Pavacot (BioDeep_00000865383)

Main id: BioDeep_00000398524

 


代谢物信息卡片


InChI=1\C20H21NO4\c1-22-17-6-5-13(10-18(17)23-2)9-16-15-12-20(25-4)19(24-3)11-14(15)7-8-21-16\h5-8,10-12H,9H2,1-4H

化学式: C20H21NO4 (339.1471)
中文名称:
谱图信息: 最多检出来源 () 0%

分子结构信息

SMILES: COC1=C(C=C(C=C1)CC2=NC=CC3=CC(=C(C=C32)OC)OC)OC
InChI: InChI=1S/C20H21NO4/c1-22-17-6-5-13(10-18(17)23-2)9-16-15-12-20(25-4)19(24-3)11-14(15)7-8-21-16/h5-8,10-12H,9H2,1-4H3

描述信息

A - Alimentary tract and metabolism > A03 - Drugs for functional gastrointestinal disorders > A03A - Drugs for functional gastrointestinal disorders > A03AD - Papaverine and derivatives
G - Genito urinary system and sex hormones > G04 - Urologicals > G04B - Urologicals > G04BE - Drugs used in erectile dysfunction
D002492 - Central Nervous System Depressants > D009294 - Narcotics > D053610 - Opiate Alkaloids
C78274 - Agent Affecting Cardiovascular System > C29707 - Vasodilating Agent
D004791 - Enzyme Inhibitors > D010726 - Phosphodiesterase Inhibitors
D000089162 - Genitourinary Agents > D064804 - Urological Agents
D002317 - Cardiovascular Agents > D014665 - Vasodilator Agents
C471 - Enzyme Inhibitor > C744 - Phosphodiesterase Inhibitor

同义名列表

82 个代谢物同义名

InChI=1\C20H21NO4\c1-22-17-6-5-13(10-18(17)23-2)9-16-15-12-20(25-4)19(24-3)11-14(15)7-8-21-16\h5-8,10-12H,9H2,1-4H; 1-{[3,4-bis(methyloxy)phenyl]methyl}-6,7-bis(methyloxy)isoquinoline; Isoquinoline, 1-((3,4-dimethoxyphenyl)methyl)-6,7-dimethoxy-; Isoquinoline, 1-[(3,4-dimethoxyphenyl)methyl]-6,7-dimethoxy-; 1-[(3,4-dimethoxyphenyl)methyl]-6,7-dimethoxy-isoquinoline; 4-[(6,7-Dimethoxyisoquinolyl)methyl]-1,2-dimethoxybenzene; 1-((3,4-Dimethoxyphenyl)methyl)-6,7-dimethoxyisoquinoline; 1-[(3,4-dimethoxyphenyl)methyl]-6,7-dimethoxyisoquinoline; 1-[(3,4-Dimethoxyphenyl)methyl]6,7-dimethoxyisoquinoline; 1-(3,4-Dimethoxy-benzyl)-6,7-dimethoxy-isoquinoline; 1-(3,4-dimethoxybenzyl)-6,7-dimethoxy-isoquinoline; 1-(3,4-dimethoxybenzyl)-6,7-dimethoxyisoquinoline; 6,7-Dimethoxy-1-(3,4-dimethoxybenzyl)isoquinoline; Isoquinoline, 6,7-dimethoxy-1-veratryl- (8CI); 5-21-06-00182 (Beilstein Handbook Reference); Isoquinoline, 6,7-dimethoxy-1-veratryl-(8Cl); Isoquinoline, 6,7-dimethoxy-1-veratryl-; 6,7-Dimethoxy-1-veratrylisoquinoline; WLN: T66 CNJ B1R CO1 DO1& HO1 IO1; SDCCGMLS-0003037.P003; Papaverina [Italian]; 58-74-2 (FREE BASE ); Prestwick0_000583; Prestwick3_000583; Prestwick1_000583; Prestwick2_000583; Spectrum4_000467; EINECS 200-397-2; Spectrum3_000537; Spectrum5_001188; Spectrum2_000978; NCGC00015810-03; Spectrum_000071; NCGC00015810-02; NCGC00015810-01; NSC35443 (HCL); Oprea1_387689; Lopac0_000957; KBioSS_000471; DivK1c_000321; MEGxp0_001880; BPBio1_000470; Oprea1_810508; 61-25-6 (HCL); BSPBio_000426; KBioGR_000914; BSPBio_002153; NINDS_000321; KBio2_000471; Lopac-P-3510; SPBio_002645; ACon1_000238; ACon1_002094; SPBio_001015; ZINC00056555; KBio1_000321; NCI60_003183; KBio2_005607; BAS 00674058; KBio2_003039; KBio3_001653; IDI1_000321; CAS-61-25-6; AIDS-000185; BRN 0312930; NSC 136630; Papaverine; Papanerine; AIDS000185; Papaverin; Robaxapap; NSC136630; Papanerin; Ceraspan; TNP00305; ST023301; 58-74-2; Pavacot; C06533; RS 47; S-M-R; Papaverine



