Academic literature on the topic 'Lipide A'

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Journal articles on the topic "Lipide A"

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Weizel, A. "Lipide und Adipositas." Adipositas - Ursachen, Folgeerkrankungen, Therapie 03, no. 03 (2009): 147–48. http://dx.doi.org/10.1055/s-0037-1618676.

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Kiess, Wieland, and Antje Körner. "Lipide und Ernährungstherapie." Adipositas - Ursachen, Folgeerkrankungen, Therapie 05, no. 04 (2011): 181. http://dx.doi.org/10.1055/s-0037-1618760.

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Birkenfeld, Andreas. "Lipide und Fettstoffwechsel." Diabetes aktuell 18, no. 06 (2020): 232. http://dx.doi.org/10.1055/a-1237-0591.

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Kolter, Thomas. "Lipide und Lipidomics." Angewandte Chemie 118, no. 36 (2006): 6054–55. http://dx.doi.org/10.1002/ange.200603313.

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Georgieff, M. "Lipide und akutes Lungenversagen." Transfusion Medicine and Hemotherapy 20, no. 6 (1993): 282–83. http://dx.doi.org/10.1159/000222861.

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Stiefelhagen, Peter. "NASH: Lipide induzieren Inflammation." Gastro-News 5, no. 5 (2018): 51. http://dx.doi.org/10.1007/s15036-018-0457-4.

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sti. "NASH: Lipide induzieren Inflammation." MMW - Fortschritte der Medizin 161, no. 1 (2019): 12. http://dx.doi.org/10.1007/s15006-019-0042-6.

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Fliser, D. "Lipide bei chronischer Nierenerkrankung." Der Nephrologe 10, no. 5 (2015): 392–93. http://dx.doi.org/10.1007/s11560-014-0966-x.

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Parhofer, K. G. "Diabetes Update 2017 – Lipide." Der Diabetologe 13, no. 5 (2017): 313–21. http://dx.doi.org/10.1007/s11428-017-0233-7.

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Pampel, Sarah L. "Senkt auch Blutzucker und Lipide." MMW - Fortschritte der Medizin 153, no. 19 (2011): 56. http://dx.doi.org/10.1007/bf03368353.

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Dissertations / Theses on the topic "Lipide A"

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Mateos, Diaz Eduardo. "Etude par spectroscopie infrarouge (FTIR) des interactions de la lipase pancréatique apparentée de type 2 (PLRP2) avec les phospholipides et les sels biliaires." Thesis, Aix-Marseille, 2016. http://www.theses.fr/2016AIXM4763.

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La lipase pancréatique apparentée de type 2 du cobaye (GPLRP2) hydrolyse une grande variété de substrats lipidiques. Elle montre cependant une sélectivité selon l’organisation supramoléculaire du substrat et la présence de surfactants comme les sels biliaires (NaTDC). Nous avons utilisé la spectroscopie infrarouge (FTIR) pour étudier les interactions entres les phospholipides (DPPC), les surfactants et la GPLRP2 dans des conditions expérimentales proches de celles du tractus digestif. Pour étudier l’étape d’adsorption indépendamment de l’hydrolyse, un variant inactif de GPLRP2 (S152G) a été pr
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Es-Sounni, Ahmed. "Interaction lipide-lipide et lipide-protéine dans le modèle de monocouche à l'interface air/eau." Thèse, Université du Québec à Trois-Rivières, 1993. http://depot-e.uqtr.ca/6795/1/000606460.pdf.

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Wollenweber, Marcel. "Synthese kationischer Lipide auf Basis von L-Cystin und Untersuchungen zur Synthese selbstoptimierender Systeme." [S.l.] : [s.n.], 2001. http://deposit.ddb.de/cgi-bin/dokserv?idn=963051776.

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Dolch, Lina-Juana. "Glycerolipid metabolism and regulation in Phaeodactylum tricornutum and Nannochloropsis gaditana." Thesis, Université Grenoble Alpes (ComUE), 2016. http://www.theses.fr/2016GREAV026/document.

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Phaeodactylum et Nannochloropsis sont des espèces photosynthétiques modèles pour le métabolisme des glycérolipides, se distinguant par un enrichissement en acides gras polyinsaturés à très longues chaînes (VLC-PUFA) et de grandes quantités en triacylglycérol (TAG). Les proportions des différents lipides sont influencées par des facteurs environnementaux. Nous avons caractérisé le remodelage lipidique chez Phaeodactylum en réponse à la carence en azote et en phosphate. Ces limitations en nutriments induisent une accumulation de TAG, exploitable comme biocarburant. Nous avons identifié de nouvea
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Lenssen, Karl Christian. "Kombinatorische Festphasensynthese neuer kationischer Lipide und High-throughput-Screening ihrer Transfektionseigenschaften." [S.l.] : [s.n.], 2002. http://deposit.ddb.de/cgi-bin/dokserv?idn=967724244.

