1.Advances of enzymes in the applications of disease treatment and drug preparation.
Rui ZHOU ; Xin LIU ; Bo ZENG ; Wei JIANG ; Guangya ZHANG
Chinese Journal of Biotechnology 2021;37(7):2256-2271
The development of biotechnology and the in-depth research on disease mechanisms have led to increased application of enzymes in the treatment of diseases. In addition, enzymes have shown great potential in drug manufacturing, particularly in production of non-natural organic compounds, due to the advantages of mild reaction conditions, high catalytic efficiency, high specificity, high selectivity and few side reactions. Moreover, the application of genetic engineering, chemical modification of enzymes and immobilization technologies have further improved the function of enzymes. This review summarized the advances of using enzymes as drugs for disease treatment or as catalysts for drug manufacturing, followed by discussing challenges, potential solutions and future perspectives on the application of enzymes in the medical and pharmaceutical field.
Biocatalysis
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Biotechnology
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Catalysis
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Drug Compounding
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Enzymes/metabolism*
2.The asymmetric division and tumorigenesis of stem cells.
Qi-Zhao WANG ; Ying-Hui LU ; Nan JIANG ; Yong DIAO ; Rui-An XU
Chinese Journal of Cancer 2010;29(3):248-253
Stem cells use asymmetric and symmetric cell division to generate progeny. Symmetric cell division is defined as the generation of daughter cells that are destined to acquire the same fate. Stem cells divide asymmetrically to generate one daughter with a stem-cell fate and one daughter with different fate. Disruption of the machinery that regulates asymmetric division may be a reason for the generation of cancer. The asymmetric mechanism is maintained by cell polarity factors, cell fate determinants, and the spindle apparatus. The mutation or dysregulation of these factors may change stem cells from asymmetric to symmetric cell division, then leading to tumorigenesis. Therefore, further study is needed on the mechanisms of stem cell control between asymmetric and symmetric cell division, as well as the relationships among stem cells, cancer stem cells, and tumor cells. It may bring us a new approach for the resistance, recurrence, and metastasis of tumors.
Animals
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Cell Division
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physiology
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Cell Polarity
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Cell Transformation, Neoplastic
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Drosophila
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cytology
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Humans
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Neoplasms
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pathology
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Neoplastic Stem Cells
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pathology
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Neurons
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cytology
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Spindle Apparatus
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metabolism
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Tumor Suppressor Proteins
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metabolism
3.Analysis of Severe Adverse Drug Reactions and Drug Interactions in 360 Cases
Yanhua LIN ; Xiaoqun LYU ; Weifang REN ; Yujuan LIU ; Kang JIANG ; Huaqiao JIANG
Chinese Journal of Modern Applied Pharmacy 2024;41(5):696-701
OBJECTIVE
To analyze and evaluate serious adverse drug reaction(SADR) and drug-drug interactions(DDIs) in the real-world, so as to obtain the clinical evidence of DDIs-related SADR, and to provide a reference for rational clinical use.
METHODS
The SADR reports reported to the National Adverse Drug Reaction Monitoring Center from January 2011 to December 2020 were collected, and Lexi-Interaction® software in UpToDate was used to analyze ≥2 drugs in SADR to evaluate whether there were potential DDIs. And the possible adverse drug reactions caused by DDIs were statistically analyzed.
RESULTS
Among the 360 cases of SADR, males were slightly more than females(50.83% vs 49.17%), the mean age was (65.27±14.71) years old, and 56.39% were ≥65 years old. Cardiovascular agents were the most common implicated pharmacological group, and the gastrointestinal system was the most frequently affected system, and aspirin was the most frequently reported drug. Among 150 cases of SADR with at least two suspected drugs, 64 cases had potential DDIs, while 42 cases had clinically significant DDIs, of which only 16 and 2 cases of SADR were caused by actual DDIs in category D and X, respectively. The majority of reports(71.43%) were caused by additive pharmacodynamic interactions. Aspirin was the most common drug in both potential DDIs and actual DDIs, while aspirin and clopidogrel was the most commonly involved drug pair in actual DDIs, with gastrointestinal bleeding being the most common SADR.
