Neomycin (BioDeep_00000003472)
Secondary id: BioDeep_00001867660
human metabolite blood metabolite Chemicals and Drugs Antibiotics natural product Volatile Flavor Compounds
代谢物信息卡片
化学式: C23H46N6O13 (614.3122705999999)
中文名称: 新霉素B
谱图信息:
最多检出来源 Viridiplantae(plant) 0.17%
分子结构信息
SMILES: C1C(C(C(C(C1N)OC2C(C(C(C(O2)CN)O)O)N)OC3C(C(C(O3)CO)OC4C(C(C(C(O4)CN)O)O)N)O)O)N
InChI: InChI=1S/C23H46N6O13/c24-2-7-13(32)15(34)10(28)21(37-7)40-18-6(27)1-5(26)12(31)20(18)42-23-17(36)19(9(4-30)39-23)41-22-11(29)16(35)14(33)8(3-25)38-22/h5-23,30-36H,1-4,24-29H2/t5-,6+,7-,8+,9-,10-,11-,12+,13-,14-,15-,16-,17-,18-,19-,20-,21-,22-,23+/m1/s1
描述信息
A component of neomycin that is produced by Streptomyces fradiae. On hydrolysis it yields neamine and neobiosamine B. (From Merck Index, 11th ed). Neomycin is a bactericidal aminoglycoside antibiotic that binds to the 30S ribosome of susceptible organisms. Binding interferes with mRNA binding and acceptor tRNA sites and results in the production of non-functional or toxic peptides.
A - Alimentary tract and metabolism > A01 - Stomatological preparations > A01A - Stomatological preparations > A01AB - Antiinfectives and antiseptics for local oral treatment
A - Alimentary tract and metabolism > A07 - Antidiarrheals, intestinal antiinflammatory/antiinfective agents > A07A - Intestinal antiinfectives > A07AA - Antibiotics
B - Blood and blood forming organs > B05 - Blood substitutes and perfusion solutions > B05C - Irrigating solutions > B05CA - Antiinfectives
D - Dermatologicals > D09 - Medicated dressings > D09A - Medicated dressings > D09AA - Medicated dressings with antiinfectives
D - Dermatologicals > D06 - Antibiotics and chemotherapeutics for dermatological use > D06A - Antibiotics for topical use
S - Sensory organs > S03 - Ophthalmological and otological preparations > S03A - Antiinfectives > S03AA - Antiinfectives
R - Respiratory system > R01 - Nasal preparations > R01A - Decongestants and other nasal preparations for topical use
J - Antiinfectives for systemic use > J01 - Antibacterials for systemic use > J01G - Aminoglycoside antibacterials
R - Respiratory system > R02 - Throat preparations > R02A - Throat preparations > R02AB - Antibiotics
S - Sensory organs > S01 - Ophthalmologicals > S01A - Antiinfectives > S01AA - Antibiotics
S - Sensory organs > S02 - Otologicals > S02A - Antiinfectives > S02AA - Antiinfectives
C784 - Protein Synthesis Inhibitor > C2363 - Aminoglycoside Antibiotic
D004791 - Enzyme Inhibitors > D011500 - Protein Synthesis Inhibitors
D000890 - Anti-Infective Agents > D000900 - Anti-Bacterial Agents
C254 - Anti-Infective Agent > C258 - Antibiotic
KEIO_ID N022
同义名列表
28 个代谢物同义名
(2S,3S,4R,5R,6R)-5-amino-2-(aminomethyl)-6-{[(2R,3S,4R,5S)-5-{[(1R,2R,3S,5R,6S)-3,5-diamino-2-{[(2R,3R,4R,5S,6R)-3-amino-6-(aminomethyl)-4,5-dihydroxyoxan-2-yl]oxy}-6-hydroxycyclohexyl]oxy}-4-hydroxy-2-(hydroxymethyl)oxolan-3-yl]oxy}oxane-3,4-diol; 4,6-Diamino-2-{[3-o-(2,6-diamino-2,6-dideoxyhexopyranosyl)pentofuranosyl]oxy}-3-hydroxycyclohexyl 2,6-diamino-2,6-dideoxyhexopyranoside; Fradiomycin B;Neomycin B; Sulfate, fradiomycin; Palmitate, neomycin; Sulfate, neomycin b; Fradiomycin sulfate; Sulfate, framycetin; Framycetin sulfate; Neomycin palmitate; Neomycin b sulfate; Neomycin sulphate; Sulfate, neomycin; Antibiotic 10676; Neomycin sulfate; Caswell no. 595; Fradiomycin b; Framycetinum; Framicetina; Framycetine; USAF CB-19; Neomycin b; Framycetin; Soframycin; Neomycin; FRM; Neomycin; Neomycin B
