Development of novel nanofibers targeted to smoke-injured lungs.
暂无分享,去创建一个
Tristan D. Clemons | Nick D. Tsihlis | M. Kibbe | S. Stupp | J. Griffith | R. Maile | Alexandra I Mercel | K. Marulanda | D. C. Gillis | Kui Sun | S. Willcox | Erica B. Peters | Mark R. Karver | T. Clemons | Alexandra I. Mercel
[1] Nick D. Tsihlis,et al. Emerging therapies for smoke inhalation injury: a review , 2020, Journal of Translational Medicine.
[2] S. Shanmugam,et al. Effects of the solid lipid nanoparticle of carvacrol on rodents with lung injury from smoke inhalation , 2019, Naunyn-Schmiedeberg's Archives of Pharmacology.
[3] A. Prina‐Mello,et al. Nanotechnology based therapeutics for lung disease , 2019, Thorax.
[4] Tristan D. Clemons,et al. Peptide Amphiphile Supramolecular Nanostructures as a Targeted Therapy for Atherosclerosis. , 2019, Macromolecular bioscience.
[5] Nick D. Tsihlis,et al. Atheroma Niche‐Responsive Nanocarriers for Immunotherapeutic Delivery , 2019, Advanced healthcare materials.
[6] W. Xie,et al. The Superior Antitumor Effect of Self-Assembled Paclitaxel Nanofilaments for Lung Cancer Cells. , 2018, Current drug delivery.
[7] Wesley H. Stepp,et al. Research in Acute Lung Injury and Pulmonary Fibrosis Blocking CXCL1-dependent neutrophil recruitment prevents immune damage and reduces pulmonary bacterial infection after inhalation injury , 2022 .
[8] G. Tsaprailis,et al. RAGE-induced changes in the proteome of alveolar epithelial cells. , 2018, Journal of proteomics.
[9] J. Y. Kim,et al. Production and application of HMGB1 derived recombinant RAGE‐antagonist peptide for anti‐inflammatory therapy in acute lung injury , 2018, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[10] D. Wei,et al. Angiotensin I-converting enzyme inhibitory peptides from Sipuncula (Phascolosoma esculenta): Purification, identification, molecular docking and antihypertensive effects on spontaneously hypertensive rats , 2017 .
[11] Ali Khademhosseini,et al. Evolution and Clinical Translation of Drug Delivery Nanomaterials. , 2017, Nano today.
[12] B. Cairns,et al. Inhalation Injury: Pathophysiology, Diagnosis, and Treatment. , 2017, Clinics in plastic surgery.
[13] Sameer S. Kadri,et al. Risk Factors for In-Hospital Mortality in Smoke Inhalation-Associated Acute Lung Injury: Data From 68 United States Hospitals. , 2016, Chest.
[14] D. Herndon,et al. Pathophysiology, research challenges, and clinical management of smoke inhalation injury , 2016, The Lancet.
[15] A. Schmidt,et al. Change in the Molecular Dimension of a RAGE-Ligand Complex Triggers RAGE Signaling. , 2016, Structure.
[16] M. Kibbe,et al. Targeted Nitric Oxide Delivery by Supramolecular Nanofibers for the Prevention of Restenosis After Arterial Injury. , 2016, Antioxidants & redox signaling.
[17] Samuel I Stupp,et al. Tissue-Factor Targeted Peptide Amphiphile Nanofibers as an Injectable Therapy To Control Hemorrhage. , 2016, ACS nano.
[18] K. Nguyen,et al. Nano-Therapeutics for the Lung: State-of-the-Art and Future Perspectives. , 2015, Current pharmaceutical design.
[19] J. Nguyen,et al. Nanotechnology in respiratory medicine , 2015, Respiratory Research.
[20] Y. Nan,et al. Role of angiotensin-converting enzyme (ACE) and ACE2 in a rat model of smoke inhalation induced acute respiratory distress syndrome , 2015, Burns.
[21] D. Wei,et al. Virtual screening for angiotensin I-converting enzyme inhibitory peptides from Phascolosoma esculenta , 2014, Bioresources and Bioprocessing.
[22] Hongxin Wu,et al. A virtual screening method for inhibitory peptides of Angiotensin I-converting enzyme. , 2014, Journal of food science.
[23] Honggang Cui,et al. Amino Acid Sequence in Constitutionally Isomeric Tetrapeptide Amphiphiles Dictates Architecture of One-Dimensional Nanostructures , 2014, Journal of the American Chemical Society.
[24] Yongju Heo,et al. Inhalation of Carbon Black Nanoparticles Aggravates Pulmonary Inflammation in Mice , 2014, Toxicological research.
[25] Song Li,et al. Polymeric Micelles: Nanocarriers for Cancer-Targeted Drug Delivery , 2014, AAPS PharmSciTech.
[26] S. Stupp,et al. Coassembled cytotoxic and pegylated peptide amphiphiles form filamentous nanostructures with potent antitumor activity in models of breast cancer. , 2012, ACS nano.
[27] Guang Liu,et al. Inhibition Mechanism and Model of an Angiotensin I-Converting Enzyme (ACE)-Inhibitory Hexapeptide from Yeast (Saccharomyces cerevisiae) , 2012, PloS one.
[28] M. Dadlez,et al. Binding studies of truncated variants of the Aβ peptide to the V-domain of the RAGE receptor reveal Aβ residues responsible for binding. , 2011, Biochimica et biophysica acta.
[29] W. Kreyling,et al. The influence of pulmonary surfactant on nanoparticulate drug delivery systems. , 2011, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[30] V. Dodero,et al. Biomolecular studies by circular dichroism. , 2011, Frontiers in bioscience.
[31] Joseph M. DeSimone,et al. Strategies in the design of nanoparticles for therapeutic applications , 2010, Nature Reviews Drug Discovery.
[32] Pete R. Jemian,et al. Irena: tool suite for modeling and analysis of small‐angle scattering , 2009 .
[33] R. Löbenberg,et al. Targeted delivery of nanoparticles for the treatment of lung diseases. , 2008, Advanced drug delivery reviews.
[34] J. Penninger,et al. Angiotensin-converting enzyme 2 in lung diseases , 2006, Current Opinion in Pharmacology.
[35] E. Rieber,et al. Promotion of cell adherence and spreading: a novel function of RAGE, the highly selective differentiation marker of human alveolar epithelial type I cells , 2006, Cell and Tissue Research.
[36] M. Peiris,et al. Good ACE, bad ACE do battle in lung injury, SARS , 2005, Nature Medicine.
[37] Arthur S Slutsky,et al. Angiotensin-converting enzyme 2 protects from severe acute lung failure , 2005, Nature.
[38] V. Muzykantov,et al. Targeting of antioxidant and anti-thrombotic drugs to endothelial cell adhesion molecules. , 2005, Current pharmaceutical design.
[39] S. Stupp,et al. Self-Assembly and Mineralization of Peptide-Amphiphile Nanofibers , 2001, Science.
[40] T. Nagai,et al. Preparation and evaluation of bovine serum albumin nanospheres coated with monoclonal antibodies. , 1988, Drug design and delivery.