3,639 research outputs found

    Recent advances in porous nanoparticles for drug delivery in antitumoral applications: inorganic nanoparticles and nanoscale metal-organic frameworks

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    Introduction: Nanotechnology has provided new tools for addressing unmet clinical situations, especially in the oncology field. The development of smart nanocarriers able to deliver chemotherapeutic agents specifically to the diseased cells and to release them in a controlled way has offered a paramount advantage over conventional therapy. Areas covered: Among the different types of nanoparticle that can be employed for this purpose, inorganic porous materials have received significant attention in the last decade due to their unique properties such as high loading capacity, chemical and physical robustness, low toxicity and easy and cheap production in the laboratory. This review discuss the recent advances performed in the application of porous inorganic and metal-organic materials for antitumoral therapy, paying special attention to the application of mesoporous silica, porous silicon and metal-organic nanoparticles. Expert opinion: The use of porous inorganic nanoparticles as drug carriers for cancer therapy has the potential to improve the life expectancy of the patients affected by this disease. However, much work is needed to overcome their drawbacks, which are aggravated by their hard nature, exploiting the advantages offered by highly the ordered pore network of these materials

    Stem Cell Imaging: Tools to Improve Cell Delivery and Viability.

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    Stem cell therapy (SCT) has shown very promising preclinical results in a variety of regenerative medicine applications. Nevertheless, the complete utility of this technology remains unrealized. Imaging is a potent tool used in multiple stages of SCT and this review describes the role that imaging plays in cell harvest, cell purification, and cell implantation, as well as a discussion of how imaging can be used to assess outcome in SCT. We close with some perspective on potential growth in the field

    Nanoparticles for bone tissue engineering

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    Tissue engineering (TE) envisions the creation of functional substitutes for damaged tissues through integrated solutions, where medical, biological, and engineering principles are combined. Bone regeneration is one of the areas in which designing a model that mimics all tissue properties is still a challenge. The hierarchical structure and high vascularization of bone hampers a TE approach, especially in large bone defects. Nanotechnology can open up a new era for TE, allowing the creation of nanostructures that are comparable in size to those appearing in natural bone. Therefore, nanoengineered systems are now able to more closely mimic the structures observed in naturally occurring systems, and it is also possible to combine several approaches - such as drug delivery and cell labeling - within a single system. This review aims to cover the most recent developments on the use of different nanoparticles for bone TE, with emphasis on their application for scaffolds improvement; drug and gene delivery carriers, and labeling techniques.This study was funded by QREN (ON.2 - NORTE-01-0124-FEDER-000018), as well as the European Union’s FP7 Programme under grant agreement number REGPOTCT2012-316331-POLARIS. Sılvia Vieira was awarded an FCT PhD scholarship (SFRH/BD/102710/2014). The FCT distinction attributed to J.M.O. under the Investigator FCT program (IF/00423/2012 and IF/01285/2015) is also greatly acknowledged.info:eu-repo/semantics/publishedVersio

    Multifunctional nanocarriers for lung drug delivery

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    Nanocarriers have been increasingly proposed for lung drug delivery applications. The strategy of combining the intrinsic and more general advantages of the nanostructures with specificities that improve the therapeutic outcomes of particular clinical situations is frequent. These include the surface engineering of the carriers by means of altering the material structure (i.e., chemical modifications), the addition of specific ligands so that predefined targets are reached, or even the tuning of the carrier properties to respond to specific stimuli. The devised strategies are mainly directed at three distinct areas of lung drug delivery, encompassing the delivery of proteins and protein-based materials, either for local or systemic application, the delivery of antibiotics, and the delivery of anticancer drugs-the latter two comprising local delivery approaches. This review addresses the applications of nanocarriers aimed at lung drug delivery of active biological and pharmaceutical ingredients, focusing with particular interest on nanocarriers that exhibit multifunctional properties. A final section addresses the expectations regarding the future use of nanocarriers in the area.UID/Multi/04326/2019; PD/BD/137064/2018info:eu-repo/semantics/publishedVersio

    Molecular dynamics simulations of Ibuprofen release from pH-gated silica nanochannels

