Guanine (BioDeep_00000000243)

 

Secondary id: BioDeep_00000399885

natural product human metabolite PANOMIX_OTCML-2023 Endogenous blood metabolite BioNovoGene_Lab2019 Volatile Flavor Compounds


代谢物信息卡片


Guanine, Pharmaceutical Secondary Standard; Certified Reference Material

化学式: C5H5N5O (151.049408)
中文名称: 鸟嘌呤
谱图信息: 最多检出来源 Homo sapiens(blood) 0.01%

Reviewed

Last reviewed on 2024-07-24.

Cite this Page

Guanine. BioDeep Database v3. PANOMIX ltd, a top metabolomics service provider from China. https://query.biodeep.cn/s/guanine (retrieved 2024-11-21) (BioDeep RN: BioDeep_00000000243). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0).

分子结构信息

SMILES: C1=NC2=C(N1)C(=O)N=C(N2)N
InChI: InChI=1S/C5H5N5O/c6-5-9-3-2(4(11)10-5)7-1-8-3/h1H,(H4,6,7,8,9,10,11)

描述信息

Guanine is one of the five main nucleobases found in the nucleic acids DNA and RNA. Guanine is a derivative of purine, consisting of a fused pyrimidine-imidazole ring system with conjugated double bonds. Being unsaturated, the bicyclic molecule is planar. The guanine nucleoside is called guanosine. The first isolation of guanine was reported in 1844 from the excreta of sea birds, known as guano, which was used as a source of fertilizer. High affinity binding of guanine nucleotides and the ability to hydrolyze bound GTP to GDP are characteristics of an extended family of intracellular proteins. Guanine nucleotide-binding regulatory proteins may be involved in the activation of phospholipases C and A2 by hormones and other ligands. The binding of hormones to receptors that activate phospholipase C is decreased by guanine nucleotides and these hormones also stimulate a high-affinity GTPase activity in cell membranes. Effects of hormones on phospholipase C activity in cell-free preparations are dependent on the presence of guanine nucleotides. Hypoxanthine-guanine phosphoribosyltransferase (HPRT, EC 2.4.2.8) is a purine salvage enzyme that catalyses the conversion of hypoxanthine and guanine to their respective mononucleotides. Partial deficiency of this enzyme can result in the overproduction of uric acid leading to a severe form of gout, whilst a virtual absence of HPRT activity causes the Lesch-Nyhan syndrome, an inborn error of metabolism, which is characterised by hyperuricaemia, mental retardation, choreoathetosis and compulsive self-mutilation. Peroxynitrite induces DNA base damage predominantly at guanine (G) and 8-oxoguanine (8-oxoG) nucleobases via oxidation reactions. G and 8-oxoG are the most reactive bases toward Peroxynitrite and possibly the major contributors to peroxynitrite-derived genotoxic and mutagenic lesions. The neutral G radical, reacts with NO2 to yield 8-nitroguanine and 5-nitro-4-guanidinohydantoin (PMID: 16352449, 2435586, 2838362, 1487231).
Guanine is a 2-aminopurine carrying a 6-oxo substituent. It has a role as a human metabolite, an algal metabolite, a Saccharomyces cerevisiae metabolite, an Escherichia coli metabolite and a mouse metabolite. It is a purine nucleobase, an oxopurine and a member of 2-aminopurines. It derives from a hydride of a 9H-purine.
Guanine is a metabolite found in or produced by Escherichia coli (strain K12, MG1655).
Guanine is a natural product found in Fritillaria thunbergii, Isatis tinctoria, and other organisms with data available.
Guanine is a purine base that is a constituent of nucleotides occurring in nucleic acids.
Guanine is a mineral with formula of C5H3(NH2)N4O. The corresponding IMA (International Mineralogical Association) number is IMA1973-056. The IMA symbol is Gni.
Guanine is a metabolite found in or produced by Saccharomyces cerevisiae.
Occurs widely in animals and plants. Component of nucleic acids (CCD)
A 2-aminopurine carrying a 6-oxo substituent.
COVID info from COVID-19 Disease Map
Corona-virus
Coronavirus
SARS-CoV-2
COVID-19
SARS-CoV
COVID19
SARS2
SARS
[Spectral] Guanine (exact mass = 151.04941) and 3,4-Dihydroxy-L-phenylalanine (exact mass = 197.06881) were not completely separated on HPLC under the present analytical conditions as described in AC$XXX. Additionally some of the peaks in this data contains dimers and other unidentified ions.
[Spectral] Guanine (exact mass = 151.04941) and D-Gluconic acid (exact mass = 196.0583) were not completely separated on HPLC under the present analytical conditions as described in AC$XXX. Additionally some of the peaks in this data contains dimers and other unidentified ions.
[Spectral] Guanine (exact mass = 151.04941) and L-Valine (exact mass = 117.07898) were not completely separated on HPLC under the present analytical conditions as described in AC$XXX. Additionally some of the peaks in this data contains dimers and other unidentified ions.
Acquisition and generation of the data is financially supported in part by CREST/JST.
CONFIDENCE Reference Standard (Level 1); INTERNAL_ID 54
CONFIDENCE standard compound; ML_ID 43