数据库引用编号
35 个数据库交叉引用编号
- ChEBI: CHEBI:7508
- KEGG: C01737
- KEGGdrug: D05140
- PubChem: 4454
- PubChem: 8378
- HMDB: HMDB0015129
- Metlin: METLIN1486
- DrugBank: DB00452
- ChEMBL: CHEMBL266347
- ChEMBL: CHEMBL184618
- Wikipedia: Neomycin
- MeSH: Framycetin
- MeSH: Neomycin
- MetaCyc: CPD-14142
- KNApSAcK: C00015577
- chemspider: 8075
- CAS: 11004-65-2
- CAS: 1404-04-2
- CAS: 119-04-0
- MoNA: KO003610
- MoNA: KO003611
- MoNA: KO003607
- MoNA: KO003608
- MoNA: KO003609
- PMhub: MS000009727
- PubChem: 4872
- PDB-CCD: NMY
- 3DMET: B04810
- NIKKAJI: J4.458J
- LOTUS: LTS0253841
- KEGG: C00384
- PubChem: 3674
- KNApSAcK: 7507
- KNApSAcK: 7508
- LOTUS: LTS0261168
分类词条
相关代谢途径
Reactome(0)
BioCyc(0)
PlantCyc(0)
代谢反应
0 个相关的代谢反应过程信息。
Reactome(0)
BioCyc(0)
WikiPathways(0)
Plant Reactome(0)
INOH(0)
PlantCyc(0)
COVID-19 Disease Map(0)
PathBank(0)
PharmGKB(0)
119 个相关的物种来源信息
- 2 - Bacteria: LTS0253841
- 2 - Bacteria: LTS0261168
- 2759 - Eukaryota: LTS0253841
- 3803 - Fabaceae: LTS0253841
- 3846 - Glycine: LTS0253841
- 3847 - Glycine max: 10.1002/PMIC.201700366
- 3847 - Glycine max: LTS0253841
- 9606 - Homo sapiens: -
- 3398 - Magnoliopsida: LTS0253841
- 1883 - Streptomyces: 10.1002/JOBM.3630170504
- 1883 - Streptomyces: 10.1007/S10059-009-0008-0
- 1883 - Streptomyces: 10.1007/S12223-011-0082-5
- 1883 - Streptomyces: 10.1016/0006-291X(84)91367-6
- 1883 - Streptomyces: 10.1016/J.JBIOTEC.2013.03.015
- 1883 - Streptomyces: 10.1042/BJ1220397
- 1883 - Streptomyces: 10.1099/00221287-121-2-477
- 1883 - Streptomyces: 10.1155/2014/674286
- 1883 - Streptomyces: 10.3390/MD12042079
- 1883 - Streptomyces: 10.7164/ANTIBIOTICS.45.1167
- 1883 - Streptomyces: LTS0253841
- 1883 - Streptomyces: LTS0261168
- 1883 - Streptomyces: NA
- 1887 - Streptomyces albogriseolus: 10.1002/JOBM.3630170504
- 1887 - Streptomyces albogriseolus: 10.1007/S10059-009-0008-0
- 1887 - Streptomyces albogriseolus: 10.1007/S12223-011-0082-5
- 1887 - Streptomyces albogriseolus: 10.1016/0006-291X(84)91367-6
- 1887 - Streptomyces albogriseolus: 10.1016/J.JBIOTEC.2013.03.015
- 1887 - Streptomyces albogriseolus: 10.1042/BJ1220397
- 1887 - Streptomyces albogriseolus: 10.1099/00221287-121-2-477
- 1887 - Streptomyces albogriseolus: 10.1155/2014/674286
- 1887 - Streptomyces albogriseolus: 10.3390/MD12042079
- 1887 - Streptomyces albogriseolus: 10.7164/ANTIBIOTICS.45.1167
- 1887 - Streptomyces albogriseolus: LTS0253841
- 1887 - Streptomyces albogriseolus: NA
- 196385 - Streptomyces albogriseus: 10.1002/JOBM.3630170504
- 196385 - Streptomyces albogriseus: 10.1007/S10059-009-0008-0
- 196385 - Streptomyces albogriseus: 10.1007/S12223-011-0082-5
- 196385 - Streptomyces albogriseus: 10.1016/0006-291X(84)91367-6
- 196385 - Streptomyces albogriseus: 10.1016/J.JBIOTEC.2013.03.015
- 196385 - Streptomyces albogriseus: 10.1042/BJ1220397
- 196385 - Streptomyces albogriseus: 10.1099/00221287-121-2-477
- 196385 - Streptomyces albogriseus: 10.1155/2014/674286
- 196385 - Streptomyces albogriseus: 10.3390/MD12042079
- 196385 - Streptomyces albogriseus: 10.7164/ANTIBIOTICS.45.1167