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    The iboprufen delivery process from cylindrical silica pores of diameter 3~nm, with polyamine chains anchored at the pore outlets,was investigated by means of massive molecular dynamics simulations. Effects from pH were introduced by considering polyamine chains with different degree of protonation. High, low and intermediate pH environments were investigated. The increment of the acidity of the environment leads to a significant decrease of the pore aperture,  yielding an effective diameter, for the lowest pH case, that is 3.5~times smaller than the one associated to the highest pH one. Using a biased sampling procedure, Gibbs free energy profiles for the ibuprofen delivery process were obtained. The joint analysis of the corresponding profiles, time evolution of the ibuprofen position within the channel, orientation of the molecule and instantaneous effective diameter of the gate, suggests a 3-steps mechanism for ibuprofen delivery. A complementary analysis of the translational mobility of ibuprofen along the axial direction of the channel revealed a sub-diffusive dynamics in the low and intermediate pH cases.Deviations from Brownian diffusive dynamics are discussed and compared with direct experimental results. Fil: Rodriguez, Javier. Comisión Nacional de Energía Atómica; Argentina. Universidad Nacional del Centro de la Provincia de Buenos Aires. Facultad de Ciencias Exactas. Núcleo de Investigación en Educacion Ciencia y Tecnologia; ArgentinaFil: Elola, Maria Dolores. Comisión Nacional de Energía Atómica; Argentin

    Recent advances in smart biotechnology: Hydrogels and nanocarriers for tailored bioactive molecules depot

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    Over the past ten years, the global biopharmaceutical market has remarkably grown, with ten over the top twenty worldwide high performance medical treatment sales being biologics. Thus, biotech R&D (research and development) sector is becoming a key leading branch, with expanding revenues. Biotechnology offers considerable advantages compared to traditional therapeutic approaches, such as reducing side effects, specific treatments, higher patient compliance and therefore more effective treatments leading to lower healthcare costs. Within this sector, smart nanotechnology and colloidal self-assembling systems represent pivotal tools able to modulate the delivery of therapeutics. A comprehensive understanding of the processes involved in the self assembly of the colloidal structures discussed therein is essential for the development of relevant biomedical applications. In this review we report the most promising and best performing platforms for specific classes of bioactive molecules and related target, spanning from siRNAs, gene/plasmids, proteins/growth factors, small synthetic therapeutics and bioimaging probes.Istituto Italiano di Tecnologia (IIT)COST Action [CA 15107]People Program (Marie Curie Actions) of the European Union's Seventh Framework Program under REA [606713 BIBAFOODS]Portuguese Foundation for Science and Technology (FCT) [PTDC/AGR-TEC/4814/2014, IF/01005/2014]Fundacao para a Ciencia e Tecnologia [SFRH/BPD/99982/2014]Danish National Research Foundation [DNRF 122]Villum Foundation [9301]Italian Ministry of Instruction, University and Research (MIUR), PRIN [20109PLMH2]"Fondazione Beneficentia Stiftung" VaduzFondo di Ateneo FRAFRAinfo:eu-repo/semantics/publishedVersio

    Multifunctional mesoporous nanoparticles for catalysis, sensing and drug delivery applications

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    Nanomatrices mesoporosas estímulo-respuesta para la liberación de fármacos