同义名列表

90 个代谢物同义名

Guanine, Pharmaceutical Secondary Standard; Certified Reference Material; Phosphonium,[3-(dimethylamino)propyl]triphenyl bromide hydrobromide; InChI=1/C5H5N5O/c6-5-9-3-2(4(11)10-5)7-1-8-3/h1H,(H4,6,7,8,9,10,11; Guanine, United States Pharmacopeia (USP) Reference Standard; VALACICLOVIR HYDROCHLORIDE HYDRATE IMPURITY A (EP IMPURITY); VALACICLOVIR HYDROCHLORIDE HYDRATE IMPURITY A [EP IMPURITY]; VALGANCICLOVIR HYDROCHLORIDE IMPURITY B (USP IMPURITY); VALGANCICLOVIR HYDROCHLORIDE IMPURITY B [USP IMPURITY]; VALACICLOVIR HYDROCHLORIDE IMPURITY A (EP IMPURITY); VALACICLOVIR HYDROCHLORIDE IMPURITY A [EP IMPURITY]; 2-Amino-1,7-dihydro-6H-purin-6-one (Guanine); 2-AMINO-1,7-DIHYDRO-6H-PURIN-6-ONE [WHO-IP]; 6H-Purin-6-one, 2-amino-1,7-dihydro- (9CI); Valganciclovir hydrochloride impurity b; Guanine, Vetec(TM) reagent grade, 99\\%; 6H-Purin-6-one, 2-amino-1,7-dihydro-; GANCICLOVIR IMPURITY F (EP IMPURITY); GANCICLOVIR IMPURITY F [EP IMPURITY]; 3D215030-CD54-4835-A5F4-F00F86B90978; 6H-Purin-6-one, 2-amino-1,9-dihydro-; Valacyclovir hydrochloride, guanine-; 6H-purin-6-one, 2-amino-3,7-dihydro-; 2-amino-1,9-dihydro-6H-purin-6-one; ACICLOVIR IMPURITY B (EP IMPURITY); 2-amino-6,7-dihydro-1H-purin-6-one; 2-amino-6,7-dihydro-3H-purin-6-one; 2-Amino-1,7-dihydro-6H-purin-6-one; 2-amino-3,7-dihydro-6H-purin-6-one; ACICLOVIR IMPURITY B [EP IMPURITY]; 2-amino-6,9-dihydro-1H-purin-6-one; 2-Amino-1,9-dihydro-purin-6-one; 2-amino-1,9-dihydropurin-6-one; 2-amino-1,7-dihydropurin-6-one; ACICLOVIR IMPURITY B [WHO-IP]; 2-Amino-6-hydroxy-1H-purine; 2-amino-1H-purin-6(7H)-one; 2-amino-1h-purin-6(9h)-one; 2-AMINO-3H-PURIN-6(7H)-ONE; 6-Hydroxy-2-aminopurine; Aciclovir EP Impurity B; 2-Amino-6-hydroxypurine; GUANINE [USP IMPURITY]; 2-amino-6-hydroxypurin; Hypoxanthine, 2-amino-; GUANINE (USP IMPURITY); Natural pearl essence; 2-amino-9H-purin-6-ol; 2-amino-7H-purin-6-ol; GUANINE (EP IMPURITY); GUANINE [EP IMPURITY]; ACICLOVIR IMPURITY B; C.I. Natural White 1; 2-amino-Hypoxanthine; 2-amino-6-oxopurine; 2-Aminohypoxanthine; CI Natural white 1; 2-amino-6-oxypurin; Guanine, BioUltra; 2-Amino-6-purinol; GUANINE [USP-RS]; GUANINE (USP-RS); GUANINE [WHO-IP]; UNII-5Z93L87A1R; Natural white 1; GUANINE [HSDB]; GUANINE [INCI]; Stella Polaris; Pearl essence; Guanine, 98\\%; Guanine (8CI); Oprea1_875298; NCI60_012450; Mearlmaid AA; GUANINE [MI]; Guanine enol; Guanine,(S); 5Z93L87A1R; 9h-guanine; Pathocidin; AI3-24393; Mearlmaid; Dew Pearl; Guanine; Naturon; Guanin; GUN; GUA; G; Guanine; Guanine



