin sections of rhizomes and fibrous roots were made,and their transverse sections were observed under an optical microscope.Volatile oil was extracted by hydrodistillation.The contents of atractylodin,β-eudesmol,hinesol and atractyline were detected by GC-MS,and the volatile constituents were analysed.Principal component analysis and differential metabolite screening were performed by multivariate statistical analysis software.RESULTS In the transverse section of rhizomes,large oil chambers were observed,while oil cells were found in the fibrous roots.The volatile oil content in the fibrous roots is 24.88% of that in the rhizomes.A total of 55 common components,2 unique components of rhizomes and 6 unique components of fibrous roots were detected.The ratio of β-eudesmol,hinesol,atractyline and atractylodin in the rhizomes was 22.84∶1.16∶2.78∶1.00,while that in the fibrous roots was 5.59∶0.22∶0.97∶1.00.The volatile constituents in the rhizomes were significantly different from those in the fibrous root,and the groups were well discriminated from each other.Based on the OPLS-DA model,12 differential metabolites including hinesol and β-eudesmol were screened.CONCLUSION The volatile constituents of the rhizomes and fibrous roots of A.lancea are similar,but the contents are different,and the latter has a greater potential for comprehensive utilization.
7. Mechanosensitive ion channel Piezo1 induces senescence of atrial fibroblasts by activating β-catenin
Xing-Dong YE ; Xue-Shan LUO ; Qiao-Qiao LI ; Jin-Tao HE ; Yu-Wen XU ; Hui YANG ; Chun-Yu DENG ; Su-Juan KUANG ; Meng-Zhen ZHANG ; Shu-Lin WU ; Fang RAO ; Yu-Mei XUE
Chinese Pharmacological Bulletin 2023;39(7):1234-1241
Aim To observe whether the mechanosensitive ion channel Piezo1 was involved in the senescence of atrial fibroblasts by activating β-catenin based on our previous study which found marked increase of Piezo1 mRNA in senescent atrial fibroblasts. Methods Primary mouse atrial fibroblasts (MAFs) were isolated from male C57BL/6 mice (3-4 weeks) by enzyme digestion, and tert-butyl hydroperoxide (TBHP) was used to induce the senescence of cells. The ratio of senescent cells was detected by senescence-associated β-galactosidase (SA-β-Gal) staining. The protein levels of Piezo1, β-catenin/p-β-catenin, senescence-associated proteins p53 and p21 in the cells treated with TBHP (100 μmol · L
8. Developmental comparison between cerebral organoids in vitro and body's cortices in vivo
Wen-Juan FAN ; Xu-Dong CHEN ; Yong-Fang CHEN ; Xu-Guang YANG ; Shao-Ju JIN ; Jin-Bo DENG ; Wen-Juan FAN ; Zhi-Jun ZHAO
Acta Anatomica Sinica 2023;54(4):383-391
Objective To understand the characteristics and developmental differences between cerebral organoids in vitro and normal cerebral cortices in vivo. Methods 1. Grouping: cerebral cortices in vivo group and cultured cerebral organoids in vitro group. 2. Sample collection: cortical tissues were collected from Kunming mouse embryos at embryonic day 7.5(E7.5), E9.5, E11.5, E14.5, and postnatal day 3 (P3) or P7. Three specimens were taken from each group. Meanwhile, cerebral organoids were cultured with mouse induced pluripotent stem cells (iPSCs), and samples at different culture time point were collected, and more than 3 samples were collected at each time point. 3. Detection method: the distribution of different types of cells in each group of specimens was analyzed by immunofluorescent staining. Results While relative similarities between in vivo cerebral cortical development and the cerebral organoids in vitro were observed, including the histogenesis, and the morphological differentiation of nerve cells and glial cells, the lamellar architecture of cerebral cortex in mouse brain was not observed in cerebral organoids. Conclusion The development of cerebral organoids in vitro has some similarity with body's cortical development. Therefore, cerebral organoids can be used to a substitution of cortex and diseases' models, but improvement of the existing technologies is necessary.
9.Developmental effects of TCIPP and TnBP on zebrafish (Danio rerio) embryos.
