Contents
Academic literature on the topic 'Polystyrène sulfonate de sodium (pNASS)'
Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles
Consult the lists of relevant articles, books, theses, conference reports, and other scholarly sources on the topic 'Polystyrène sulfonate de sodium (pNASS).'
Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.
You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.
Journal articles on the topic "Polystyrène sulfonate de sodium (pNASS)"
Venkatesan, Jagadeesh K., Weikun Meng, Ana Rey-Rico, Gertrud Schmitt, Susanne Speicher-Mentges, Céline Falentin-Daudré, Amélie Leroux, Henning Madry, Véronique Migonney, and Magali Cucchiarini. "Enhanced Chondrogenic Differentiation Activities in Human Bone Marrow Aspirates via sox9 Overexpression Mediated by pNaSS-Grafted PCL Film-Guided rAAV Gene Transfer." Pharmaceutics 12, no. 3 (March 21, 2020): 280. http://dx.doi.org/10.3390/pharmaceutics12030280.
Full textHourseau, Muriel, Christine Lagorce-Pages, Robert Benamouzig, Olivier Tuil, Marie-Adèle Ecomard, Leila Zemoura, and Antoine Martin. "Ulcération colique après administration prolongée de Kayexalate® (polystyrène sulfonate de sodium)." Gastroentérologie Clinique et Biologique 28, no. 3 (March 2004): 311–13. http://dx.doi.org/10.1016/s0399-8320(04)94927-5.
Full textMontagnac, Richard, Sylvie Méhaut, and Francis Schillinger. "Complications digestives du polystyrène sulfonate de sodium (Kayexalate®) (KXL) chez le dialysé." Néphrologie & Thérapeutique 5, no. 3 (June 2009): 214–16. http://dx.doi.org/10.1016/j.nephro.2009.01.002.
Full textLardé, Julie, Valérie Jacques, Alexandre Gerardin, Jean-Pierre Pertek, Jean-Louis Lemelle, and Marie-Reine Losser. "Perforation colique après administration per os de Kayexalate® (polystyrène sulfonate de sodium)." Anesthésie & Réanimation 2, no. 4 (July 2016): 230–33. http://dx.doi.org/10.1016/j.anrea.2016.03.002.
Full textJitreewas, Parinya, Suwicha Saengvattanarat, Phanita Tansiri, Siriporn Pranee, Sunanta Chuayprakong, Chalermchai Khemtong, and Samitthichai Seeyangnok. "Synthesis of PAA-PAMPS-PNaSS Terpolymers as Ultraviolet-Tagged Scale Inhibitor for Industrial Water Cooling System." Key Engineering Materials 757 (October 2017): 68–72. http://dx.doi.org/10.4028/www.scientific.net/kem.757.68.
Full textPonroy, Bérengère, Marion Nadal, Julien Nardoux, Rémy Kerdraon, Claire Lecointre, and Patrick Michenet. "Ulcérations coliques associées à la prise de Kayexalate® (polystyrène sulfonate de sodium) : à propos de deux observations." Annales de Pathologie 35, no. 2 (April 2015): 164–67. http://dx.doi.org/10.1016/j.annpat.2015.01.013.
Full textRobert, S., Y. E. Nisse, S. Henn-Ménétré, I. Vrillon, and B. Demoré. "Exemple d’un cas d’hyperkaliémie du nourrisson : proposition d’un circuit pour le prétraitement du lait infantile par résine de polystyrène sulfonate de sodium à l’hôpital." Annales Pharmaceutiques Françaises 78, no. 4 (July 2020): 287–93. http://dx.doi.org/10.1016/j.pharma.2020.02.005.
Full textFreeze, Tracy A., Leanne Skerry, Emily Kervin, Rosemary Nunn, Jennifer Woodland, Natasha Hanson, and Martin MacKinnon. "Treatment of Mild Hyperkalemia in Hospitalized Patients: An Unnecessary Practice?" Canadian Journal of Hospital Pharmacy 74, no. 3 (July 5, 2021). http://dx.doi.org/10.4212/cjhp.v74i3.3154.
Full textDissertations / Theses on the topic "Polystyrène sulfonate de sodium (pNASS)"
Leroux, Amélie. "Implant ligamentaire bioactif et biodégradable : élaboration, fonctionnalisation et étude des mécanismes." Thesis, Sorbonne Paris Cité, 2019. http://www.theses.fr/2019USPCD054.
Full textThe rupture of the anterior cruciate ligament of the knee is a common affection which mainly occurs in young and active population. Because of its joint location and its poor vascularization, this ligament does not heal spontaneously. The “gold-standard”, consisting of using autograft, has many disadvantages and the research focuses on the development of synthetic ligament implants. In this context, this thesis studies and evidences the possibility of a new ligament with bioactive and biodegradable features, made of polycaprolactone (PCL) grafted with poly(sodium styrene sulfonate) (pNaSS). The results presented in this manuscript evaluate the initial choice of raw PCL, its characterization, its functionalization, its mechanical properties after processing, its degradation mechanism and its in vitro and in vivo biological impact. At the interface of engineering, chemistry, mechanics and biology fields, we demonstrated that: the pNaSS grafting accelerates the PCL degradation while protecting the surface during the first six months; the mechanical properties of PCL are adapted to the ligament application; in vitro the pNaSS grafting promotes cell growth, cell distribution, cell density, cell spread, growth factor production, and maintenance of gene expression; and finally that in vivo the pNaSS grafting allows to reduce joint inflammation and postoperative osteoarthritis while promoting tissue recolonization
Dejeu, Jérôme. "Films de deux polymères auto-assemblés : chlorhydrate de polyallylamine (PAH) et polystyrène sulfonate de sodium (PSS) : mécanisme de croissance et stabilité." Besançon, 2007. http://www.theses.fr/2007BESA2005.
Full textThe growth mechanism and the stability of polyelectolyte films elaborated by multi-steps self association were investigated using principally fixed angle laser reflectometry. The first part of the investigation addressed the conversion of the reflectometric output into the deposited weight of polymer. In the case of a monolayer we have established the range of validity of a linear relationship between the deposited weight and the reflectometric output. In the case of a multilayer film we have used and explored a new approach developed in the laboratory allowing the determination of the stepwise change of the refractive index and the film thickness, leading eventually to the deposited weight. The second part of the work is dedicated to the experimental elaboration of films with the polyelectrolytes poly(allylamine,HCl) and poly(styrene sulfonate). The influence of the principal operational parameters was screened (pH, ionic strength, type of electrolytes, molecular weight of polymers, washing between deposition steps, etc). The charge balance and the incorporation of small ions were determined step by step. The elaboration of films on the flat silica substrate in the reflectometric cell was compared with that on colloidal silica. Complementary characterization of the polymer films were made with AFM and Focused ion beam imaging (FIB-SIM), which allowed the determination of the films morphology and roughness. Very thick films were constructed. A growth mechanism was proposed to explain the transition between an early stage (first steps), influenced by the property of the surface and later steps where the growth only depends on the interaction between the two polymers. Finally the stability of 1 to 5 bilayers films was examined upon change of the pH of the solution