数据库引用编号

44 个数据库交叉引用编号

分类词条

相关代谢途径

Reactome(7)

BioCyc(20)

PlantCyc(5)

代谢反应

954 个相关的代谢反应过程信息。

Reactome(93)

BioCyc(239)

WikiPathways(3)

Plant Reactome(0)

INOH(5)

PlantCyc(561)

COVID-19 Disease Map(2)

PathBank(51)

PharmGKB(0)

17 个相关的物种来源信息

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

  • Yiping Li, Xiaolong Wang. The role of DNA and RNA guanosine oxidation in cardiovascular diseases. Pharmacological research. 2024 Jun; 204(?):107187. doi: 10.1016/j.phrs.2024.107187. [PMID: 38657843]
  • Yuhang Wang, Shuo Zhao, Shuhong Wang, Jing Zhang, Yanli Zhao, Cai Ye, Zhiyu Zhao, Jinlian Li, Hongkuan Shen, Dongmei Wu. Electrochemistry detection of estrogenic effect: Regulation of de novo purine synthesis and catabolism by gibberellin and fulvestrant. Bioelectrochemistry (Amsterdam, Netherlands). 2024 Apr; 156(?):108634. doi: 10.1016/j.bioelechem.2023.108634. [PMID: 38160510]
  • Yun Qiu, Bin Liu, Wenchao Zhou, Xueqing Tao, Yang Liu, Linxi Mao, Huizhen Wang, Hanwen Yuan, Yupei Yang, Bin Li, Wei Wang, Yixing Qiu. Repair-driven DNA tetrahedral nanomachine combined with DNAzyme for 8-oxo guanine DNA glycosylase activity assay, drug screening and intracellular imaging. The Analyst. 2024 Jan; 149(2):537-545. doi: 10.1039/d3an01521a. [PMID: 38088097]
  • Mai Takakura, Yu Hong Lam, Reiko Nakagawa, Man Yung Ng, Xinyue Hu, Priyanshu Bhargava, Abdalla G Alia, Yuzhe Gu, Zigao Wang, Takeshi Ota, Yoko Kimura, Nao Morimoto, Fumitaka Osakada, Ah Young Lee, Danny Leung, Tomoyuki Miyashita, Juan Du, Hiroyuki Okuno, Yukinori Hirano. Differential second messenger signaling via dopamine neurons bidirectionally regulates memory retention. Proceedings of the National Academy of Sciences of the United States of America. 2023 Sep; 120(36):e2304851120. doi: 10.1073/pnas.2304851120. [PMID: 37639608]
  • Hui-Xia Zhang, Dian Yu, Jian-Feng Sun, Ling Zeng, Cai-Yun Wang, Li-Ping Bai, Guo-Yuan Zhu, Zhi-Hong Jiang, Wei Zhang. An integrated approach to evaluate acetamiprid-induced oxidative damage to tRNA in human cells based on oxidized nucleotide and tRNA profiling. Environment international. 2023 Jun; 178(?):108038. doi: 10.1016/j.envint.2023.108038. [PMID: 37343327]
  • Shaowen Yin, Wenxian Lan, Xianfeng Hou, Zhijun Liu, Hongjuan Xue, Chunxi Wang, Gong-Li Tang, Chunyang Cao. Trioxacarcin A Interactions with G-Quadruplex DNA Reveal Its Potential New Targets as an Anticancer Agent. Journal of medicinal chemistry. 2023 05; 66(10):6798-6810. doi: 10.1021/acs.jmedchem.3c00178. [PMID: 37154782]
  • Haopeng Yu, Yiman Qi, Bibo Yang, Xiaofei Yang, Yiliang Ding. G4Atlas: a comprehensive transcriptome-wide G-quadruplex database. Nucleic acids research. 2023 01; 51(D1):D126-D134. doi: 10.1093/nar/gkac896. [PMID: 36243987]