- 196385 - Streptomyces albogriseus: LTS0253841
- 196385 - Streptomyces albogriseus: NA
- 1888 - Streptomyces albus: 10.1002/JOBM.3630170504
- 1888 - Streptomyces albus: LTS0253841
- 1906 - Streptomyces fradiae:
- 1906 - Streptomyces fradiae: 10.1002/JOBM.3630170504
- 1906 - Streptomyces fradiae: 10.1007/S10059-009-0008-0
- 1906 - Streptomyces fradiae: 10.1007/S12223-011-0082-5
- 1906 - Streptomyces fradiae: 10.1016/0006-291X(84)91367-6
- 1906 - Streptomyces fradiae: 10.1016/J.JBIOTEC.2013.03.015
- 1906 - Streptomyces fradiae: 10.1016/S0021-9673(00)94512-6
- 1906 - Streptomyces fradiae: 10.1039/B808734B
- 1906 - Streptomyces fradiae: 10.1039/C39870000012
- 1906 - Streptomyces fradiae: 10.1042/BJ1220397
- 1906 - Streptomyces fradiae: 10.1099/00221287-121-2-477
- 1906 - Streptomyces fradiae: 10.1155/2014/674286
- 1906 - Streptomyces fradiae: 10.3390/MD12042079
- 1906 - Streptomyces fradiae: 10.7164/ANTIBIOTICS.37.77
- 1906 - Streptomyces fradiae: 10.7164/ANTIBIOTICS.45.1167
- 1906 - Streptomyces fradiae: 10.7164/ANTIBIOTICS.45.984
- 1906 - Streptomyces fradiae: LTS0253841
- 1906 - Streptomyces fradiae: LTS0261168
- 1906 - Streptomyces fradiae: NA
- 282216 - Streptomyces lividus: 10.1002/JOBM.3630170504
- 282216 - Streptomyces lividus: 10.1007/S10059-009-0008-0
- 282216 - Streptomyces lividus: 10.1007/S12223-011-0082-5
- 282216 - Streptomyces lividus: 10.1016/0006-291X(84)91367-6
- 282216 - Streptomyces lividus: 10.1016/J.JBIOTEC.2013.03.015
- 282216 - Streptomyces lividus: 10.1042/BJ1220397
- 282216 - Streptomyces lividus: 10.1099/00221287-121-2-477
- 282216 - Streptomyces lividus: 10.1155/2014/674286
- 282216 - Streptomyces lividus: 10.3390/MD12042079
- 282216 - Streptomyces lividus: 10.7164/ANTIBIOTICS.45.1167
- 282216 - Streptomyces lividus: LTS0253841
- 282216 - Streptomyces lividus: NA
- 80859 - Streptomyces ribosidificus: 10.1002/JOBM.3630170504
- 80859 - Streptomyces ribosidificus: 10.1007/S10059-009-0008-0
- 80859 - Streptomyces ribosidificus: 10.1007/S12223-011-0082-5
- 80859 - Streptomyces ribosidificus: 10.1016/0006-291X(84)91367-6
- 80859 - Streptomyces ribosidificus: 10.1016/J.JBIOTEC.2013.03.015
- 80859 - Streptomyces ribosidificus: 10.1042/BJ1220397
- 80859 - Streptomyces ribosidificus: 10.1099/00221287-121-2-477
- 80859 - Streptomyces ribosidificus: 10.1155/2014/674286
- 80859 - Streptomyces ribosidificus: 10.3390/MD12042079
- 80859 - Streptomyces ribosidificus: 10.7164/ANTIBIOTICS.45.1167
- 80859 - Streptomyces ribosidificus: LTS0253841
- 80859 - Streptomyces ribosidificus: NA
- 1927 - Streptomyces rimosus: 10.1002/JOBM.3630170504
- 1927 - Streptomyces rimosus: 10.1007/S10059-009-0008-0
- 1927 - Streptomyces rimosus: 10.1007/S12223-011-0082-5
- 1927 - Streptomyces rimosus: 10.1016/0006-291X(84)91367-6
- 1927 - Streptomyces rimosus: 10.1016/J.JBIOTEC.2013.03.015
- 1927 - Streptomyces rimosus: 10.1042/BJ1220397
- 1927 - Streptomyces rimosus: 10.1099/00221287-121-2-477
- 1927 - Streptomyces rimosus: 10.1155/2014/674286
- 1927 - Streptomyces rimosus: 10.3390/MD12042079
- 1927 - Streptomyces rimosus: 10.7164/ANTIBIOTICS.45.1167
- 1927 - Streptomyces rimosus: LTS0253841
- 1927 - Streptomyces rimosus: NA
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1002/JOBM.3630170504