数据库引用编号

13 个数据库交叉引用编号

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)

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。

亚细胞结构定位 关联基因列表
Cytoplasm 8 AXIN2, BDNF, CAT, EDN1, HMGB1, NOS3, PRKX, VEGFA
Peripheral membrane protein 1 HMGB1
Nucleus 5 AXIN2, HMGB1, NOS3, PRKX, VEGFA
cytosol 5 AVP, AXIN2, CAT, NOS3, PDE10A
dendrite 2 AVP, BDNF
centrosome 1 AXIN2
nucleoplasm 3 HMGB1, NOS3, PRKX
Cell membrane 3 ADRB3, HMGB1, TNF
Multi-pass membrane protein 3 ADRB3, CACNA1I, KCNA3
cell junction 1 AGER
cell surface 4 AGER, HMGB1, TNF, VEGFA
glutamatergic synapse 1 KCNA3
Golgi apparatus 2 NOS3, VEGFA
Golgi membrane 1 NOS3
neuronal cell body 1 TNF
postsynapse 1 AGER
presynaptic membrane 1 KCNA3
synaptic vesicle 1 BDNF
Cytoplasm, cytosol 1 PDE10A
endosome 1 HMGB1
plasma membrane 11 ADRB3, AGER, AXIN2, CACNA1I, GCG, HMGB1, KCNA3, KNG1, NOS3, REN, TNF
Membrane 7 AGER, BDNF, CACNA1I, CAT, KCNA3, REN, VEGFA
apical plasma membrane 1 AGER
axon 2 BDNF, KCNA3
caveola 1 NOS3
extracellular exosome 2 CAT, KNG1
endoplasmic reticulum 2 HMGB1, VEGFA
extracellular space 11 AVP, BDNF, EDN1, GCG, HMGB1, IL10, IL6, KNG1, REN, TNF, VEGFA
perinuclear region of cytoplasm 3 BDNF, KCNA3, NOS3
adherens junction 1 VEGFA
mitochondrion 1 CAT
protein-containing complex 1 CAT
intracellular membrane-bounded organelle 1 CAT
Single-pass type I membrane protein 1 AGER
Secreted 9 AVP, BDNF, EDN1, GCG, HMGB1, IL10, IL6, REN, VEGFA
extracellular region 13 AGER, AVP, BDNF, CAT, EDN1, GCG, HMGB1, IL10, IL6, KNG1, REN, TNF, VEGFA
basal part of cell 1 EDN1
mitochondrial matrix 1 CAT
Extracellular side 1 HMGB1
external side of plasma membrane 1 TNF
Secreted, extracellular space, extracellular matrix 1 VEGFA
beta-catenin destruction complex 1 AXIN2
Cytoplasm, P-body 1 NOS3
P-body 1 NOS3
apical part of cell 1 REN
recycling endosome 1 TNF
Single-pass type II membrane protein 1 TNF