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    Tesis inédita de la Universidad Complutense de Madrid, Facultad de Farmacia, Departamento de Química en Ciencias Farmacéuticas, leída el 29-10-2019The overall objective of this PhD thesis has been the design and production of engineered mesoporous nanoparticles for biomedical applications. In this sense, the efforts during this doctoral thesis have been headed towards the development of nanomatrices with potential applicability in the treatment of complex diseases, such as bone and wound healing and cancer. The initial context of this doctoral thesis was the European project “MOZART” (“MesopOrous matrices for localiZed pH-triggered releAse of theRapeuTic ions and drugs”), which included many different European partners (11) from both academic and industrial environments. The proposal involved the use of mesoporous materials to treat delayed bone healing and chronic wound healing. The objective was to load therapeutic agents and ions within the mesoporous framework that would be released in the affected areas, boosting the healing and improving the health of the patients. The use of a stimuli responsive gatekeeper for the pore entrances to minimize potential premature release was considered. In this sense, the acid pH that was expected to be found in those pathological scenarios was selected as stimulus to trigger the payload release...El objetivo principal de esta tesis ha sido el diseño y la producción de nanopartículas mesoporosas para aplicaciones biomédicas. En este sentido, los esfuerzos durante esta tesis doctoral han estado dirigidos hacia el desarrollo de nanomatrices con potencial aplicabilidad en el tratamiento de enfermedades complejas, como pueden ser la reparación de fracturas crónicas graves de hueso y de heridas piel o el cáncer. El contexto inicial de esta tesis doctoral fue el proyecto europeo “MOZART”(“MesopOrous matrices for localiZed pH-triggered releAse of theRapeuTic ions and drugs”), que incluía diferentes miembros europeos (11) del ámbito académico e industrial. La proposición implicaba el uso de materiales mesoporosos para tratar enfermedades de hueso y piel. El objetivo era cargar agentes e iones terapéuticos en la matriz mesoporosa, los cuales serían liberados en las zonas de interés, fomentando la curación y mejorando la vida de los pacientes. El uso de compuertas estimulo-respuesta para cerrar los mesoporoso fue considerada. En ese sentido, el pH ácido que se esperaba encontrar en estas patologías fue considerado como estímulo para iniciar la liberación dela carga...Depto. de Química en Ciencias FarmacéuticasFac. de FarmaciaTRUEunpu

    Gated nanomaterials as delivery platform for the treatment of inflammatory disorders

