PG 36:2 (BioDeep_00000279016)

   

LipidSearch


代谢物信息卡片


9-Octadecenoic acid, 1-[[[(2,3-dihydroxypropoxy)hydroxyphosphinyl]oxy]methyl]-1,2-ethanediyl ester, [R-(E,E)]-

化学式: C42H79O10P (774.5410564)
中文名称:
谱图信息: 最多检出来源 Homo sapiens(lipidsearch) 10.36%

分子结构信息

SMILES: CCCCCC=CCC=CCCCCCCCCCC(=O)OC(COC(=O)CCCCCCCCCCCCCCC)COP(=O)(O)OCC(O)CO
InChI: InChI=1S/C42H79O10P/c1-3-5-7-9-11-13-15-17-19-21-23-25-27-29-31-33-41(45)49-37-40(38-51-53(47,48)50-36-39(44)35-43)52-42(46)34-32-30-28-26-24-22-20-18-16-14-12-10-8-6-4-2/h17-20,39-40,43-44H,3-16,21-38H2,1-2H3,(H,47,48)/b19-17-,20-18-

描述信息

Found in mouse brain; TwoDicalId=225; MgfFile=160720_brain_AA_16_Neg; MgfId=745
Found in mouse spleen; TwoDicalId=162; MgfFile=160729_spleen_normal_02_Neg_never; MgfId=759
Found in mouse lung; TwoDicalId=97; MgfFile=160901_Lung_EPA_Neg_09; MgfId=645
Found in mouse heart; TwoDicalId=143; MgfFile=160902_Heart_Control_Neg_01_sute; MgfId=705
Found in mouse muscle; TwoDicalId=225; MgfFile=160824_Muscle_normal_Neg_01; MgfId=708
Found in mouse kidney; TwoDicalId=80; MgfFile=160827_Kidney_EPA_Neg_09; MgfId=986
Found in mouse spleen; TwoDicalId=76; MgfFile=160729_spleen_AA_17_Neg; MgfId=793

同义名列表

43 个代谢物同义名

1,2-di-(9Z-octadecenoyl)-sn-glycero-3-phospho-(1-sn-glycerol); PG(18:1(9Z)/18:1(9Z)); PG(18:1/18:1); PG(36:2); PG 36:2; 1-octadecanoyl-2-(9Z,12Z-octadecadienoyl)-glycero-3-phospho-(1-sn-glycerol); PG(18:0/18:2(9Z,12Z)); PG(18:0_18:2); 1-(9Z,12Z-octadecadienoyl)-2-octadecanoyl-glycero-3-phospho-(1-sn-glycerol); PG(18:2(9Z,12Z)/18:0); 1-(13Z,16Z-docosadienoyl)-2-tetradecanoyl-glycero-3-phospho-(1-sn-glycerol); PG(22:2(13Z,16Z)/14:0); PG(14:0_22:2); 1-(11Z-docosenoyl)-2-(9Z-tetradecenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(22:1(11Z)/14:1(9Z)); PG(14:1_22:1); 1-(11Z,14Z-eicosadienoyl)-2-hexadecanoyl-glycero-3-phospho-(1-sn-glycerol); PG(20:2(11Z,14Z)/16:0); PG(16:0_20:2); 1-(11Z-eicosenoyl)-2-(9Z-hexadecenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(20:1(11Z)/16:1(9Z)); PG(16:1_20:1); 1-(9Z-nonadecenoyl)-2-(9Z-heptadecenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(19:1(9Z)/17:1(9Z)); PG(17:1_19:1); 1-nonadecanoyl-2-(9Z,12Z-heptadecadienoyl)-glycero-3-phospho-(1-sn-glycerol); PG(19:0/17:2(9Z,12Z)); PG(17:2_19:0); 1-(9Z,12Z-heptadecadienoyl)-2-nonadecanoyl-glycero-3-phospho-(1-sn-glycerol); PG(17:2(9Z,12Z)/19:0); 1-(9Z-heptadecenoyl)-2-(9Z-nonadecenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(17:1(9Z)/19:1(9Z)); 1-(9Z-hexadecenoyl)-2-(11Z-eicosenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(16:1(9Z)/20:1(11Z)); 1-hexadecanoyl-2-(11Z,14Z-eicosadienoyl)-glycero-3-phospho-(1-sn-glycerol); PG(16:0/20:2(11Z,14Z)); 1-(9Z-tetradecenoyl)-2-(11Z-docosenoyl)-glycero-3-phospho-(1-sn-glycerol); PG(14:1(9Z)/22:1(11Z)); 1-tetradecanoyl-2-(13Z,16Z-docosadienoyl)-glycero-3-phospho-(1-sn-glycerol); PG(14:0/22:2(13Z,16Z)); 9-Octadecenoic acid, 1-[[[(2,3-dihydroxypropoxy)hydroxyphosphinyl]oxy]methyl]-1,2-ethanediyl ester, [R-(E,E)]-; 1,2-di-(9E-octadecenoyl)-sn-glycero-3-phospho-(1-sn-glycerol); PG(18:1(9E)/18:1(9E))