postsynaptic membrane 1 KCNA3
Membrane raft 2 KCNA3, TNF
focal adhesion 1 CAT
extracellular matrix 1 VEGFA
Peroxisome 1 CAT
Peroxisome matrix 1 CAT
peroxisomal matrix 1 CAT
peroxisomal membrane 1 CAT
collagen-containing extracellular matrix 1 KNG1
secretory granule 2 AVP, VEGFA
receptor complex 1 ADRB3
phagocytic cup 1 TNF
Chromosome 1 HMGB1
cytoskeleton 1 NOS3
Secreted, extracellular space 1 KNG1
blood microparticle 1 KNG1
[Isoform 2]: Cell membrane 1 KCNA3
fibrillar center 1 AGER
Cytoplasm, Stress granule 1 NOS3
cytoplasmic stress granule 1 NOS3
voltage-gated potassium channel complex 1 KCNA3
ficolin-1-rich granule lumen 2 CAT, HMGB1
secretory granule lumen 3 CAT, GCG, HMGB1
endoplasmic reticulum lumen 4 BDNF, GCG, IL6, KNG1
transcription repressor complex 1 HMGB1
platelet alpha granule lumen 2 KNG1, VEGFA
voltage-gated calcium channel complex 1 CACNA1I
endocytic vesicle membrane 1 NOS3
transport vesicle 1 EDN1
neuronal dense core vesicle 1 AVP
calyx of Held 1 KCNA3
clathrin-coated endocytic vesicle membrane 1 AVP
endoplasmic reticulum-Golgi intermediate compartment 1 HMGB1
[Isoform 1]: Cell membrane 2 AGER, KCNA3
condensed chromosome 1 HMGB1
[Glucagon-like peptide 1]: Secreted 1 GCG
[Tumor necrosis factor, soluble form]: Secreted 1 TNF
rough endoplasmic reticulum lumen 1 EDN1
catalase complex 1 CAT
Weibel-Palade body 1 EDN1
alphav-beta3 integrin-HMGB1 complex 1 HMGB1
interleukin-6 receptor complex 1 IL6
[N-VEGF]: Cytoplasm 1 VEGFA
[VEGFA]: Secreted 1 VEGFA
[Isoform L-VEGF189]: Endoplasmic reticulum 1 VEGFA
[Isoform VEGF121]: Secreted 1 VEGFA
[Isoform VEGF165]: Secreted 1 VEGFA
VEGF-A complex 1 VEGFA
[Isoform 3]: Cytoplasm, perinuclear region 1 KCNA3
[Neurotrophic factor BDNF precursor form]: Secreted 1 BDNF
[Isoform 10]: Cell membrane 1 AGER
[C-domain 2]: Secreted 1 TNF
[Tumor necrosis factor, membrane form]: Membrane 1 TNF
[C-domain 1]: Secreted 1 TNF