CONCLUSION
Attention should be paid to the influence of drug interactions on SADR, and prescription should be optimized, especially in the elderly population. According to the results of potential DDIs, therapeutic drugs should be rationally selected. Meanwhile, monitoring of cardiovascular drugs and key populations should be strengthened to ensure drug safety.
4.Protective effects of three phenylallyl compounds from Guizhi decoction ox-LDL-induced oxidative stress injury of human brain microvascular endothelial cells.
Xiao-Dong LI ; Li-Wei GU ; Qing-Sen RAN ; Pan ZHOU ; Xiao-Ling ZHAN ; Cang-Hai LI ; Ting-Liang JIANG
China Journal of Chinese Materia Medica 2016;41(12):2315-2320
The main objective of this research is to observe protective effects of three phenylallyl compounds(cinnamyl alcohol,cinnamaldehyde and cinnamic acid)from Guizhi decoction against ox-LDL-induced oxidative stress injury on human brain microvascular endothelial cells(HBMEC).In this study,the toxicity and optimal protective concentration of three phenylallyl compounds from Guizhi decoction were determined by MTT assay.The HBMEC were divided into control group(DMSO),model group(ox-LDL),tert-butylhydroquinone (t-BHQ) group,cinnamyl alcohol group, cinnamaldehyde group and cinnamic acid group.The model group were treated with ox-LDL (50 mg•L⁻¹)for 24 h,other groups were separately treated with t-BHQ, cinnamyl alcohol, cinnamaldehyde and cinnamic acid of 20 μmol•L⁻¹, and exposed to ox-LDL (50 mg•L⁻¹) for 24 h at the same time.The survival rate of HBMEC was detected by MTT assay,reactive oxygen species(ROS) production of injured cells were detected using laser scanning confocal microscope (LSCM),the content of SOD, MDA, eNOS and NO in HBMEC was determined by ELISA, and the expressions of Nrf2 mRNA were detected by quantitative Real-time PCR(qRT-PCR).The results shows that oxidative stress injury of HBMEC could be induced by ox-LDL, the three phenylallyl compounds from Guizhi decoction did not affect morphology and viability of normal HBMEC.Compared with model group, the three phenylallyl compounds from Guizhi decoction could improve the above oxidative stress status and up-regulate Nrf2 mRNA expressions in injured HBMEC(P<0.05, P<0.01) .These findings suggested that the three phenylallyl compounds from Guizhi decoction have certain protective effects against ox-LDL-induced oxidative stress injury on HBMEC(cinnamaldehyde> t-BHQ> cinnamic acid>cinnamyl alcohol),the protective mechanism maybe related to regulation of antioxidant enzymes gene expression in HBMEC by Nrf2.
5.Polymerase chain reaction-based assays facilitate the breeding and study of mouse models of Klinefelter syndrome.
Hai-Xia ZHANG ; Yu-Lin ZHOU ; Wen-Yan XU ; Xiao-Lu CHEN ; Jia-Yang JIANG ; Xiao-Man ZHOU ; Zeng-Ge WANG ; Rong-Qin KE ; Qi-Wei GUO
Asian Journal of Andrology 2022;24(1):102-108
Klinefelter syndrome (KS) is one of the most frequent genetic abnormalities and the leading genetic cause of nonobstructive azoospermia. The breeding and study of KS mouse models are essential to advancing our knowledge of the underlying pathological mechanism. Karyotyping and fluorescence in situ hybridization are reliable methods for identifying chromosomal contents. However, technical issues associated with these methods can decrease the efficiency of breeding KS mouse models and limit studies that require rapid identification of target mice. To overcome these limitations, we developed three polymerase chain reaction-based assays to measure specific genetic information, including presence or absence of the sex determining region of chromosome Y (Sry), copy number of amelogenin, X-linked (Amelx), and inactive X specific transcripts (Xist) levels. Through a combined analysis of the assay results, we can infer the karyotype of target mice. We confirmed the utility of our assays with the successful generation of KS mouse models. Our assays are rapid, inexpensive, high capacity, easy to perform, and only require small sample amounts. Therefore, they facilitate the breeding and study of KS mouse models and help advance our knowledge of the pathological mechanism underlying KS.
Animals
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Azoospermia
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In Situ Hybridization, Fluorescence
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Karyotyping
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Klinefelter Syndrome/genetics*
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Mice
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Polymerase Chain Reaction