数据库引用编号

53 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

369 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(369)

PharmGKB(0)

8 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

  • Seungho Choe. Translocation of a single Arg[Formula: see text] peptide across a DOPC/DOPG(4:1) model membrane using the weighted ensemble method. Scientific reports. 2023 01; 13(1):1168. doi: 10.1038/s41598-023-28493-4. [PMID: 36670187]
  • Yi Hou, Baomei Xu, Shun-Li Chen, Wei Gan, Qunhui Yuan, Xi Lin. Understanding the different cross-membrane transport kinetics of two charged molecules on the DOPG lipid surface with second harmonic generation and MD simulation. Soft matter. 2022 Jun; 18(22):4305-4314. doi: 10.1039/d2sm00167e. [PMID: 35620962]
  • Mohammad Abu Sayem Karal, Nadia Akter Mokta, Victor Levadny, Marina Belaya, Marzuk Ahmed, Md Kabir Ahamed, Shareef Ahammed. Effects of cholesterol on the size distribution and bending modulus of lipid vesicles. PloS one. 2022; 17(1):e0263119. doi: 10.1371/journal.pone.0263119. [PMID: 35089965]
  • Jan Steinkühler, Piermarco Fonda, Tripta Bhatia, Ziliang Zhao, Fernanda S C Leomil, Reinhard Lipowsky, Rumiana Dimova. Superelasticity of Plasma- and Synthetic Membranes Resulting from Coupling of Membrane Asymmetry, Curvature, and Lipid Sorting. Advanced science (Weinheim, Baden-Wurttemberg, Germany). 2021 11; 8(21):e2102109. doi: 10.1002/advs.202102109. [PMID: 34569194]
  • Nina Královič-Kanjaková, Lukáš Hubčík, Alexander Búcsi, Mária Klacsová, Sophie Combet, José Teixeira, Juan Carlos Martínez, Daniela Uhríková. Calcium mediated DNA binding in non-lamellar structures formed by DOPG/glycerol monooleate. Chemistry and physics of lipids. 2021 09; 239(?):105118. doi: 10.1016/j.chemphyslip.2021.105118. [PMID: 34280362]
  • Carina Dargel, Friederike Gräbitz-Bräuer, Ramsia Geisler, Pascal Fandrich, Yvonne Hannappel, Lionel Porcar, Thomas Hellweg. Stable DOPG/Glycyrrhizin Vesicles with a Wide Range of Mixing Ratios: Structure and Stability as Seen by Scattering Experiments and Cryo-TEM. Molecules (Basel, Switzerland). 2021 Aug; 26(16):. doi: 10.3390/molecules26164959. [PMID: 34443547]
  • Julija Mezhyrova, Janosch Martin, Oliver Peetz, Volker Dötsch, Nina Morgner, Yi Ma, Frank Bernhard. Membrane insertion mechanism and molecular assembly of the bacteriophage lysis toxin ΦX174-E. The FEBS journal. 2021 05; 288(10):3300-3316. doi: 10.1111/febs.15642. [PMID: 33244868]
  • Meifang Fu, Henri G Franquelim, Simon Kretschmer, Petra Schwille. Non-Equilibrium Large-Scale Membrane Transformations Driven by MinDE Biochemical Reaction Cycles. Angewandte Chemie (International ed. in English). 2021 03; 60(12):6496-6502. doi: 10.1002/anie.202015184. [PMID: 33285025]
  • Tjeerd Pols, Shubham Singh, Cecile Deelman-Driessen, Bauke F Gaastra, Bert Poolman. Enzymology of the pathway for ATP production by arginine breakdown. The FEBS journal. 2021 01; 288(1):293-309. doi: 10.1111/febs.15337. [PMID: 32306469]
  • Malay Kumar Sarkar, Mohammad Abu Sayem Karal, Marzuk Ahmed, Md Kabir Ahamed, Shareef Ahammed, Sabrina Sharmin, Sayed Ul Alam Shibly. Effects of osmotic pressure on the irreversible electroporation in giant lipid vesicles. PloS one. 2021; 16(5):e0251690. doi: 10.1371/journal.pone.0251690. [PMID: 33989363]
