Space Station-like Composite Nanoparticles for Co-Delivery of Multiple Natural Compounds from Chinese Medicine and Hydrogen in Combating Sensorineural Hearing Loss.
暂无分享,去创建一个
Lu Wen | Gang Chen | Shibao Xie | Pei Luo | Liye Xia | Zeming Zhou | Chong Yu | Kerui He | Ming Zhang | Zhifeng Zhang | Wenbin Xiao | Hanqi Li
[1] Zhimin Zhou,et al. Intratympanic microcrystals of dexamethasone and lipoic acid for the treatment of cisplatin-induced inner ear injury. , 2023, Colloids and surfaces. B, Biointerfaces.
[2] I. Ghobrial,et al. Molecular bottlebrush prodrugs as mono- and triplex combination therapies for multiple myeloma , 2023, Nature Nanotechnology.
[3] J. Llorens,et al. Hair cell toxicology: With the help of a little fish , 2022, Frontiers in Cell and Developmental Biology.
[4] C. Iliescu,et al. Synthesis of ZnO/Au Nanocomposite for Antibacterial Applications , 2022, Nanomaterials.
[5] J. Alvarado,et al. Kanamycin and Cisplatin Ototoxicity: Differences in Patterns of Oxidative Stress, Antioxidant Enzyme Expression and Hair Cell Loss in the Cochlea , 2022, Antioxidants.
[6] L. Teng,et al. Smart drug delivery systems for precise cancer therapy , 2022, Acta pharmaceutica Sinica. B.
[7] Wei Wu,et al. The in vivo fate of polymeric micelles. , 2022, Advanced drug delivery reviews.
[8] Y. Qiao,et al. Oridonin alleviates kanamycin-related hearing loss by inhibiting NLRP3/caspase-1/gasdermin D-induced inflammasome activation and hair cell pyroptosis. , 2022, Molecular immunology.
[9] Xueling Wang,et al. An enhanced antioxidant strategy of astaxanthin encapsulated in ROS-responsive nanoparticles for combating cisplatin-induced ototoxicity , 2022, Journal of Nanobiotechnology.
[10] Daishi Chen,et al. Curcumin-Encapsulated Chitosan-Coated Nanoformulation as an Improved Otoprotective Strategy for Ototoxic Hearing Loss. , 2022, Molecular pharmaceutics.
[11] Zhiqiang Shen,et al. Oxidative Stress and Ginsenosides: An Update on the Molecular Mechanisms , 2022, Oxidative medicine and cellular longevity.
[12] Yuchen Wang,et al. Mechanism and Application of Chitosan and Its Derivatives in Promoting Permeation in Transdermal Drug Delivery Systems: A Review , 2022, Pharmaceuticals.
[13] Xiao Duan,et al. Redox-responsive Self-assembled Polymeric Nanoprodrug for Delivery of Gemcitabine in B-cell Lymphoma Therapy. , 2022, Acta biomaterialia.
[14] J. Arias,et al. Recent Advances in the Surface Functionalization of PLGA-Based Nanomedicines , 2022, Nanomaterials.
[15] P. Pinton,et al. Molecular mechanisms and consequences of mitochondrial permeability transition , 2021, Nature Reviews Molecular Cell Biology.
[16] M. Risling,et al. Inhalation of Molecular Hydrogen, a Rescue Treatment for Noise-Induced Hearing Loss , 2021, Frontiers in Cellular Neuroscience.
[17] P. Thorne,et al. Molecular Mechanisms of Sensorineural Hearing Loss and Development of Inner Ear Therapeutics , 2021, International journal of molecular sciences.
[18] N. Zhong,et al. Hydrogen/oxygen therapy for the treatment of an acute exacerbation of chronic obstructive pulmonary disease: results of a multicenter, randomized, double-blind, parallel-group controlled trial , 2021, Respiratory Research.
[19] M. Nasr-Esfahani,et al. Chemical stabilization of γ-polyglutamate by chitosan and the effect of co-solvents on the stability. , 2021, Biophysical chemistry.