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Hossain, Mohammad Hamid. "Lipide von Borrelia burgdorferi." [S.l.] : [s.n.], 1999. http://deposit.ddb.de/cgi-bin/dokserv?idn=959743723.

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Fauquignon, Martin. "Développement de vésicules hybrides polymère/lipide comme modèles de membrane cellulaire et micro-/nano-réacteurs." Thesis, Bordeaux, 2019. http://www.theses.fr/2019BORD0447.

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Les vésicules hybrides, résultant de l’auto-assemblage combiné de copolymères amphiphiles et de phospholipides, font l’objet d’un intérêt grandissant depuis plusieurs années. Ces assemblages peuvent être vus comme des structures vésiculaires avancées comparés aux liposomes et polymersomes. Ils permettent en effet de combiner la variabilité chimique et la stabilité mécanique de la membrane polymère avec la bio-fonctionnalité et la perméabilité de la membrane lipidique. Ces objets pourraient être utilisés dans plusieurs domaines : nano-réacteur pour des réactions enzymatiques, modèle biomimétiqu
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Allouche, Maya. "Etude des interactions protéine-lipide : exemple du système lipase/colipase pancréatique." Aix-Marseille 2, 2008. http://www.theses.fr/2008AIX20674.

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Jin, Haixiu. "The Role of Regulated IRE1 Dependent Decay (RIDD) on Lipid Droplets in the Central Nervous System." Thesis, Lyon, 2020. http://www.theses.fr/2020LYSEN073.

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Les gouttelettes lipidiques (GLs) sont des organelles de stockage qui sont constituées d'un coeur de lipides neutres (triacylglycérides et cholesterol) entouré par une monocouche de phospholipides. Les GLs jouent un rôle majeur dans l'homéostasie lipidique, énergétique et cellulaire. Les GLs sont produites au niveau du réticulm endoplasmique (RE) ou est synthétisé des lipides tels que les triacylglycérides et le cholesterol. Le RE est également l'organelle ou est réalisé le bon repliement (ou conformation) des protéines membranaires ou sécrétées. Une accumulation de protéines mal conformées da
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Stenby, Ejsing Christer. "Molecular characterization of the lipidome by mass spectrometry." Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2007. http://nbn-resolving.de/urn:nbn:de:swb:14-1172770038324-91461.

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Cells, whether bacterial, fungal or mammalian, are all equipped with metabolic pathways capable of producing an assortment of structurally and functionally distinct lipid species. Despite the structural diversity of lipids being recognized and correlated to specific cellular phenomena and disease states, the molecular mechanisms that underpin this structural diversity remain poorly understood. In part, this is due to the lack of adequate analytical techniques capable of measuring the structural details of lipid species in a direct, comprehensive and quantitative manner. The aim of my thesis st
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Books on the topic "Lipide A"

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Christie, William W. Lipid analysis: Isolation, separation, identification, and structural analysis of lipids. 3rd ed. Oily Press, 2003.

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Hadley, Neil F. The adaptive role of lipidsin biological systems. Wiley, 1985.

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The adaptive role of lipids in biological systems. Wiley, 1985.

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Bourre, Jean-Marie. Les bonnes graisses. Seuil, 1994.

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Haase-Aschoff, Inge. Lipide und deren Verhalten in belebten Schlämmen. R. Oldenbourg, 1985.

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Lipid peroxidation in biomembranes. CRC Press, 1988.

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Vance, Dennis E. Biochemistry of lipids, lipoproteins and membranes. 5th ed. Elsevier, 2008.

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Hagen, Wilhelm. Zur Bedeutung der Lipide im antarktischen Zooplankton =: On the significance of lipids in Antarctic zooplankton. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1988.

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Hagen, Wilhelm. Zur Bedeutung der Lipide im antarktischen Zooplankton =: On the significance of lipids in Antarctic zooplankton. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1988.

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Lehmal, Heidi. Adaptation an niedrige Temperaturen: Lipide in Eisdiatomeen = Adaptation to low temperatures : lipids in ice diatoms. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1999.

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Book chapters on the topic "Lipide A"

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Franz, Gerhard, and Hildegard Koehler. "Lipide und Lipoide." In Drogen und Naturstoffe. Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-77376-1_10.

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Latscha, Hans Peter, Uli Kazmaier, and Helmut Alfons Klein. "Lipide." In Organische Chemie. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-46180-8_30.

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Löffler, G., and L. Weiss. "Lipide." In Physiologische Chemie. Springer Berlin Heidelberg, 1985. http://dx.doi.org/10.1007/978-3-662-09350-4_3.

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Hänsel, R. "Lipide." In Springer-Lehrbuch. Springer Berlin Heidelberg, 1999. http://dx.doi.org/10.1007/978-3-662-09269-9_3.