  • Annie M Westerlund, Oliver Fleetwood, Sergio Pérez-Conesa, Lucie Delemotte. Network analysis reveals how lipids and other cofactors influence membrane protein allostery. The Journal of chemical physics. 2020 Oct; 153(14):141103. doi: 10.1063/5.0020974. [PMID: 33086825]
  • Sirin Celiksoy, Weixiang Ye, Karl Wandner, Felix Schlapp, Katharina Kaefer, Rubén Ahijado-Guzmán, Carsten Sönnichsen. Plasmonic Nanosensors for the Label-Free Imaging of Dynamic Protein Patterns. The journal of physical chemistry letters. 2020 Jun; 11(12):4554-4558. doi: 10.1021/acs.jpclett.0c01400. [PMID: 32436712]
  • Vivek Choudhary, Shantelle Griffith, Xunsheng Chen, Wendy B Bollag. Pathogen-Associated Molecular Pattern-Induced TLR2 and TLR4 Activation Increases Keratinocyte Production of Inflammatory Mediators and is Inhibited by Phosphatidylglycerol. Molecular pharmacology. 2020 05; 97(5):324-335. doi: 10.1124/mol.119.118166. [PMID: 32173651]
  • Agustín Bruzzese, James A R Dalton, Jesús Giraldo. Insights into adenosine A2A receptor activation through cooperative modulation of agonist and allosteric lipid interactions. PLoS computational biology. 2020 04; 16(4):e1007818. doi: 10.1371/journal.pcbi.1007818. [PMID: 32298258]
  • Alexandre M Almeida, Osvaldo N Oliveira, Pedro H B Aoki. Role of Toluidine Blue-O Binding Mechanism for Photooxidation in Bioinspired Bacterial Membranes. Langmuir : the ACS journal of surfaces and colloids. 2019 12; 35(51):16745-16751. doi: 10.1021/acs.langmuir.9b03045. [PMID: 31746210]
  • Jing Yang, Chao Tang, Yadi Wang, Chao Chang, Jianbing Zhang, Jun Hu, Junhong Lü. The terahertz dynamics interfaces to ion-lipid interaction confined in phospholipid reverse micelles. Chemical communications (Cambridge, England). 2019 Dec; 55(100):15141-15144. doi: 10.1039/c9cc07598d. [PMID: 31789329]
  • Michael Pachler, Ivo Kabelka, Marie-Sousai Appavou, Karl Lohner, Robert Vácha, Georg Pabst. Magainin 2 and PGLa in Bacterial Membrane Mimics I: Peptide-Peptide and Lipid-Peptide Interactions. Biophysical journal. 2019 11; 117(10):1858-1869. doi: 10.1016/j.bpj.2019.10.022. [PMID: 31703802]
  • Hsin-Yu Huang, Ming-Lun Syue, I-Chia Chen, Tsyr-Yan Yu, Li-Kang Chu. Influence of Lipid Compositions in the Events of Retinal Schiff Base of Bacteriorhodopsin Embedded in Covalently Circularized Nanodiscs: Thermal Isomerization, Photoisomerization, and Deprotonation. The journal of physical chemistry. B. 2019 10; 123(43):9123-9133. doi: 10.1021/acs.jpcb.9b07788. [PMID: 31584816]
  • Riya Sett, Bijan K Paul, Nikhil Guchhait. Unsaturation of the phospholipid side-chain influences its interaction with cyclodextrins: A spectroscopic exploration using a phenazinium dye. Colloids and surfaces. B, Biointerfaces. 2019 Aug; 180(?):150-158. doi: 10.1016/j.colsurfb.2019.04.046. [PMID: 31048240]
  • Mohammad Abu Sayem Karal, Mostafizur Rahman, Md Kabir Ahamed, Sayed Ul Alam Shibly, Marzuk Ahmed, Md Mostofa Shakil. Low cost non-electromechanical technique for the purification of giant unilamellar vesicles. European biophysics journal : EBJ. 2019 May; 48(4):349-359. doi: 10.1007/s00249-019-01363-6. [PMID: 30918998]
  • Amit L Garle, Bridgette M Budhlall. PEG Bottle Brush Copolymers as Antimicrobial Mimics: Role of Entropic Templating in Membrane Lysis. Langmuir : the ACS journal of surfaces and colloids. 2019 03; 35(9):3372-3382. doi: 10.1021/acs.langmuir.8b00756. [PMID: 30646685]