[20] Mingyue Ai,et al. Modulating surface charge of dexamethasone non-spherical microcrystals for improved inner ear delivery. , 2021, Colloids and surfaces. B, Biointerfaces.
[21] Amit P. Bhavsar,et al. Toll‐like receptor 4 is activated by platinum and contributes to cisplatin‐induced ototoxicity , 2021, EMBO reports.
[22] Jinghui Peng,et al. Design, Synthesis, and Biological Evaluation of Dexamethasone-Salvianolic Acid B Conjugates and Nanodrug Delivery against Cisplatin-Induced Hearing Loss. , 2021, Journal of medicinal chemistry.
[23] D. Kohane,et al. Drug Delivery across Barriers to the Middle and Inner Ear , 2020, Advanced functional materials.
[24] Sanna Timonen,et al. SynToxProfiler: An interactive analysis of drug combination synergy, toxicity and efficacy , 2020, PLoS Comput. Biol..
[25] J. Chung,et al. Resveratrol-loaded chitosan-γ-poly(glutamic acid) nanoparticles: Optimization, solubility, UV stability, and cellular antioxidant activity. , 2019, Colloids and surfaces. B, Biointerfaces.
[26] S. Bondy,et al. Increased oxidative stress, inflammation, and glutamate: Potential preventive and therapeutic targets for hearing disorders , 2019, Mechanisms of Ageing and Development.
[27] Esra D. Camci,et al. ORC-13661 protects sensory hair cells from aminoglycoside and cisplatin ototoxicity , 2019, JCI insight.
[28] Xiaoyuan Chen,et al. Hydrogen Gas from Inflammation Treatment to Cancer Therapy. , 2019, ACS nano.
[29] J. Buckey. Use of Gases to Treat Cochlear Conditions , 2019, Front. Cell. Neurosci..
[30] A. Eshraghi,et al. Nanoparticle-based drug delivery in the inner ear: current challenges, limitations and opportunities , 2019, Artificial cells, nanomedicine, and biotechnology.
[31] P. Steyger,et al. Delivery of therapeutics to the inner ear: The challenge of the blood-labyrinth barrier , 2019, Science Translational Medicine.
[32] Kelvin Chan,et al. Synergistic study of a Danshen (Salvia Miltiorrhizae Radix et Rhizoma) and Sanqi (Notoginseng Radix et Rhizoma) combination on cell survival in EA.hy926 cells , 2019, BMC Complementary and Alternative Medicine.
[33] Xiaoyuan Chen,et al. Fenton-Reaction-Acceleratable Magnetic Nanoparticles for Ferroptosis Therapy of Orthotopic Brain Tumors. , 2018, ACS nano.
[34] R. Pappu,et al. Injectable tissue integrating networks from recombinant polypeptides with tunable order , 2018, Nature Materials.
[35] Justin Tan,et al. A comparison of cochlear distribution and glucocorticoid receptor activation in local and systemic dexamethasone drug delivery regimes , 2018, Hearing Research.
[36] Ron O. Dror,et al. Molecular Dynamics Simulation for All , 2018, Neuron.
[37] W. Pan,et al. Nanostructured lipid carrier-based pH and temperature dual-responsive hydrogel composed of carboxymethyl chitosan and poloxamer for drug delivery. , 2018, International journal of biological macromolecules.
[38] Tianfu Wang,et al. Intratumoral high-payload delivery and acid-responsive release of H2 for efficient cancer therapy using the ammonia borane-loaded mesoporous silica nanomedicine , 2018, Applied Materials Today.
[39] J. San Román,et al. pH‐sensitive polymeric nanoparticles with antioxidant and anti‐inflammatory properties against cisplatin‐induced hearing loss , 2018, Journal of controlled release : official journal of the Controlled Release Society.
[40] Peng Chen,et al. Multi-stimuli responsive smart chitosan-based microcapsules for targeted drug delivery and triggered drug release. , 2017, Ultrasonics sonochemistry.