文献列表

  • Najeeb Ur Rehman, Mohd Nazam Ansari, Wasim Ahmad, Mohd Amir. The Detailed Pharmacodynamics of the Gut Relaxant Effect and GC-MS Analysis of the Grewia tenax Fruit Extract: In Vivo and Ex Vivo Approach. Molecules (Basel, Switzerland). 2022 Dec; 27(24):. doi: 10.3390/molecules27248880. [PMID: 36558012]
  • Daniella Anthea Gomes, Anna Margaretha Joubert, Michelle Helen Visagie. The Biological Relevance of Papaverine in Cancer Cells. Cells. 2022 10; 11(21):. doi: 10.3390/cells11213385. [PMID: 36359780]
  • Osman K Jamil, Aaron Cravens, James T Payne, Colin Y Kim, Christina D Smolke. Biosynthesis of tetrahydropapaverine and semisynthesis of papaverine in yeast. Proceedings of the National Academy of Sciences of the United States of America. 2022 08; 119(33):e2205848119. doi: 10.1073/pnas.2205848119. [PMID: 35939674]
  • Jihion Yu, Jun-Young Park, Jai-Hyun Hwang, Cheryn Song, Young-Kug Kim. Effect of Papaverine on Renal Artery Blood Flow during Robot-Assisted Partial Nephrectomy: A Randomized Controlled Study. Annals of surgical oncology. 2022 Aug; 29(8):5321-5329. doi: 10.1245/s10434-022-11586-1. [PMID: 35368220]
  • Jihion Yu, Cheryn Song, Young-Kug Kim. ASO Author Reflections: Papaverine and Beneficial Renal Effects in Robot-Assisted Partial Nephrectomy. Annals of surgical oncology. 2022 08; 29(8):5330-5331. doi: 10.1245/s10434-022-11619-9. [PMID: 35347516]
  • Najeeb Ur Rehman, Mohd Nazam Ansari, Wasim Ahmad, Mohd Amir. GC-MS Analysis and In Vivo and Ex Vivo Antidiarrheal and Antispasmodic Effects of the Methanolic Extract of Acacia nilotica. Molecules (Basel, Switzerland). 2022 Mar; 27(7):. doi: 10.3390/molecules27072107. [PMID: 35408506]
  • Magdalena Antonowicz, Janusz Szewczenko, Anita Kajzer, Wojciech Kajzer, Joanna Jaworska, Katarzyna Jelonek, Paulina Karpeta-Jarząbek, Piotr Bryniarski, Maciej Krzywiecki, Lucyna Grządziel, Andrzej S Swinarew, Damian S Nakonieczny, Janusz Kasperczyk. Assessment of encrustation and physicochemical properties of poly(lactide-glycolide) - Papaverine hydrochloride coating on ureteral double-J stents after long-term flow of artificial urine. Journal of biomedical materials research. Part B, Applied biomaterials. 2022 02; 110(2):367-381. doi: 10.1002/jbm.b.34913. [PMID: 34302425]
  • Hideaki Tanaka, Hidenari Matsumoto, Haruya Takahashi, Masahiro Hosonuma, Shunya Sato, Kunihiro Ogura, Yosuke Oishi, Ryota Masaki, Koshiro Sakai, Teruo Sekimoto, Seita Kondo, Hiroaki Tsujita, Shigeto Tsukamoto, Arihiro Sumida, Natsumi Okada, Kazuo Inoue, Toshiro Shinke. Linear concentration-response relationship of serum caffeine with adenosine-induced fractional flow reserve overestimation: a comparison with papaverine. EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology. 2021 Dec; 17(11):e925-e931. doi: 10.4244/eij-d-21-00453. [PMID: 34647891]
  • Tuğçe Teker, Mehmet Aslanoglu. Development of a Dy2O3@Eu2O3-carbon nanofiber based electrode for highly sensitive detection of papaverine. Analytica chimica acta. 2021 Oct; 1183(?):338972. doi: 10.1016/j.aca.2021.338972. [PMID: 34627531]
  • Priyanka Agarwal, Sairam Behera, Ilva Dana Rupenthal. Ocular Distribution of Papaverine Using Non-aqueous Vehicles. AAPS PharmSciTech. 2021 May; 22(5):160. doi: 10.1208/s12249-021-02050-6. [PMID: 34031787]
