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Titlebook: Nanoengineering Materials for Biomedical Uses; Emilio I. Alarcon,Manuel Ahumada Book 2019 Springer Nature Switzerland AG 2019 Regenerative

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and skin diseases as well as in biomedical devices.Is the onThis book fills the gap between fundamental and applied research in the use of nanomaterials in biomedical applications, covering the most relevant areas, such as the fundamental concepts of the preparation of nanostructures and regulatory
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Nanoparticles for Cornea Therapeutic Applications: Treating Herpes Simplex Viral Infections,licidin, LL-37, which prevented HSV-1 infection in corneal epithelial cells. Iron oxide nanoparticles have also been adapted to deliver an anti-HSV-1 DNA vaccine that successfully reduced corneal opacity and HSV-1 markers in a mouse model. Overall, NPs show promise as a delivery method for anti-HSV-1 strategies.
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Computational Methodologies for Exploring Nano-engineered Materials,at remain is the ability to produce responsive nanostructures that respond to external stimuli, enhance existing properties, and introduce new functionalities. In this regard, the use of computational methodologies to design, simulate, and visualize the interaction between biological substrates and
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Nanomaterials Applications in Cartilage Tissue Engineering,ologies such as arthritis, cartilage can degrade over time in some individuals, causing them to live with considerable pain and reduced mobility. The high prevalence of arthritis and the absence of a cure for osteoarthritis, its most common form, have fueled sustained efforts to develop tissue engin
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Nanomaterials for Engineering the Treatment of Skin Wounds,arrier for protection against physical and biological insults, as a thermal regulator to control internal temperatures, and as a sensor of physical stimulus that could lead to pleasant or harmful experiences. This highly-integrated sensory and regulatory armor is also capable of self-repair in respo
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Nano-engineering Nanoparticles for Clinical Use in the Central Nervous System: Clinically Applicabldge of the pathophysiology of the blood–brain barrier. Unlike other nanoparticle-based tissue engineering strategies, the use of nanoparticles in the CNS must be specifically engineered to circumvent or penetrate the blood–brain barrier, which selectively inhibits drugs and nanoparticles from infilt
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