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1007/S10059-009-0008-0
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1007/S12223-011-0082-5
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1016/0006-291X(84)91367-6
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1016/J.JBIOTEC.2013.03.015
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1042/BJ1220397
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1099/00221287-121-2-477
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.1155/2014/674286
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.3390/MD12042079
- 92743 - Streptomyces rimosus subsp. paromomycinus: 10.7164/ANTIBIOTICS.45.1167
- 92743 - Streptomyces rimosus subsp. paromomycinus: NA
- 2062 - Streptomycetaceae: LTS0253841
- 2062 - Streptomycetaceae: LTS0261168
- 35493 - Streptophyta: LTS0253841
- 58023 - Tracheophyta: LTS0253841
- 33090 - Viridiplantae: LTS0253841
在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:
- PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
- NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
- Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
- Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。
点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。
文献列表
- Junming Zhang, Jianhao Song, Haobo Li, Zhaoxia Li, Mengyu Chen, Shutao Ma, Rong Shen, Xiangxin Lou. Berberine protects against neomycin-induced ototoxicity by reducing ROS generation and activating the PI3K/AKT pathway.
Neuroscience letters.
2023 Nov; 817(?):137518. doi:
10.1016/j.neulet.2023.137518
. [PMID: 37844727] - Maria H C Santos, Valdenice F Santos, Priscilla R Freitas, Romério R S Silva, Renato Rodrigues Roma, Ana L E Santos, Daiany Alves Ribeiro, Henrique D M Coutinho, Bruno A M Rocha, Manoel M E Oliveira, Claudener S Teixeira. Dioclea violacea lectin increases the effect of neomycin against multidrug-resistant strains and promotes the purification of the antibiotic in immobilized lectin column.
International journal of biological macromolecules.
2023 Mar; 236(?):123941. doi:
10.1016/j.ijbiomac.2023.123941
. [PMID: 36893486] - Lingbing Zhang, Yandan Zhang, Xuejun Jiang, Lejiao Mao, Yinyin Xia, Yinzhen Fan, Na Li, Ziqi Jiang, Xia Qin, Yu Jiang, Gang Liu, Feng Qiu, Jun Zhang, Zhen Zou, Chengzhi Chen. Disruption of the lung-gut-brain axis is responsible for cortex damage induced by pulmonary exposure to zinc oxide nanoparticles.
Toxicology.
2023 02; 485(?):153390. doi:
10.1016/j.tox.2022.153390
. [PMID: 36535435] - Paula V Huertas-Abril, María-José Prieto-Álamo, Juan Jurado, Tamara García-Barrera, Nieves Abril. A selenium-enriched diet helps to recover liver function after antibiotic administration in mice.
Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
2023 Jan; 171(?):113519. doi:
10.1016/j.fct.2022.113519
. [PMID: 36464106] - Mohammed Monirul Islam, Varshini Hemmanahalli Ramesh, Penmetsa Durga Bhavani, Prakash S Goudanavar, N Raghavendra Naveen, B Ramesh, Santosh Fattepur, Predeepkumar Narayanappa Shiroorkar, Mohammed Habeebuddin, Girish Meravanige, Mallikarjun Telsang, Nagaraja Sreeharsha. Optimization of process parameters for fabrication of electrospun nanofibers containing neomycin sulfate and Malva sylvestris extract for a better diabetic wound healing.
