Potassium ion (1+)

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CAS: 24203-36-9
MF: C17H22N2O3
MW: 302.36818
Synonyms: Potassium ion (1+)

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Yalin Tang

Institute of Chemistry, Chinese Academy of Sciences
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Jiang Zhao

Institute of Chemistry, Chinese Academy of Sciences
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Daoben Zhu

Institute of Chemistry, Chinese Academy of Sciences
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Lei Jiang

Institute of Chemistry, Chinese Academy of Sciences
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Du-Jin Wang

Institute of Chemistry, Chinese Academy of Sciences
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ZhiTang Huang

Institute of Chemistry, Chinese Academy of Sciences
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Lanqun Mao

Institute of Chemistry, Chinese Academy of Sciences
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Co-reporter: Huihui Liu, Rui Chen, Jiyun Wang, Suming Chen, Caiqiao Xiong, Jianing Wang, Jian Hou, Qing He, Ning Zhang, Zongxiu Nie, and Lanqun Mao
pp: 10114
Publication Date(Web):September 23, 2014
DOI: 10.1021/ac5034566
A sensitive analytical technique for visualizing small endogenous molecules simultaneously is of great significance for clearly elucidating metabolic mechanisms during pathological progression. In the present study, 1,5-naphthalenediamine (1,5-DAN) hydrochloride was prepared for matrix-assisted laser desorption/ionization (MALDI) mass spectrometry imaging (MSI) of small molecules in liver, brain, and kidneys from mice. Furthermore, 1,5-DAN hydrochloride assisted LDI MSI of small molecules in brain tissue of rats subjected to middle cerebral artery occlusion (MCAO) was carried out to investigate the altered metabolic pathways and mechanisms underlying the development of ischemic brain damage. Our results suggested that the newly prepared matrix possessed brilliant features including low cost, strong ultraviolet absorption, high salt tolerance capacity, and fewer background signals especially in the low mass range (typically m/z < 500), which permitted us to visualize the spatial distribution of a broad range of small molecule metabolites including metal ions, amino acids, carboxylic acids, nucleotide derivatives, peptide, and lipids simultaneously. Nineteen endogenous metabolites involved in metabolic networks such as ATP metabolism, tricarboxylic acid (TCA) cycle, glutamate-glutamine cycle, and malate-aspartate shuttle, together with metal ions and phospholipids as well as antioxidants underwent relatively obvious changes after 24 h of MCAO. The results were highly consistent with the data obtained by MRM MS analysis. These findings highlighted the promising potential of the organic salt matrix for application in the field of biomedical research.

Huimin Ma

Institute of Chemistry, Chinese Academy of Sciences
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Yi Chen

Institute of Chemistry, Chinese Academy of Sciences
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Zongxiu Nie

Institute of Chemistry, Chinese Academy of Sciences
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Co-reporter: Huihui Liu, Rui Chen, Jiyun Wang, Suming Chen, Caiqiao Xiong, Jianing Wang, Jian Hou, Qing He, Ning Zhang, Zongxiu Nie, and Lanqun Mao
pp: 10114
Publication Date(Web):September 23, 2014
DOI: 10.1021/ac5034566
A sensitive analytical technique for visualizing small endogenous molecules simultaneously is of great significance for clearly elucidating metabolic mechanisms during pathological progression. In the present study, 1,5-naphthalenediamine (1,5-DAN) hydrochloride was prepared for matrix-assisted laser desorption/ionization (MALDI) mass spectrometry imaging (MSI) of small molecules in liver, brain, and kidneys from mice. Furthermore, 1,5-DAN hydrochloride assisted LDI MSI of small molecules in brain tissue of rats subjected to middle cerebral artery occlusion (MCAO) was carried out to investigate the altered metabolic pathways and mechanisms underlying the development of ischemic brain damage. Our results suggested that the newly prepared matrix possessed brilliant features including low cost, strong ultraviolet absorption, high salt tolerance capacity, and fewer background signals especially in the low mass range (typically m/z < 500), which permitted us to visualize the spatial distribution of a broad range of small molecule metabolites including metal ions, amino acids, carboxylic acids, nucleotide derivatives, peptide, and lipids simultaneously. Nineteen endogenous metabolites involved in metabolic networks such as ATP metabolism, tricarboxylic acid (TCA) cycle, glutamate-glutamine cycle, and malate-aspartate shuttle, together with metal ions and phospholipids as well as antioxidants underwent relatively obvious changes after 24 h of MCAO. The results were highly consistent with the data obtained by MRM MS analysis. These findings highlighted the promising potential of the organic salt matrix for application in the field of biomedical research.