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Löffler, G., and L. Weiss. "Lipide." In Physiologische Chemie. Springer Berlin Heidelberg, 1988. http://dx.doi.org/10.1007/978-3-662-09348-1_3.

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Mayes, Peter A. "Lipide." In Medizinische Biochemie. Springer Berlin Heidelberg, 1987. http://dx.doi.org/10.1007/978-3-662-22150-1_16.

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Domagk, Götz F. "Lipide." In Biochemie für die mündliche Prüfung. Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/978-3-642-97964-4_6.

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Bannwarth, Horst, Bruno P. Kremer, and Andreas Schulz. "Lipide." In Basiswissen Physik, Chemie und Biochemie. Springer Berlin Heidelberg, 2019. http://dx.doi.org/10.1007/978-3-662-58250-3_17.

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Matissek, Reinhard. "Lipide." In Lebensmittelchemie. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-47112-8_6.

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Hänsel, Rudolf. "Lipide." In Springer-Lehrbuch. Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-00963-1_22.

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Conference papers on the topic "Lipide A"

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Caffrey, Martin. "Lipid Phase Behavior: Databases, Rational Design and Membrane Protein Crystallization." In ASME 2008 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2008. http://dx.doi.org/10.1115/sbc2008-192724.

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The relationship that exists between structure and function is a unifying theme in my varied biomembrane-based research activities. It applies equally well to the lipid as to the protein component of membranes. With a view to exploiting information that has been and that is currently being generated in my laboratory, as well as that which exists in the literature, a number of web-accessible, relational databases have been established over the years. These include databases dealing with lipids, detergents and membrane proteins. Those catering to lipids include i) LIPIDAT, a database of thermody
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Hamroeva, Kh, B. B. Jumaev, Z. B. Davlyatnazarova, and K. Aliev. "EXOGENOUS ANTIOXIDANTS AND LIPIDE PEROXIDATION OF ARABIDOPSIS THALIANA L. HEYNH MUTANT IN SALINITY CONDITIONS." In The All-Russian Scientific Conference with International Participation and Schools of Young Scientists "Mechanisms of resistance of plants and microorganisms to unfavorable environmental". SIPPB SB RAS, 2018. http://dx.doi.org/10.31255/978-5-94797-319-8-795-798.

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Effertz, T., L. Becker, D. Beutner, and AJ Ricci. "Lipide der Zellmembrane beeinflussen den Mechano-Elektrischen-Transduktionskanal. PIP2 (phosphatidylinositol-4,5-bisphosphat) im speziellen moduliert die Einzelkanaleigenschaften." In Abstract- und Posterband – 90. Jahresversammlung der Deutschen Gesellschaft für HNO-Heilkunde, Kopf- und Hals-Chirurgie e.V., Bonn – Digitalisierung in der HNO-Heilkunde. Georg Thieme Verlag KG, 2019. http://dx.doi.org/10.1055/s-0039-1686142.

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Reed, Scott M., Min S. Wang, and Erica L. Curello. "Electrophoretic Mobility of Lipid Coated Nanoparticles: Understanding the Influence of Size and Charge on a Lipoprotein Particle Mimic." In ASME 2011 International Mechanical Engineering Congress and Exposition. ASMEDC, 2011. http://dx.doi.org/10.1115/imece2011-64158.

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Elevated levels of low-density lipoprotein (LDL) are associated with increased risk of coronary heart disease (CHD). Although smaller LDL particles are more atherogenic, it is not clear how LDL particle size influences atherogenesis. Smaller particles may be more prone to macrophage uptake and plaque formation. Alternatively, increased rates of lipid oxidation may explain the atherogenic effects of smaller LDL. We have developed a mimic of LDL that allows independent examination of the effect of LDL size and oxidation. We have engineered LDL mimics using liposome-encapsulated gold nanoparticle
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Konishi, Hidenori, Nisshin OilliO, Hidetaka Uehara, and Kinya Tsuchiya. "Efficient Production of Structured Lipids by Lipase Reaction." In Virtual 2020 AOCS Annual Meeting & Expo. American Oil Chemists’ Society (AOCS), 2020. http://dx.doi.org/10.21748/am20.69.

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ROKICKA, Magdalena, Marcin ZIELIŃSKI, and Marcin DĘBOWSKI. "LIPIDS ACCUMULATION OF CHLORELLA VULGARIS UNDER VARIABLE LIGHTING CONDITIONS." In RURAL DEVELOPMENT. Aleksandras Stulginskis University, 2018. http://dx.doi.org/10.15544/rd.2017.203.