  • Kevin Xiao, Homa Ghalei, Sohail Khoshnevis. RNA structural probing of guanine and uracil nucleotides in yeast. PloS one. 2023; 18(7):e0288070. doi: 10.1371/journal.pone.0288070. [PMID: 37418367]
  • Zhi-Min Zhao, Chuan-Wu Zhu, Jia-Quan Huang, Xiao-Dong Li, Yu-Xi Zhang, Jian Liang, Wei Zhang, Yong Zhang, Xian-Gao Jiang, Ya-Li Zong, Ke-Jun Zhang, Ke-Wei Sun, Biao Zhang, Yun-Hai Lv, Hui-Chun Xing, Qing Xie, Ping Liu, Cheng-Hai Liu. Efficacy and safety of Fuzheng Huayu tablet on persistent advanced liver fibrosis following 2 years entecavir treatment: A single arm clinical objective performance criteria trial. Journal of ethnopharmacology. 2022 Nov; 298(?):115599. doi: 10.1016/j.jep.2022.115599. [PMID: 35932973]
  • Qiankun Hu, Xun Qi, Yiqi Yu, Yueqiu Gao, Xinxin Zhang, Qianqian Wang, Xueyun Zhang, Yunhui Zhuo, Jing Li, Jiming Zhang, Liang Chen, Yuxian Huang. The efficacy and safety of adding on or switching to peginterferon α-2b in HBeAg-positive chronic hepatitis B patients with long-term entecavir treatment: a multicentre randomised controlled trial. Alimentary pharmacology & therapeutics. 2022 11; 56(9):1394-1407. doi: 10.1111/apt.17222. [PMID: 36128636]
  • Qi Zhang, Jinlin Liang, Junhua Yin, Yiyue Jiang, Ning Yu, Xingmei Liao, Siru Zhao, Leyuan Wu, Rong Fan. Real-life impact of tenofovir disoproxil fumarate and entecavir therapy on lipid profile, glucose, and uric acid in chronic hepatitis B patients. Journal of medical virology. 2022 11; 94(11):5465-5474. doi: 10.1002/jmv.27977. [PMID: 35794065]
  • Weihan Hua, Ziqi Gan, Yeke Wu, Lixing Zhao. Identification of a novel missense mutation in non-syndromic familial multiple supernumerary teeth. Archives of oral biology. 2022 Nov; 143(?):105542. doi: 10.1016/j.archoralbio.2022.105542. [PMID: 36108431]
  • Xiaofei Yang, Haopeng Yu, Susan Duncan, Yueying Zhang, Jitender Cheema, Haifeng Liu, J Benjamin Miller, Jie Zhang, Chun Kit Kwok, Huakun Zhang, Yiliang Ding. RNA G-quadruplex structure contributes to cold adaptation in plants. Nature communications. 2022 10; 13(1):6224. doi: 10.1038/s41467-022-34040-y. [PMID: 36266343]
  • Dan-Ying Cheng, Zhi-Min Zhao, Gang Wan, Huan-Wei Zheng, Jia-Quan Huang, Cheng-Hai Liu, Hui-Chun Xing. Impact of Fuzheng Huayu tablet on antiviral effect of entecavir in patients with hepatitis B cirrhosis. Hepatobiliary & pancreatic diseases international : HBPD INT. 2022 Oct; 21(5):479-484. doi: 10.1016/j.hbpd.2022.03.007. [PMID: 35346577]
  • Jia-Yi Lin, Way-Rong Lin, I-Son Ng. CRISPRa/i with Adaptive Single Guide Assisted Regulation DNA (ASGARD) mediated control of Chlorella sorokiniana to enhance lipid and protein production. Biotechnology journal. 2022 Oct; 17(10):e2100514. doi: 10.1002/biot.202100514. [PMID: 34800080]