[41] C. Lanvers-Kaminsky,et al. Drug‐induced ototoxicity: Mechanisms, Pharmacogenetics, and protective strategies , 2017, Clinical pharmacology and therapeutics.
[42] Y. Hirose,et al. Quercetin protects against hair cell loss in the zebrafish lateral line and guinea pig cochlea , 2016, Hearing Research.
[43] Youqing Shen,et al. Redox-Activated Light-Up Nanomicelle for Precise Imaging-Guided Cancer Therapy and Real-Time Pharmacokinetic Monitoring. , 2016, ACS nano.
[44] Trushar R. Patel,et al. Dynamic light scattering: a practical guide and applications in biomedical sciences , 2016, Biophysical Reviews.
[45] Lian Li,et al. Dual-pH responsive micelle platform for co-delivery of axitinib and doxorubicin. , 2016, International journal of pharmaceutics.
[46] Xiaole Qi,et al. Carboxymethyl Chitosan-Modified Polyamidoamine Dendrimer Enables Progressive Drug Targeting of Tumors via pH-Sensitive Charge Inversion. , 2016, Journal of biomedical nanotechnology.
[47] Calum A. MacRae,et al. Zebrafish as tools for drug discovery , 2015, Nature Reviews Drug Discovery.
[48] Solmaz Maleki Dizaj,et al. Calcium carbonate nanoparticles as cancer drug delivery system , 2015, Expert opinion on drug delivery.
[49] Lu Wen,et al. In vivo distribution and pharmacokinetics of multiple active components from Danshen and Sanqi and their combination via inner ear administration. , 2014, Journal of ethnopharmacology.
[50] S. Cao,et al. PUA/PSS multilayer coated CaCO3 microparticles as smart drug delivery vehicles. , 2013, Materials science & engineering. C, Materials for biological applications.
[51] H. Nawashiro,et al. Safety of intravenous administration of hydrogen-enriched fluid in patients with acute cerebral ischemia: initial clinical studies , 2013, Medical gas research.
[52] Ryosuke Kurokawa,et al. A convenient method for determining the concentration of hydrogen in water: use of methylene blue with colloidal platinum , 2012, Medical gas research.
[53] Victor C Yang,et al. Cancer theranostics: the rise of targeted magnetic nanoparticles. , 2011, Trends in biotechnology.
[54] Xiaoquan Yang,et al. Conformational and thermal properties of phaseolin, the major storage protein of red kidney bean (Phaseolus vulgaris L.). , 2011, Journal of the science of food and agriculture.
[55] Xiaofeng Wang,et al. Non-spherical racemic polylactide microarchitectures formation via solvent evaporation method , 2009 .
[56] W. Parak,et al. Composite nanoparticles take aim at cancer. , 2008, ACS nano.
[57] Yasuo Katayama,et al. Hydrogen acts as a therapeutic antioxidant by selectively reducing cytotoxic oxygen radicals , 2007, Nature Medicine.
[58] P. Wangemann,et al. Loss of cochlear HCO3- secretion causes deafness via endolymphatic acidification and inhibition of Ca2+ reabsorption in a Pendred syndrome mouse model. , 2007, American journal of physiology. Renal physiology.
[59] James S. Wright,et al. Early Elevation of Cochlear Reactive Oxygen Species following Noise Exposure , 1999, Audiology and Neurotology.
[60] D. Butterfield,et al. Direct detection of ototoxicant-induced reactive oxygen species generation in cochlear explants , 1996, Hearing Research.
[61] M. McKeage,et al. Comparative Adverse Effect Profiles of Platinum Drugs , 1995, Drug safety.
[62] H. Rashedi,et al. Molecular dynamics studies of polysaccharide carrier based on starch in dental cavities. , 2019, International journal of biological macromolecules.
[63] R. Moore,et al. Risk factors for the development of auditory toxicity in patients receiving aminoglycosides. , 1984, The Journal of infectious diseases.