Shu Yi ZHANG ; Shao Ping ZHANG ; Zi Jin SHAO ; Yuan Zheng FU ; Wen GU ; Hong ZHI ; Jian KONG ; Fu Chang DENG ; Wen Yan YAN ; Juan LIU ; Chao WANG ; Song TANG
Chinese Journal of Preventive Medicine 2023;57(5):693-700
Objective: To investigate the toxicity of tris (2-chloropropyl) phosphate (TCIPP) and tributyl phosphate (TnBP) on the growth and development of zebrafish embryos, as well as to explore the underlying mechanisms at the transcriptional level. Methods: With zebrafish as a model, two hpf zebrafish embryos were exposed to TCIPP and TnBP (0.1, 1, 10, 100, 500, and 1 000 μmol/L) using the semi-static method, and their rates of lethality and hatchability were determined. The transcriptome changes of 120 hpf juvenile zebrafish exposed to environmentally relevant concentrations of 0.1 and 1 μmol/L were measured. Results: The 50% lethal concentrations (LC50) of TCIPP and TnBP for zebrafish embryos were 155.30 and 27.62 μmol/L (96 hpf), 156.5 and 26.05 μmol/L (120 hpf), respectively. The 72 hpf hatching rates of TCIPP (100 μmol/L) and TnBP (10 μmol/L) were (23.33±7.72)% and (91.67±2.97)%, which were significantly decreased compared with the control group (P<0.05). Transcriptome analysis showed that TnBP had more differential genes (DEGs) than TCIPP, with a dose-response relationship. These DEGs were enriched in 32 pathways in total, including those involved in oxidative stress, energy metabolism, lipid metabolism, and nuclear receptor-related pathways, using the IPA pathway analysis. Among them, three enriched pathways overlapped between TCIPP and TnBP, including TR/RXR activation and CAR/RXR activation. Additionally, DEGs were also mapped onto pathways of LXR/RXR activation and oxidative stress for TnBP exposure only. Conclusion: Both TCIPP and TnBP have growth and developmental toxicities in zebrafish embryos, with distinct biomolecular mechanisms, and TnBP has a stronger effect than TCIPP.
Animals
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Zebrafish/metabolism*
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Embryo, Nonmammalian/metabolism*
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Transcriptome
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Oxidative Stress
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Water Pollutants, Chemical/metabolism*
10.Genomic Epidemiology of Imported Cases of COVID-19 in Guangdong Province, China, October 2020 - May 2021.
Dan LIANG ; Tao WANG ; Jiao Jiao LI ; Da Wei GUAN ; Guan Ting ZHANG ; Yu Feng LIANG ; An An LI ; Wen Shan HONG ; Li WANG ; Meng Lin CHEN ; Xiao Ling DENG ; Feng Juan CHEN ; Xing Fei PAN ; Hong Ling JIA ; Chun Liang LEI ; Chang Wen KE
Biomedical and Environmental Sciences 2022;35(5):393-401
Objective:
The pandemic of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has been engendering enormous hazards to the world. We obtained the complete genome sequences of SARS-CoV-2 from imported cases admitted to the Guangzhou Eighth People's Hospital, which was appointed by the Guangdong provincial government to treat coronavirus disease 2019 (COVID-19). The SARS-CoV-2 diversity was analyzed, and the mutation characteristics, time, and regional trend of variant emergence were evaluated.
Methods:
In total, 177 throat swab samples were obtained from COVID-19 patients (from October 2020 to May 2021). High-throughput sequencing technology was used to detect the viral sequences of patients infected with SARS-CoV-2. Phylogenetic and molecular evolutionary analyses were used to evaluate the mutation characteristics and the time and regional trends of variants.
Results:
We observed that the imported cases mainly occurred after January 2021, peaking in May 2021, with the highest proportion observed from cases originating from the United States. The main lineages were found in Europe, Africa, and North America, and B.1.1.7 and B.1.351 were the two major sublineages. Sublineage B.1.618 was the Asian lineage (Indian) found in this study, and B.1.1.228 was not included in the lineage list of the Pangolin web. A reasonably high homology was observed among all samples. The total frequency of mutations showed that the open reading frame 1a (ORF1a) protein had the highest mutation density at the nucleotide level, and the D614G mutation in the spike protein was the commonest at the amino acid level. Most importantly, we identified some amino acid mutations in positions S, ORF7b, and ORF9b, and they have neither been reported on the Global Initiative of Sharing All Influenza Data nor published in PubMed among all missense mutations.
Conclusion
These results suggested the diversity of lineages and sublineages and the high homology at the amino acid level among imported cases infected with SARS-CoV-2 in Guangdong Province, China.
Amino Acids
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COVID-19/epidemiology*
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Genomics
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Humans
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Mutation
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Phylogeny
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SARS-CoV-2/genetics*

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