  • Mohamed Hamdi, Enas Elmowafy, Hend Mohamed Abdel-Bar, Akram M ElKashlan, Khuloud T Al-Jamal, Gehanne A S Awad. Hyaluronic acid-entecavir conjugates-core/lipid-shell nanohybrids for efficient macrophage uptake and hepatotropic prospects. International journal of biological macromolecules. 2022 Sep; 217(?):731-747. doi: 10.1016/j.ijbiomac.2022.07.067. [PMID: 35841964]
  • Fangfang Niu, Changyang Ji, Zizhen Liang, Rongfang Guo, Yixuan Chen, Yonglun Zeng, Liwen Jiang. ADP-ribosylation factor D1 modulates Golgi morphology, cell plate formation, and plant growth in Arabidopsis. Plant physiology. 2022 09; 190(2):1199-1213. doi: 10.1093/plphys/kiac329. [PMID: 35876822]
  • Martin Bitomský, Lucie Kobrlová, Michal Hroneš, Jitka Klimešová, Martin Duchoslav. Stoichiometry versus ecology: the relationships between genome size and guanine-cytosine content, and tissue nitrogen and phosphorus in grassland herbs. Annals of botany. 2022 09; 130(2):189-197. doi: 10.1093/aob/mcac079. [PMID: 35700050]
  • Dezhen Wang, Elaine S Ho, M Grazia Cotticelli, Peining Xu, Jill S Napierala, Lauren A Hauser, Marek Napierala, Blanca E Himes, Robert B Wilson, David R Lynch, Clementina Mesaros. Skin fibroblast metabolomic profiling reveals that lipid dysfunction predicts the severity of Friedreich's ataxia. Journal of lipid research. 2022 09; 63(9):100255. doi: 10.1016/j.jlr.2022.100255. [PMID: 35850241]
  • Jana Pilátová, Tomáš Pánek, Miroslav Oborník, Ivan Čepička, Peter Mojzeš. Revisiting biocrystallization: purine crystalline inclusions are widespread in eukaryotes. The ISME journal. 2022 09; 16(9):2290-2294. doi: 10.1038/s41396-022-01264-1. [PMID: 35672454]
  • Mingyuan Zhang, Haikun Zhang, Xiaoming Cheng, Xiaomei Wang, Hongqin Xu, Xiuzhu Gao, Ruihong Wu, Dake Zhang, Yuchen Xia, Junqi Niu. Liver biopsy of chronic hepatitis B patients indicates HBV integration profile may complicate the endpoint and effect of entecavir treatment. Antiviral research. 2022 08; 204(?):105363. doi: 10.1016/j.antiviral.2022.105363. [PMID: 35709897]
  • Roxanna J Llinas, Jia Qi Xiong, Natalie M Clark, Sarah E Burkhart, Bonnie Bartel. An Arabidopsis pre-RNA processing8a (prp8a) missense allele restores splicing of a subset of mis-spliced mRNAs. Plant physiology. 2022 08; 189(4):2175-2192. doi: 10.1093/plphys/kiac221. [PMID: 35608297]
  • Dongchang Zeng, Zhiye Zheng, Yuxin Liu, Taoli Liu, Tie Li, Jianhong Liu, Qiyu Luo, Yang Xue, Shengting Li, Nan Chai, Suize Yu, Xianrong Xie, Yao-Guang Liu, Qinlong Zhu. Exploring C-to-G and A-to-Y Base Editing in Rice by Using New Vector Tools. International journal of molecular sciences. 2022 Jul; 23(14):. doi: 10.3390/ijms23147990. [PMID: 35887335]