  • Ravit Malishev, Sofiya Kolusheva, Raz Jelinek. Vesicle-Based Assays to Study Membrane Interactions of Amyloid Peptides. Methods in molecular biology (Clifton, N.J.). 2019; 1873(?):39-51. doi: 10.1007/978-1-4939-8820-4_3. [PMID: 30341602]
  • Patrick M Arnott, Himanshu Joshi, Aleksei Aksimentiev, Stefan Howorka. Dynamic Interactions between Lipid-Tethered DNA and Phospholipid Membranes. Langmuir : the ACS journal of surfaces and colloids. 2018 12; 34(49):15084-15092. doi: 10.1021/acs.langmuir.8b02271. [PMID: 30350681]
  • Eric H Hill, Jingang Li, Linhan Lin, Yaoran Liu, Yuebing Zheng. Opto-Thermophoretic Attraction, Trapping, and Dynamic Manipulation of Lipid Vesicles. Langmuir : the ACS journal of surfaces and colloids. 2018 11; 34(44):13252-13262. doi: 10.1021/acs.langmuir.8b01979. [PMID: 30350700]
  • Farliza Parvez, Jahangir Md Alam, Hideo Dohra, Masahito Yamazaki. Elementary processes of antimicrobial peptide PGLa-induced pore formation in lipid bilayers. Biochimica et biophysica acta. Biomembranes. 2018 11; 1860(11):2262-2271. doi: 10.1016/j.bbamem.2018.08.018. [PMID: 30409522]
  • Yu Shi, Mingwei Wan, Lei Fu, Shan Zhang, Shiyuan Wang, Lianghui Gao, Weihai Fang. Peptide-Lipid Interaction Sites Affect Vesicles' Responses to Antimicrobial Peptides. Biophysical journal. 2018 10; 115(8):1518-1529. doi: 10.1016/j.bpj.2018.08.040. [PMID: 30268538]
  • Kousik Sundararajan, Anthony Vecchiarelli, Kiyoshi Mizuuchi, Erin D Goley. Species- and C-terminal linker-dependent variations in the dynamic behavior of FtsZ on membranes in vitro. Molecular microbiology. 2018 10; 110(1):47-63. doi: 10.1111/mmi.14081. [PMID: 30010220]
  • Jan Steinkühler, Philippe De Tillieux, Roland L Knorr, Reinhard Lipowsky, Rumiana Dimova. Charged giant unilamellar vesicles prepared by electroformation exhibit nanotubes and transbilayer lipid asymmetry. Scientific reports. 2018 08; 8(1):11838. doi: 10.1038/s41598-018-30286-z. [PMID: 30087440]
  • Margaret M Elmer-Dixon, Bruce E Bowler. Rapid quantification of vesicle concentration for DOPG/DOPC and Cardiolipin/DOPC mixed lipid systems of variable composition. Analytical biochemistry. 2018 07; 553(?):12-14. doi: 10.1016/j.ab.2018.05.013. [PMID: 29775562]
  • Sreetama Pal, Nirnay Samanta, Debasish Das Mahanta, Rajib Kumar Mitra, Amitabha Chattopadhyay. Effect of Phospholipid Headgroup Charge on the Structure and Dynamics of Water at the Membrane Interface: A Terahertz Spectroscopic Study. The journal of physical chemistry. B. 2018 05; 122(19):5066-5074. doi: 10.1021/acs.jpcb.8b01633. [PMID: 29543460]
  • Brianna M Abbott, JungMin Lee, Emily S Mohn, Mary M Barden, Kenneth R Overly, John J Breen. Probing the extended lipid anchorage with cytochrome c and liposomes containing diacylphosphatidylglycerol lipids. Biochimica et biophysica acta. Biomembranes. 2018 May; 1860(5):1187-1192. doi: 10.1016/j.bbamem.2018.02.011. [PMID: 29432713]
  • Md Mizanur Rahman Moghal, Md Zahidul Islam, Sabrina Sharmin, Victor Levadnyy, Md Moniruzzaman, Masahito Yamazaki. Continuous detection of entry of cell-penetrating peptide transportan 10 into single vesicles. Chemistry and physics of lipids. 2018 05; 212(?):120-129. doi: 10.1016/j.chemphyslip.2018.02.001. [PMID: 29425855]
  • Eric M Kohn, David J Shirley, Lubov Arotsky, Angela M Picciano, Zachary Ridgway, Michael W Urban, Benjamin R Carone, Gregory A Caputo. Role of Cationic Side Chains in the Antimicrobial Activity of C18G. Molecules (Basel, Switzerland). 2018 Feb; 23(2):. doi: 10.3390/molecules23020329. [PMID: 29401708]