  • Mark J Henderson, Kathleen A Trychta, Shyh-Ming Yang, Susanne Bäck, Adam Yasgar, Emily S Wires, Carina Danchik, Xiaokang Yan, Hideaki Yano, Lei Shi, Kuo-Jen Wu, Amy Q Wang, Dingyin Tao, Gergely Zahoránszky-Kőhalmi, Xin Hu, Xin Xu, David Maloney, Alexey V Zakharov, Ganesha Rai, Fumihiko Urano, Mikko Airavaara, Oksana Gavrilova, Ajit Jadhav, Yun Wang, Anton Simeonov, Brandon K Harvey. A target-agnostic screen identifies approved drugs to stabilize the endoplasmic reticulum-resident proteome. Cell reports. 2021 04; 35(4):109040. doi: 10.1016/j.celrep.2021.109040. [PMID: 33910017]
  • Phani Krishna Parcha, Sailu Sarvagalla, Cheemala Ashok, S J Sudharshan, Madhu Dyavaiah, Mohane Selvaraj Coumar, Baskaran Rajasekaran. Repositioning antispasmodic drug Papaverine for the treatment of chronic myeloid leukemia. Pharmacological reports : PR. 2021 Apr; 73(2):615-628. doi: 10.1007/s43440-020-00196-x. [PMID: 33389727]
  • Duaa Eliwa, Mohamed A Albadry, Abdel-Rahim S Ibrahim, Amal Kabbash, Kumudini Meepagala, Ikhlas A Khan, Mona El-Aasr, Samir A Ross. Biotransformation of papaverine and in silico docking studies of the metabolites on human phosphodiesterase 10a. Phytochemistry. 2021 Mar; 183(?):112598. doi: 10.1016/j.phytochem.2020.112598. [PMID: 33360527]
  • Bernhard Ellinger, Denisa Bojkova, Andrea Zaliani, Jindrich Cinatl, Carsten Claussen, Sandra Westhaus, Oliver Keminer, Jeanette Reinshagen, Maria Kuzikov, Markus Wolf, Gerd Geisslinger, Philip Gribbon, Sandra Ciesek. A SARS-CoV-2 cytopathicity dataset generated by high-content screening of a large drug repurposing collection. Scientific data. 2021 02; 8(1):70. doi: 10.1038/s41597-021-00848-4. [PMID: 33637768]
  • Narjes Saheb Sharif-Askari, Fatemeh Saheb Sharif-Askari, Bushra Mdkhana, Saba Al Heialy, Elaref Ratemi, Malak Alghamdi, Salah Abusnana, Tarek Kashour, Qutayba Hamid, Rabih Halwani. Effect of common medications on the expression of SARS-CoV-2 entry receptors in liver tissue. Archives of toxicology. 2020 12; 94(12):4037-4041. doi: 10.1007/s00204-020-02869-1. [PMID: 32808185]
  • Blanka Miková, Miloš Dvořák, Lenka Ryšavá, Pavel Kubáň. Hollow Fiber Liquid-Phase Microextraction At-Line Coupled to Capillary Electrophoresis for Direct Analysis of Human Body Fluids. Analytical chemistry. 2020 05; 92(10):7171-7178. doi: 10.1021/acs.analchem.0c00697. [PMID: 32289222]
  • Megha Aggarwal, George P Leser, Robert A Lamb. Repurposing Papaverine as an Antiviral Agent against Influenza Viruses and Paramyxoviruses. Journal of virology. 2020 02; 94(6):. doi: 10.1128/jvi.01888-19. [PMID: 31896588]
  • Ali Farahani, Hassan Sereshti. An integrated microfluidic device for solid-phase extraction and spectrophotometric detection of opium alkaloids in urine samples. Analytical and bioanalytical chemistry. 2020 Jan; 412(1):129-138. doi: 10.1007/s00216-019-02214-1. [PMID: 31773230]
  • William M Armstead, Monica S Vavilala. Cerebral Perfusion Pressure Directed-Therapy Modulates Cardiac Dysfunction After Traumatic Brain Injury to Influence Cerebral Autoregulation in Pigs. Neurocritical care. 2019 12; 31(3):476-485. doi: 10.1007/s12028-019-00735-2. [PMID: 31115824]