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    Tesis por compendio[ES] La presente tesis doctoral titulada "Nanomateriales con puertas moleculares como plataforma de liberación controlada de fármacos para el tratamiento de desórdenes inflamatorios" se centra la preparación y evaluación de nanomateriales híbridos orgánico-inorgánicos, basados en nanopartículas mesoporosas de sílice, para la liberación controlada de fármacos en aplicaciones biomédicas, en concreto en el campo de la inflamación. En primer lugar se describe un nanomaterial para la liberación controlada del inhibidor de caspasa-1, VX-765, aprovechando la acumulación preferencial de las nanopartículas en las zonas inflamadas. En concreto, se han preparado nanopartículas mesoporosas de sílice, cargadas con el fármaco VX-765 y funcionalizadas covalentemente con ¿-poli-L-lisina que actúa como puerta molecular. La actividad anti-inflamatoria del material se ha comprobado tanto in vitro, en el modelo celular de monocitos THP-1, como in vivo en ratones en un modelo de inflamación de bolsa de aire. Los resultados muestran la acumulación preferente de las nanopartículas en las zonas inflamadas así como un aumento del efecto terapéutico del fármaco que se atribuye a las ventajas que ofrece la encapsulación. Se concluye que las nanopartículas mesoporosos de sílice con puertas moleculares podrían ser una herramienta importante para el desarrollo de nuevas estrategias terapéuticas en el campo de la inflamación. Basándonos en los resultados obtenidos, en el capítulo cuatro se describe un sistema de liberación controlada para el tratamiento de la inflamación pulmonar aguda como terapia alternativa que permita la administración directa de fármacos a los pulmones. Se ha preparado un nanosistema basado en nanopartículas mesoporosas de sílice cargadas con el glucocorticoide dexametasona y funcionalizadas covalentemente con una puerta molecular peptídica que reconoce el receptor del factor de necrosis tumoral 1 (TNFR1), que a su vez actúa como agente diana para la acumulación preferente en macrófagos pro-inflamatorios. La actividad terapéutica del sistema se ha corroborado en ensayos in vitro en macrófagos pro-inflamatorios, e in vivo en un modelo de ratón de inflamación pulmonar aguda. Se ha comprobado la acumulación preferente de las nanopartículas en los pulmones inflamados, así como la mejora del efecto terapéutico de la dexametasona en la reducción del daño pulmonar, minimizando los efectos adversos asociados a la administración del fármaco libre. Con todo ello se concluye que las nanopartículas mesoporosas de sílice pueden ser utilizadas para el tratamiento de la inflamación pulmonar aguda pudiendo ser una herramienta útil para superar las limitaciones de los tratamientos actuales. Finalmente, se describe otro sistema de liberación controlada de fármacos para inflamación pulmonar aguda. En este caso, se aborda el uso de un nuevo inhibidor del inflamasoma, QM-378, como terapia farmacológica alternativa. Con el objetivo de potenciar la administración directa en los pulmones inflamados, el QM-378 se encapsula en nanopartículas mesoporosas de sílice funcionalizadas con la puerta molecular peptídica que reconoce TNFR1. La acumulación preferente de las nanopartículas en los pulmones inflamados queda demostrada a través de los ensayos de biodistribución, así como la mejora del efecto terapéutico del QM-378 en la reducción del daño pulmonar, debido a las ventajas de la encapsulación en un nanosistema dirigido. Con todo ello se concluye que el QM-378 es un buen candidato para el tratamiento de la inflamación pulmonar aguda, y que su encapsulación en las nanopartículas ofrece una administración pulmonar directa y controlada, consiguiéndose así una mejora en el perfil terapéutico del fármaco. La conclusión principal de la presente tesis doctoral es que el desarrollo de nanomateriales mesoporosos de sílice para la liberación controlada de fármacos se presenta como un[CA] La present tesi doctoral titulada "Nanomaterials amb portes moleculars com a plataforma d'alliberament controlat de fàrmacs per al tractament de desordres inflamatoris" se centra en la preparació i avaluació de nanomaterials híbrids orgànic-inorgànics, basats en nanopartícules mesoporoses de sílice, per a l'alliberament controlat de fàrmacs en aplicacions biomèdiques, en concret en el camp de la inflamació. En primer lloc, es presenta un nanomaterial per a l'alliberament controlat de l'inhibidor de caspasa-1, VX-765, aprofitant que les nanopartícules s'acumulen preferencialment en les zones inflamades. S'han preparat nanopartícules mesoporoses de sílice, carregades amb VX-765 i funcionalitzades covalentment amb ¿-poli-L-lisina com a porta molecular. L'activitat anti-inflamatòria del material s'ha comprovat tant in vitro, en el model cel·lular de THP-1, com in vivo en ratolins en un model d'inflamació de bossa d'aire. Els resultats mostren la acumulació preferent de les nanopartícules en les zones inflamades així com un augment de l'efecte terapèutic del fàrmac, atribuÏt als avantatges que ofereix l'encapsulació. Es conclou que les nanopartícules mesoporoses de sílice amb porta molecular podrien ser una eina important per al desenvolupament de noves estratègies terapèutiques en el camp de la inflamació. Basant-nos en els resultats obtinguts, en el capítol quatre es presenta un sistema d'alliberament controlat per al tractament de la inflamació pulmonar aguda com a teràpia alternativa que permet l'administració directa de fàrmacs als pulmons. S'ha preparat un nanosistema basat en nanopartícules mesoporoses de sílice carregades amb el glucocorticoide dexametasona i funcionalitzades amb la unió covalent de una porta molecular peptídica que reconeix el receptor del factor de necrosi tumoral 1 (TNFR1), que al seu torn