  • Normand Cyr, Terry K Smith, Élodie Boisselier, Louis-Philippe Leroux, Anwar Hasil Kottarampatel, Amanda Davidsen, Christian Salesse, Armando Jardim. The hydrophobic region of the Leishmania peroxin 14: requirements for association with a glycosome mimetic membrane. The Biochemical journal. 2018 01; 475(2):511-529. doi: 10.1042/bcj20170746. [PMID: 29259081]
  • Giuseppe Vitiello, Domenica Musumeci, Alexandros Koutsioubas, Luigi Paduano, Daniela Montesarchio, Gerardino D'Errico. Ionophores at work: Exploring the interaction of guanosine-based amphiphiles with phospholipid membranes. Biochimica et biophysica acta. Biomembranes. 2017 Dec; 1859(12):2392-2401. doi: 10.1016/j.bbamem.2017.09.007. [PMID: 28890186]
  • Kim Potvin-Fournier, Geneviève Valois-Paillard, Thierry Lefèvre, Line Cantin, Christian Salesse, Michèle Auger. Membrane fluidity is a driving force for recoverin myristoyl immobilization in zwitterionic lipids. Biochemical and biophysical research communications. 2017 09; 490(4):1268-1273. doi: 10.1016/j.bbrc.2017.07.005. [PMID: 28684313]
  • L H Moleiro, M Mell, R Bocanegra, I López-Montero, P Fouquet, Th Hellweg, J L Carrascosa, F Monroy. Permeability modes in fluctuating lipid membranes with DNA-translocating pores. Advances in colloid and interface science. 2017 Sep; 247(?):543-554. doi: 10.1016/j.cis.2017.07.009. [PMID: 28735883]
  • Md Moniruzzaman, Md Zahidul Islam, Sabrina Sharmin, Hideo Dohra, Masahito Yamazaki. Entry of a Six-Residue Antimicrobial Peptide Derived from Lactoferricin B into Single Vesicles and Escherichia coli Cells without Damaging their Membranes. Biochemistry. 2017 08; 56(33):4419-4431. doi: 10.1021/acs.biochem.6b01274. [PMID: 28752991]
  • Yuan Lyu, Ning Xiang, Xiao Zhu, Ganesan Narsimhan. Potential of mean force for insertion of antimicrobial peptide melittin into a pore in mixed DOPC/DOPG lipid bilayer by molecular dynamics simulation. The Journal of chemical physics. 2017 Apr; 146(15):155101. doi: 10.1063/1.4979613. [PMID: 28433027]
  • Xiaoxue Zhang, Johnna R St Clair, Erwin London, Daniel P Raleigh. Islet Amyloid Polypeptide Membrane Interactions: Effects of Membrane Composition. Biochemistry. 2017 Jan; 56(2):376-390. doi: 10.1021/acs.biochem.6b01016. [PMID: 28054763]
  • Christopher McDonald, Goran Jovanovic, B A Wallace, Oscar Ces, Martin Buck. Structure and function of PspA and Vipp1 N-terminal peptides: Insights into the membrane stress sensing and mitigation. Biochimica et biophysica acta. Biomembranes. 2017 Jan; 1859(1):28-39. doi: 10.1016/j.bbamem.2016.10.018. [PMID: 27806910]
  • Patrick L Harrison, George R Heath, Benjamin R G Johnson, Mohamed A Abdel-Rahman, Peter N Strong, Stephen D Evans, Keith Miller. Phospholipid dependent mechanism of smp24, an α-helical antimicrobial peptide from scorpion venom. Biochimica et biophysica acta. 2016 Nov; 1858(11):2737-2744. doi: 10.1016/j.bbamem.2016.07.018. [PMID: 27480803]
  • Andrei Yu Kostritskii, Diana A Kondinskaia, Alexey M Nesterenko, Andrey A Gurtovenko. Adsorption of Synthetic Cationic Polymers on Model Phospholipid Membranes: Insight from Atomic-Scale Molecular Dynamics Simulations. Langmuir : the ACS journal of surfaces and colloids. 2016 10; 32(40):10402-10414. doi: 10.1021/acs.langmuir.6b02593. [PMID: 27642663]