  • Tomoyuki Otsuka, Sumiyuki Nishida, Takayuki Shibahara, Burcu Temizoz, Masanari Hamaguchi, Takayuki Shiroyama, Keiko Kimura, Kotaro Miyake, Haruhiko Hirata, Yumiko Mizuno, Mayu Yagita, Yusuke Manabe, Etsushi Kuroda, Yoshito Takeda, Hiroshi Kida, Ken J Ishii, Atsushi Kumanogoh. CpG ODN (K3)-toll-like receptor 9 agonist-induces Th1-type immune response and enhances cytotoxic activity in advanced lung cancer patients: a phase I study. BMC cancer. 2022 Jul; 22(1):744. doi: 10.1186/s12885-022-09818-4. [PMID: 35799134]
  • Edwin K Jackson, Elizabeth V Menshikova, Vladimir B Ritov, Delbert G Gillespie, Zaichuan Mi. Biochemical pathways of 8-aminoguanine production in Sprague-Dawley and Dahl salt-sensitive rats. Biochemical pharmacology. 2022 07; 201(?):115076. doi: 10.1016/j.bcp.2022.115076. [PMID: 35551915]
  • Shazia Nazar, Taseer Ahmed Khan, Sitwat Zehra. Association of promoter region A-1012G polymorphism (rs4516035) of vitamin-D receptor gene with coronary artery disease. JPMA. The Journal of the Pakistan Medical Association. 2022 Jun; 72(6):1137-1141. doi: 10.47391/jpma.3588. [PMID: 35751324]
  • Juhan Lee, Jae Geun Lee, Shin Hwang, Kwang-Woong Lee, Jong Man Kim, Je Ho Ryu, Bong-Wan Kim, Dong Lak Choi, Young Kyoung You, Dong-Sik Kim, Yang Won Nah, Koo Jeong Kang, Jai Young Cho, Hee Chul Yu, Geun Hong, Dongho Choi, Ju Ik Moon, Myoung Soo Kim. Renal safety of tenofovir disoproxil fumarate and entecavir in liver transplant patients: a nationwide Korean registry study. Hepatology international. 2022 Jun; 16(3):537-544. doi: 10.1007/s12072-022-10320-z. [PMID: 35467324]
  • Po-Ke Hsu, Pei-Yuan Su, Chia-Lin Wu. Analysis of antiviral efficacy after switching from brand to generic entecavir in patients with treatment-naïve chronic hepatitis B. BMC gastroenterology. 2022 May; 22(1):228. doi: 10.1186/s12876-022-02317-7. [PMID: 35538425]
  • Xin-Fu Xie, Bing-Ying Xie, Wen-Hao Zhang, Ji-Hua Hou, Ding-Lin Liu, Li Zhang, Li-Xia Xu, Zhi-Lian Li, Rui-Zhao Li, Zhi-Ming Ye. The efficacy and safety of tacrolimus and entecavir combination therapy in the treatment of hepatitis B virus-associated glomerulonephritis: a multi-center, placebo controlled, and single-blind randomized trial. Annals of palliative medicine. 2022 May; 11(5):1762-1773. doi: 10.21037/apm-22-328. [PMID: 35672893]
  • Chan-Young Jung, Hyung Woo Kim, Sang Hoon Ahn, Seung Up Kim, Beom Seok Kim. Higher risk of kidney function decline with entecavir than tenofovir alafenamide in patients with chronic hepatitis B. Liver international : official journal of the International Association for the Study of the Liver. 2022 05; 42(5):1017-1026. doi: 10.1111/liv.15208. [PMID: 35220649]