Drug delivery.
2022 Dec; 29(1):3370-3383. doi:
10.1080/10717544.2022.2144963
. [PMID: 36404771] - Varsha Saini, Devashish Mehta, Siddhi Gupta, Sandeep Kumar, Parul Rani, Kajal Rana, Kajal Rajput, Dolly Jain, Garima Pal, Bharti Aggarwal, Sanjay Pal, Sonu K Gupta, Yashwant Kumar, Vemanna S Ramu, Avinash Bajaj. Targeting Vancomycin-Resistant Enterococci (VRE) Infections and Van Operon-Mediated Drug Resistance Using Dimeric Cholic Acid-Peptide Conjugates.
Journal of medicinal chemistry.
2022 11; 65(22):15312-15326. doi:
10.1021/acs.jmedchem.2c01293
. [PMID: 36331380] - Rikeshwer Prasad Dewangan, Devesh Pratap Verma, Neeraj Kumar Verma, Ankit Gupta, Garima Pant, Kalyan Mitra, Saman Habib, Jimut Kanti Ghosh. Spermine-Conjugated Short Proline-Rich Lipopeptides as Broad-Spectrum Intracellular Targeting Antibacterial Agents.
Journal of medicinal chemistry.
2022 04; 65(7):5433-5448. doi:
10.1021/acs.jmedchem.1c01809
. [PMID: 35297625] - Yi Zhang, Mufan Ji, Zhenyang Gu, Wenlong Pei, Jun Zhu, Qian Wu, Lei Li, Zhan Zhang. Elemicin exposure induced aberrant lipid metabolism via modulation of gut microbiota in mice.
Toxicology.
2022 02; 467(?):153088. doi:
10.1016/j.tox.2021.153088
. [PMID: 34979169] - Jieya Zhou, Ran Ping, Hao Wu, Hongbo Liu, Xuming Wang, AiLing Ren, Shulei Tian, Yingqun Ma. Recycling of neomycin fermentation residue using SEA-CBS technology: Growth performance and antibiotic resistance genes.
The Science of the total environment.
2022 Feb; 807(Pt 1):150860. doi:
10.1016/j.scitotenv.2021.150860
. [PMID: 34626630] - Shiyu Li, Yusong Jin, Wenyi Fu, Abigail D Cox, Dale Lee, Lavanya Reddivari. Intermittent antibiotic treatment accelerated the development of colitis in IL-10 knockout mice.
Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
2022 Feb; 146(?):112486. doi:
10.1016/j.biopha.2021.112486
. [PMID: 34891113] - Åke Stenholm, Mikael Hedeland, Curt E Pettersson. Neomycin removal using the white rot fungus Trametes versicolor.
Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.
2022; 57(6):436-447. doi:
10.1080/10934529.2022.2072644
. [PMID: 35583106] - Juying Jiao, Jianjun Liu, Qi Li, Guixin Zhang, Chen Pan, Fei Luo, Qingkai Zhang, Bing Qi, Liang Zhao, Peiyuan Yin, Dong Shang. Gut Microbiota-Derived Diaminopimelic Acid Promotes the NOD1/RIP2 Signaling Pathway and Plays a Key Role in the Progression of Severe Acute Pancreatitis.
Frontiers in cellular and infection microbiology.
2022; 12(?):838340. doi:
10.3389/fcimb.2022.838340
. [PMID: 35811665] - Hobby Aggarwal, Priya Pathak, Yashwant Kumar, Kumaravelu Jagavelu, Madhu Dikshit. Modulation of Insulin Resistance, Dyslipidemia and Serum Metabolome in iNOS Knockout Mice following Treatment with Nitrite, Metformin, Pioglitazone, and a Combination of Ampicillin and Neomycin.
International journal of molecular sciences.
2021 Dec; 23(1):. doi:
10.3390/ijms23010195
. [PMID: 35008623] - R Ramessur, N Saffar, B Czako, A Agarwal, K Batta. Cutaneous thrombosis associated with skin necrosis following Oxford-AstraZeneca COVID-19 vaccination.
Clinical and experimental dermatology.