  • Tobie D Lee, Olivia W Lee, Kyle R Brimacombe, Lu Chen, Rajarshi Guha, Sabrina Lusvarghi, Bethilehem G Tebase, Carleen Klumpp-Thomas, Robert W Robey, Suresh V Ambudkar, Min Shen, Michael M Gottesman, Matthew D Hall. A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein. Molecular pharmacology. 2019 11; 96(5):629-640. doi: 10.1124/mol.119.115964. [PMID: 31515284]
  • Folake A Egbewande, Mark J Coster, Ian D Jenkins, Rohan A Davis. Reaction of Papaverine with Baran DiversinatesTM. Molecules (Basel, Switzerland). 2019 Oct; 24(21):. doi: 10.3390/molecules24213938. [PMID: 31683610]
  • Ahmad Pourahadi, Ali Farahani, Saied Saeed Hosseiny Davarani, Saeed Nojavan, Camellia Tashakori. Developing a miniaturized setup for in-tube simultaneous determination of three alkaloids using electromembrane extraction in combination with ultraviolet spectrophotometry. Journal of separation science. 2019 Oct; 42(19):3126-3133. doi: 10.1002/jssc.201900276. [PMID: 31347772]
  • Parul Agarwal, Sumya Pathak, Ravi Shankar Kumar, Yogeshwar Vikram Dhar, Ashutosh Pandey, Sudhir Shukla, Prabodh Kumar Trivedi. 3'O-Methyltransferase, Ps3'OMT, from opium poppy: involvement in papaverine biosynthesis. Plant cell reports. 2019 Oct; 38(10):1235-1248. doi: 10.1007/s00299-019-02439-5. [PMID: 31190213]
  • Carl E Wolf, Kaitlin L Pierce, Brett L Goldfine, Carrol R Nanco, Justin L Poklis, William J Korzun. Using Papaverine and Its Metabolites, 6-Desmethyl Papaverine and 4',6-Didesmethyl Papaverine as Biomarkers to Improve the Detection Time of Heroin Use. Journal of analytical toxicology. 2019 Sep; 43(8):600-606. doi: 10.1093/jat/bkz069. [PMID: 31436291]
  • Zeina Harhous, Sally Badawi, Noelle Gallo Bona, Bruno Pillot, Lionel Augeul, Melanie Paillard, George W Booz, Emmanuelle Canet-Soulas, Michel Ovize, Mazen Kurdi, Gabriel Bidaux. Critical appraisal of STAT3 pattern in adult cardiomyocytes. Journal of molecular and cellular cardiology. 2019 06; 131(?):91-100. doi: 10.1016/j.yjmcc.2019.04.021. [PMID: 31022374]
  • Jing Han, Wei Liu, Rui Su, Lixue Zhu, Debo Wu, Jiaquan Xu, Aiying Liu, Hua Zhang, Wei Kou, Xiaoping Zhang, Shuiping Yang. Coupling of micro-solid-phase extraction and internal extractive electrospray ionization mass spectrometry for ultra-sensitive detection of 1-hydroxypyrene and papaverine in human urine samples. Analytical and bioanalytical chemistry. 2019 Jun; 411(15):3281-3290. doi: 10.1007/s00216-019-01794-2. [PMID: 30989270]
  • Gholamreza Kazemzadeh, Ali Saberi, Reza Manani, Fatemeh Sadeghipour, Asghar Rahmani. Effect of local papaverine on arteriovenous fistula maturation in patients with end-stage renal disease. Jornal brasileiro de nefrologia : 'orgao oficial de Sociedades Brasileira e Latino-Americana de Nefrologia. 2019 Apr; 41(2):185-192. doi: 10.1590/2175-8239-jbn-2018-0170. [PMID: 31498862]
  • Ying Shi, Guangya Shi, Zhenyu Li, Yanfang Chen, Shaohui Tang, Wei Huang. Superior mesenteric artery syndrome coexists with Nutcracker syndrome in a female: a case report. BMC gastroenterology. 2019 Jan; 19(1):15. doi: 10.1186/s12876-019-0932-1. [PMID: 30674275]
  • Rachel K Smith, Rebecca J Stacey, Ed Bergström, Jane Thomas-Oates. Detection of opium alkaloids in a Cypriot base-ring juglet. The Analyst. 2018 Oct; 143(21):5127-5136. doi: 10.1039/c8an01040d. [PMID: 30280166]