  • Avery S Ward, Chia-Heng Hsiung, Daniel G Kesterson, Vasudeva G Kamath, Edward E McKee. Entecavir competitively inhibits deoxyguanosine and deoxyadenosine phosphorylation in isolated mitochondria and the perfused rat heart. The Journal of biological chemistry. 2022 05; 298(5):101876. doi: 10.1016/j.jbc.2022.101876. [PMID: 35358513]
  • Claudia Castillo-González, Borja Barbero Barcenilla, Pierce G Young, Emily Hall, Dorothy E Shippen. Quantification of 8-oxoG in Plant Telomeres. International journal of molecular sciences. 2022 Apr; 23(9):. doi: 10.3390/ijms23094990. [PMID: 35563379]
  • Young Eun Chon, Soo Young Park, Seung Up Kim, Han Pyo Hong, Jae Seung Lee, Hye Won Lee, Mi Na Kim, Jun Yong Park, Do Young Kim, Sang Hoon Ahn, Beom Kyung Kim. Long-term renal safety between patients with chronic hepatitis B receiving tenofovir vs. entecavir therapy: A multicenter study. Journal of viral hepatitis. 2022 04; 29(4):289-296. doi: 10.1111/jvh.13656. [PMID: 35152517]
  • Man-Fung Yuen, Danny Ka-Ho Wong, Thomas Schluep, Ching-Lung Lai, Carlo Ferrari, Stephen Locarnini, Regina Cheuk-Lam Lo, Robert G Gish, James Hamilton, Christine I Wooddell, Lung Yi Mak, Bruce D Given. Long-term serological, virological and histological responses to RNA inhibition by ARC-520 in Chinese chronic hepatitis B patients on entecavir treatment. Gut. 2022 04; 71(4):789-797. doi: 10.1136/gutjnl-2020-323445. [PMID: 33712437]
  • Andreas Ärlemalm, Anders Helldén, Louise Karlsson, Björn Carlsson. Rapid determination of acyclovir, its main metabolite 9-carboxymethoxymethylguanine, ganciclovir, and penciclovir in human serum using LC-MS/MS. Biomedical chromatography : BMC. 2022 Apr; 36(4):e5315. doi: 10.1002/bmc.5315. [PMID: 34981553]
  • Chan-Young Jung, Hyung Woo Kim, Sang Hoon Ahn, Seung Up Kim, Beom Seok Kim. Tenofovir is Associated With Higher Risk of Kidney Function Decline Than Entecavir in Patients With Chronic Hepatitis B. Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association. 2022 04; 20(4):956-958.e2. doi: 10.1016/j.cgh.2021.05.032. [PMID: 34029751]
  • Maria Choleva, Chrysa Argyrou, Maria Detopoulou, Maria-Eleni Donta, Anastasia Gerogianni, Evanggelia Moustou, Androniki Papaemmanouil, Christina Skitsa, Genovefa Kolovou, Petros Kalogeropoulos, Elizabeth Fragopoulou. Effect of Moderate Wine Consumption on Oxidative Stress Markers in Coronary Heart Disease Patients. Nutrients. 2022 Mar; 14(7):. doi: 10.3390/nu14071377. [PMID: 35405991]
  • Zili Hu, Huilan Zeng, Jingyu Hou, Juncheng Wang, Li Xu, Yaojun Zhang, Minshan Chen, Zhongguo Zhou. Tenofovir vs. Entecavir on Outcomes of Hepatitis B Virus-Related Hepatocellular Carcinoma after Radiofrequency Ablation. Viruses. 2022 03; 14(4):. doi: 10.3390/v14040656. [PMID: 35458386]
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