  • Jan Steinkühler, Jaime Agudo-Canalejo, Reinhard Lipowsky, Rumiana Dimova. Modulating Vesicle Adhesion by Electric Fields. Biophysical journal. 2016 Oct; 111(7):1454-1464. doi: 10.1016/j.bpj.2016.08.029. [PMID: 27705768]
  • Wataru Shinoda. Permeability across lipid membranes. Biochimica et biophysica acta. 2016 10; 1858(10):2254-2265. doi: 10.1016/j.bbamem.2016.03.032. [PMID: 27085977]
  • Weiying Zhu, Robert Silvers, Harald Schwalbe, Timothy A Keiderling. Reduced and mutant lysozyme refolding with lipid vesicles. Model study of disulfide impact on equilibria and dynamics. Biochimica et biophysica acta. 2016 09; 1864(9):1083-1092. doi: 10.1016/j.bbapap.2016.05.010. [PMID: 27240304]
  • Satoshi Kawatake, Yuichi Umegawa, Shigeru Matsuoka, Michio Murata, Masashi Sonoyama. Evaluation of diacylphospholipids as boundary lipids for bacteriorhodopsin from structural and functional aspects. Biochimica et biophysica acta. 2016 09; 1858(9):2106-2115. doi: 10.1016/j.bbamem.2016.06.006. [PMID: 27301269]
  • Leili Zhang, Manohary Rajendram, Douglas B Weibel, Arun Yethiraj, Qiang Cui. Ionic Hydrogen Bonds and Lipid Packing Defects Determine the Binding Orientation and Insertion Depth of RecA on Multicomponent Lipid Bilayers. The journal of physical chemistry. B. 2016 08; 120(33):8424-37. doi: 10.1021/acs.jpcb.6b02164. [PMID: 27095675]
  • Sabrina Sharmin, Md Zahidul Islam, Mohammad Abu Sayem Karal, Sayed Ul Alam Shibly, Hideo Dohra, Masahito Yamazaki. Effects of Lipid Composition on the Entry of Cell-Penetrating Peptide Oligoarginine into Single Vesicles. Biochemistry. 2016 08; 55(30):4154-65. doi: 10.1021/acs.biochem.6b00189. [PMID: 27420912]
  • R Watanabe, N Soga, M Hara, H Noji. Arrayed water-in-oil droplet bilayers for membrane transport analysis. Lab on a chip. 2016 08; 16(16):3043-8. doi: 10.1039/c6lc00155f. [PMID: 27080052]
  • Frank Versluis, Daphne M van Elsland, Serhii Mytnyk, Dayinta L Perrier, Fanny Trausel, Jos M Poolman, Chandan Maity, Vincent A A le Sage, Sander I van Kasteren, Jan H van Esch, Rienk Eelkema. Negatively Charged Lipid Membranes Catalyze Supramolecular Hydrogel Formation. Journal of the American Chemical Society. 2016 07; 138(28):8670-3. doi: 10.1021/jacs.6b03853. [PMID: 27359373]
  • Katarzyna Hąc-Wydro, Aleksandra Sroka, Klaudia Jabłońska. The impact of auxins used in assisted phytoextraction of metals from the contaminated environment on the alterations caused by lead(II) ions in the organization of model lipid membranes. Colloids and surfaces. B, Biointerfaces. 2016 Jul; 143(?):124-130. doi: 10.1016/j.colsurfb.2016.03.018. [PMID: 26998874]
  • Bastian Kubsch, Tom Robinson, Reinhard Lipowsky, Rumiana Dimova. Solution Asymmetry and Salt Expand Fluid-Fluid Coexistence Regions of Charged Membranes. Biophysical journal. 2016 Jun; 110(12):2581-2584. doi: 10.1016/j.bpj.2016.05.028. [PMID: 27288275]
  • Sowmya Purushothaman, Jehangir Cama, Ulrich F Keyser. Dependence of norfloxacin diffusion across bilayers on lipid composition. Soft matter. 2016 Feb; 12(7):2135-44. doi: 10.1039/c5sm02371h. [PMID: 26768751]
  • Hirokazu Watanabe, Ryuji Kawano. Channel Current Analysis for Pore-forming Properties of an Antimicrobial Peptide, Magainin 1, Using the Droplet Contact Method. Analytical sciences : the international journal of the Japan Society for Analytical Chemistry. 2016; 32(1):57-60. doi: 10.2116/analsci.32.57. [PMID: 26753706]
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