  • Robin A C Graham-Brown, Mark F Healsmith. From folklore to pharmacy: Putting plants into practice. Clinics in dermatology. 2018 May; 36(3):282-288. doi: 10.1016/j.clindermatol.2018.03.002. [PMID: 29908569]
  • Manuel Pereira Marques Gomes Júnior, Cláudia Maria Rodrigues Alves, Adriano Henrique Pereira Barbosa, Adriano Caixeta, Marcelo Costa Batista, José Osmar Medina Pestana, Antônio Carlos Carvalho. Initial experience with the use of fractional flow reserve in the hemodynamic evaluation of transplant renal artery stenosis. Catheterization and cardiovascular interventions : official journal of the Society for Cardiac Angiography & Interventions. 2018 03; 91(4):820-826. doi: 10.1002/ccd.27476. [PMID: 29411509]
  • Igor Sorokin, Sharnae L Stevens, Jeffrey A Cadeddu. Periarterial papaverine to treat renal artery vasospasm during robot-assisted laparoscopic partial nephrectomy. Journal of robotic surgery. 2018 Mar; 12(1):189-191. doi: 10.1007/s11701-017-0710-4. [PMID: 28455799]
  • Andrea Šlampová, Pavel Kubáň. Direct Analysis of Free Aqueous and Organic Operational Solutions as a Tool for Understanding Fundamental Principles of Electromembrane Extraction. Analytical chemistry. 2017 12; 89(23):12960-12967. doi: 10.1021/acs.analchem.7b03829. [PMID: 29083873]
  • Serhat Huseyin, Orkut Guclu, Volkan Yüksel, Gulen Sezer Alptekin Erkul, Nuray Can, Fatma Nesrin Turan, Suat Canbaz. Avoiding Liver Injury with Papaverine and Ascorbic Acid Due to Infrarenal Cross-Clamping: an Experimental Study. Brazilian journal of cardiovascular surgery. 2017 May; 32(3):197-201. doi: 10.21470/1678-9741-2016-0081. [PMID: 28832798]
  • Juthamas Khamseekaew, Sirinart Kumfu, Suwakon Wongjaikam, Sasiwan Kerdphoo, Thidarat Jaiwongkam, Somdet Srichairatanakool, Suthat Fucharoen, Siriporn C Chattipakorn, Nipon Chattipakorn. Effects of iron overload, an iron chelator and a T-Type calcium channel blocker on cardiac mitochondrial biogenesis and mitochondrial dynamics in thalassemic mice. European journal of pharmacology. 2017 Mar; 799(?):118-127. doi: 10.1016/j.ejphar.2017.02.015. [PMID: 28192097]
  • Brij K Mishra, R Mishra, S N Jena, Sudhir Shukla. Gene actions for yield and its attributes and their implications in the inheritance pattern over three generations in opium poppy (Papaver somniferum L.). Journal of genetics. 2016 Sep; 95(3):705-17. doi: 10.1007/s12041-016-0689-z. [PMID: 27659342]
  • Parul Agarwal, Sumya Pathak, Deepika Lakhwani, Parul Gupta, Mehar Hasan Asif, Prabodh Kumar Trivedi. Comparative analysis of transcription factor gene families from Papaver somniferum: identification of regulatory factors involved in benzylisoquinoline alkaloid biosynthesis. Protoplasma. 2016 May; 253(3):857-871. doi: 10.1007/s00709-015-0848-8. [PMID: 26108744]
  • José Fernando Polanski, Alexandra Dezani Soares, Oswaldo Laércio de Mendonça Cruz. Antioxidant therapy in the elderly with tinnitus. Brazilian journal of otorhinolaryngology. 2016 May; 82(3):269-74. doi: 10.1016/j.bjorl.2015.04.016. [PMID: 26547700]
  • Anikó Lajtai, Mátyás Mayer, Ágnes Lakatos, Zoltán Porpáczy, Attila Miseta. Embutramide, a Component of Tanax(®) (T-61) as a New Drug of Abuse?. Journal of forensic sciences. 2016 Mar; 61(2):573-575. doi: 10.1111/1556-4029.13010. [PMID: 27404634]
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