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The cultivation of microalgae is now an intensively developed research area. Some species of microalgae under appropriate conditions accumulate large amounts of lipids in the cells, which may be a suitable feedstock for biodiesel production. The cultures of microalgae for lipids production should be cultivated in specific physicochemical conditions. The most important environmental parameters affecting the algae growth are: nutrients, lighting, reaction, turbulence, salinity and temperature. Periodic changes in lighting is a key parameter that have a significant effect on cells density and lip
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Zhu, Qiang, Zhangli Peng, and Robert J. Asaro. "Investigation of RBC Remodeling With a Multiscale Model." In ASME 2010 First Global Congress on NanoEngineering for Medicine and Biology. ASMEDC, 2010. http://dx.doi.org/10.1115/nemb2010-13121.

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Erythrocyte (red blood cell, or RBC) possesses one of the simplest and best characterized molecular architectures among all cells. It contains cytosol enclosed inside a composite membrane consisting of a fluidic lipid bilayer reinforced by a single layer of protein skeleton pinned to it. In its normal state, this system demonstrates tremendous structural stability, manifested in its ability to sustain large dynamic deformations during circulation. On the other hand, it has been illustrated in experiments that triggered by mechanical loads structural remodeling may occur. A canonical example of
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Eduardo Duran Caballero, Nelson, and Caroline Aparecida Dalben Rampazo. "Nanostructured Lipid Carriers containing natural lipids for cosmetic application on the skin." In XXIII Congresso de Iniciação Científica da Unicamp. Galoá, 2015. http://dx.doi.org/10.19146/pibic-2015-37126.

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Minamikawa, Takeo, Tsutomu Araki, and Mamoru Hashimoto. "Lipids distribution imaging of lipid vesicles by multi-focus excitation CARS microscope." In SPIE BiOS: Biomedical Optics, edited by Ammasi Periasamy and Peter T. C. So. SPIE, 2009. http://dx.doi.org/10.1117/12.808679.

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Schor, Alisha R., and Cullen R. Buie. "Non-Invasive Sorting of Lipid Producing Microalgae With Dielectrophoresis Using Microelectrodes." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-88317.

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In order to advance the algae biofuel industry, we are constructing a dielectrophoretic, single-cell sorter that selects algae based on lipid content. This tool can lower production costs by aiding in strain selection, online culture monitoring, or directed evolution studies. Dielectrophoresis (DEP) is the polarization of particles or cells in a non-uniform electric field, which leads to a Coulomb force on the cell. Lipids and cell cytoplasm have vastly different dielectric properties. Therefore, as a cell accumulates lipid, we predict a change in the overall DEP response. Our models show that
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Reports on the topic "Lipide A"

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Kok, Bernard P. C., and David N. Brindley. Regulation of Lipins and Their Role in Lipid Metabolism. AOCS, 2011. http://dx.doi.org/10.21748/lipidlibrary.39189.

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Hall, Andrew B., Nicholas Lancia, Christopher Gerlach, Brian Layton, Howard M. Monroe, and Mason Hunt. Omental Lipid-Coated Mesh. Defense Technical Information Center, 2011. http://dx.doi.org/10.21236/ada544419.

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Alving, Carl R. Lipid A and Liposomes Containing Lipid A as Adjuvants for Vaccines. Chapter 18. Defense Technical Information Center, 1993. http://dx.doi.org/10.21236/ada272664.

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Slade, Andrea Lynn, Gabriel P. Lopez, Linnea K. Ista, et al. Lipid membranes on nanostructured silicon. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/920830.

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Nagumo, Mark. Molecular Dynamics of Lipid Bilayers. Defense Technical Information Center, 1989. http://dx.doi.org/10.21236/ada211492.

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Quiroga, Ariel D., and Richard Lehner. Acylglycerol Lipases (Neutral Lipid Hydrolysis). AOCS, 2011. http://dx.doi.org/10.21748/lipidlibrary.39188.

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Röttig, Annika, and Alexander Steinbüchel. Bacteria as sources of (commercial) lipids. AOCS, 2016. http://dx.doi.org/10.21748/lipidlibrary.41495.

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Singh, Anup K., Daniel J. Throckmorton, Jose C. Moran-Mirabal, Joshua B. Edel, Grant D. Meyer, and Harold G. Craighead. Lipid Microarray Biosensor for Biotoxin Detection. Office of Scientific and Technical Information (OSTI), 2006. http://dx.doi.org/10.2172/1141263.

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Leibovitz, Brian. Ascorbic acid, lipid peroxidation, and aging. Portland State University Library, 2000. http://dx.doi.org/10.15760/etd.2896.

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Gontar, I. P., O. I. Emelyanova, O. A. Rusanova, N. I. Emelyanov, and A. N. Krasilnikov. NEW METHODOLOGICAL APPROACH TO LIPID IMMOBILIZATION. Планета, 2018. http://dx.doi.org/10.18411/978-5-907109-24-7-2018-xxxv-69-73.

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