2021 Dec; 46(8):1610-1612. doi:
10.1111/ced.14819
. [PMID: 34189756] - Alberto Arezzo, Massimiliano Mistrangelo, Marco Augusto Bonino, Paola Salusso, Edoardo Forcignanò, Nereo Vettoretto, Emanuele Botteri, Nicola Cillara, Roberto Ottonello, Valentina Testa, Francesco Giuseppe De Rosa, Silvia Corcione, Roberto Passera, Mario Morino. Oral neomycin and bacitracin are effective in preventing surgical site infections in elective colorectal surgery: a multicentre, randomized, parallel, single-blinded trial (COLORAL-1).
Updates in surgery.
2021 Oct; 73(5):1775-1786. doi:
10.1007/s13304-021-01112-5
. [PMID: 34148172] - L N Buss, T T Yohe, L R Cangiano, D L Renaud, A J Keunen, L L Guan, M A Steele. The effect of neomycin inclusion in milk replacer on the health, growth, and performance of male Holstein calves during preweaning.
Journal of dairy science.
2021 Jul; 104(7):8188-8201. doi:
10.3168/jds.2020-19827
. [PMID: 33934860] - Hongyan Ma, Huiyun Liang, Shengxin Cai, Barry R O'Keefe, Susan L Mooberry, Robert H Cichewicz. An Integrated Strategy for the Detection, Dereplication, and Identification of DNA-Binding Biomolecules from Complex Natural Product Mixtures.
Journal of natural products.
2021 03; 84(3):750-761. doi:
10.1021/acs.jnatprod.0c00946
. [PMID: 33226219] - Anton Kovacik, Eva Tvrda, Tomas Jambor, Diana Fulopova, Eva Kovacikova, Lukas Hleba, Łukasz M Kołodziejczyk, Miroslava Hlebova, Agnieszka Gren, Peter Massanyi. Cytotoxic effect of aminoglycoside antibiotics on the mammalian cell lines.
Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.
2021; 56(1):1-8. doi:
10.1080/10934529.2020.1830653
. [PMID: 33040680] - A G Gomes Coutinho, E Pinheiro, R Fernandez. The calcium sensing receptor modulates H+-ATPase activity in intercalated cells.
Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
2020 Dec; 71(6):. doi:
10.26402/jpp.2020.6.09
. [PMID: 33901996] - Zhi Xu. 1,2,3-Triazole-containing hybrids with potential antibacterial activity against methicillin-resistant Staphylococcus aureus (MRSA).
European journal of medicinal chemistry.
2020 Nov; 206(?):112686. doi:
10.1016/j.ejmech.2020.112686
. [PMID: 32795773] - Xavier de la Torre, Cristiana Colamonici, Michele Iannone, Daniel Jardines, Francesco Molaioni, Francesco Botrè. Detection of clostebol in sports: Accidental doping?.
Drug testing and analysis.
2020 Nov; 12(11-12):1561-1569. doi:
10.1002/dta.2951
. [PMID: 33119965] - Scott W Korte, Rebecca A Dorfmeyer, Craig L Franklin, Aaron C Ericsson. Acute and long-term effects of antibiotics commonly used in laboratory animal medicine on the fecal microbiota.
Veterinary research.
2020 Sep; 51(1):116. doi:
10.1186/s13567-020-00839-0
. [PMID: 32928304] - Man Zhao, Jianhua Chen, Huiqing Jin, Zhi Qi. Extracellular Ca2+ induces desensitized cytosolic Ca2+ rise sensitive to phospholipase C inhibitor which suppresses root growth with Ca2+ dependence.
Journal of plant physiology.
2020 Sep; 252(?):153190. doi:
10.1016/j.jplph.2020.153190
. [PMID: 32688165] - Monica Sánchez-Tapia, Daniela Moreno-Vicencio, Guillermo Ordáz-Nava, Martha Guevara-Cruz, Omar Granados-Portillo, Ariana Vargas-Castillo, Nimbe Torres, Armando R Tovar. Antibiotic Treatment Reduces the Health Benefits of Soy Protein.
Molecular nutrition & food research.
2020 09; 64(17):e2000532. doi:
10.1002/mnfr.202000532
. [PMID: 32729948] - Hamideh Hamidi, Mahshid Zarrineh, Ali Es-Haghi, Alireza Ghasempour. Rapid and sensitive determination of neomycin and kanamycin in measles, mumps, and rubella vaccine via high-performance liquid chromatography-tandem mass spectrometry using modified super-paramagnetic Fe3O4 nanospheres.
Journal of chromatography. A.
2020 Aug; 1625(?):461343. doi:
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