actua com a agent diana per a la acumulació preferent en macròfags pro-inflamatoris. L'activitat terapèutica del sistema dissenyat s'ha corroborat en assajos in vitro en macròfags pro-inflamatoris, i in vivo en un model de ratolí d'inflamació pulmonar aguda. S'ha comprovat la acumulació preferent de les nanopartícules en els pulmons inflamats a través d'assajos de biodistribució, així com la millora de l'efecte terapèutic de la dexametasona en la reducció de la lesió pulmonar minimitzant els efectes adversos associats a l'administració del fàrmac lliure. Amb tot això es conclou que les nanopartícules mesoporoses de sílice poden ser utilitzades per al tractament de la inflamació pulmonar aguda ja que poden ajudar a superar les limitacions dels tractaments actuals. Finalment es mostra també un sistema d'alliberament controlat de fàrmacs per a inflamació pulmonar aguda. En aquest cas, es descriu l'ús d'un nou inhibidor de l'inflamasoma, QM-378, com a teràpia farmacològica alternativa al tractament de la inflamació descontrolada en la inflamació pulmonar aguda. Amb l'objectiu de potenciar l'administració directa en els pulmons inflamats, el QM-378 s'encapsula en les nanopartícules mesoporoses de sílice funcionalitzades amb la porta molecular péptidica que reconeix TNFR1. La acumulació preferent de les nanopartícules en els pulmons inflamats queda demostrada a través dels assajos de biodistribució, així com la millora de l'efecte terapèutic del QM-378 en la reducció de la inflamació pulmonar, atribuït als avantatges de l'encapsulació en un nanosistema dirigit. Amb tot això es conclou que el QM-378 és un bon candidat per al tractament de la inflamació pulmonar aguda, i que la seua encapsulació en les nanopartícules ofereix una administració pulmonar directa i controlada aconseguint-se així una millora en el perfil terapèutic del fàrmac. La conclusió principal és que el desenvolupament de nanomaterials mesoporosos de sílice per a l'alliberament controlat de fàrmacs es presenta com una estratègia amb molt potencial en el camp de les[EN] This PhD thesis entitled "Gated nanomaterials as delivery platform to manage inflammatory disorders" is focused on the design, synthesis and evaluation of hybrid organic-inorganic nanomaterials using mesoporous silica nanoparticles, for controlled drug release in biomedical applications, specifically in the field of inflammation. In a fist step, we present a new nanodevice for the controlled delivery of VX-765, a caspase 1 inhibitor, which takes advantage of the intrinsic passive targeting effect of the nanoparticles to inflamed tissues. In particular, mesoporous silica nanoparticles loaded with the drug VX-765 and functionalized with ¿-poly-L-lysine (acting as gatekeeper) have been prepared. The anti-inflammatory activity of the prepared nanodevice has been evaluated both in vitro, in the cellular model of monocytes THP-1, and in vivo using air pouch mouse as model of inflammation. The results showed the preferential accumulation of the nanoparticles in the inflamed tissue, as well as an increase in the therapeutic effect of the entrapped drug. As conclusion, gated mesoporous silica nanoparticles constitute an important tool for the development of new therapeutic strategies in the inflammatory field. Based on the previous results presented, a drug delivery system for the treatment of acute lung injury is described in chapter four as alternative therapy that allow the direct delivery of drugs into the lungs. Mesoporous silica nanoparticles has been prepared, loaded with the glucocorticoid dexamethasone and capped with a peptide gatekeeper that recognizes the receptor of tumour necrosis factor 1 (TNFR1), which also targets the pro-inflammatory macrophages. The therapeutic activity of the designed nanoparticles has been studied in vitro in pro-inflammatory macrophages, and in vivo in an acute lung injury mouse model. The preferential accumulation of the nanoparticles in the inflamed lungs has been corroborated through biodistribution assays, as well as the ability to enhance the dexamethasone therapeutic effect by the reduction of lung injury and minimizing the undesired side effects associated of the free drug administration. As conclusion, gated mesoporous silica nanoparticles can be used for the treatment of acute lung injury and represent a potential tool to overcome the limitations of current treatments. Finally, a drug delivery system for acute lung injury is also presented. In this case, we use the novel inflammasome inhibitor QM-378 as pharmacological alternative therapy to the treatment of uncontrolled inflammation in acute lung injury. With the aim of enhancing the direct drug delivery in lungs, QM-378 is encapsulated in mesoporous silica nanoparticles capped with a peptidic gate that recognizes TNFR1. The preferential accumulation of nanoparticles to inflamed lungs has been also corroborated through biodistribution assays. An enhancement of the therapeutic effect of QM-378 by reducing lung inflammation is demonstrated, due to the advantages of drug encapsulation in a targeted-lung nanosystem. As conclusion, the QM-378 is a suitable candidate for acute lung injury treatment, and its encapsulation in mesoporous silica nanoparticles offers a direct lung drug delivery thus improving the therapeutic profile of the drug. The principal conclusion from this PhD thesis is that the preparation of mesoporous silica nanoaprticles for drug delivery is presented as potential strategy in the field of inflammatory disorders.García Fernández, A. (2019). Gated nanomaterials as delivery platform for the treatment of inflammatory disorders [Tesis doctoral no publicada]. Universitat Politècnica de València. https://doi.org/10.4995/Thesis/10251/132694TESISCompendi
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