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1.
Small ; 19(19): e2207057, 2023 05.
Artigo em Inglês | MEDLINE | ID: mdl-36775954

RESUMO

Oxidative damage and infection can prevent or delay tissue repair. Moreover, infection reinforces reactive oxygen species (ROS) formation, which makes the wound's condition even worse. Therefore, the need for antioxidant and antibacterial agents is felt for tissue regeneration. There are emerging up-and-coming biomaterials that recapitulate both properties into a package, offering an effective solution to turn the wound back into a healing state. In this article, the principles of antioxidant and antibacterial activity are summarized. The review starts with biological aspects, getting the readers to familiarize themselves with tissue barriers against infection. This is followed by the chemistry and mechanism of action of antioxidant and antibacterial materials (dual function). Eventually, the outlook and challenges are underlined to provide where the dual-function biomaterials are and where they are going in the future. It is expected that the present article inspires the designing of dual-function biomaterials to more advanced levels by providing the fundamentals and comparative points of view and paving the clinical way for these materials.


Assuntos
Antibacterianos , Antioxidantes , Antibacterianos/química , Antioxidantes/farmacologia , Antioxidantes/química , Cicatrização , Estresse Oxidativo , Materiais Biocompatíveis/farmacologia , Materiais Biocompatíveis/química
2.
Int J Biol Macromol ; 220: 920-933, 2022 Nov 01.
Artigo em Inglês | MEDLINE | ID: mdl-35987365

RESUMO

Non-healing wounds have long been the subject of scientific and clinical investigations. Despite breakthroughs in understanding the biology of delayed wound healing, only limited advances have been made in properly treating wounds. Recently, research into nucleic acids (NAs) such as small-interfering RNA (siRNA), microRNA (miRNA), plasmid DNA (pDNA), aptamers, and antisense oligonucleotides (ASOs) has resulted in the development of a latest therapeutic strategy for wound healing. In this regard, dendrimers, scaffolds, lipid nanoparticles, polymeric nanoparticles, hydrogels, and metal nanoparticles have all been explored as NA delivery techniques. However, the translational possibility of NA remains a substantial barrier. As a result, different NAs must be identified, and their distribution method must be optimized. This review explores the role of NA-based therapeutics in various stages of wound healing and provides an update on the most recent findings in the development of NA-based nanomedicine and biomaterials, which may offer the potential for the invention of novel therapies for this long-term condition. Further, the challenges and potential for miRNA-based techniques to be translated into clinical applications are also highlighted.


Assuntos
Dendrímeros , MicroRNAs , Ácidos Nucleicos , Materiais Biocompatíveis , DNA , Dendrímeros/uso terapêutico , Hidrogéis , Lipossomos , MicroRNAs/genética , MicroRNAs/uso terapêutico , Nanopartículas , Ácidos Nucleicos/uso terapêutico , Oligonucleotídeos Antissenso/genética , Oligonucleotídeos Antissenso/uso terapêutico , RNA Interferente Pequeno/genética , RNA Interferente Pequeno/uso terapêutico , Cicatrização
3.
Adv Healthc Mater ; 11(20): e2201583, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-35916145

RESUMO

Conventional drug delivery systems are challenged by concerns related to systemic toxicity, repetitive doses, drug concentrations fluctuation, and adverse effects. Various drug delivery systems are developed to overcome these limitations. Nanomaterials are employed in a variety of biomedical applications such as therapeutics delivery, cancer therapy, and tissue engineering. Physiochemical nanoparticle assembly techniques involve the application of solvents and potentially harmful chemicals, commonly at high temperatures. Genetically engineered organisms have the potential to be used as promising candidates for greener, efficient, and more adaptable platforms for the synthesis and assembly of nanomaterials. Genetically engineered carriers are precisely designed and constructed in shape and size, enabling precise control over drug attachment sites. The high accuracy of these novel advanced materials, biocompatibility, and stimuli-responsiveness, elucidate their emerging application in controlled drug delivery. The current article represents the research progress in developing various genetically engineered carriers. Organic-based nanoparticles including cellulose, collagen, silk-like polymers, elastin-like protein, silk-elastin-like protein, and inorganic-based nanoparticles are discussed in detail. Afterward, viral-based carriers are classified, and their potential for targeted therapeutics delivery is highlighted. Finally, the challenges and prospects of these delivery systems are concluded.


Assuntos
Portadores de Fármacos , Sistemas de Liberação de Fármacos por Nanopartículas , Celulose , Portadores de Fármacos/química , Elastina , Sistemas de Liberação de Fármacos por Nanopartículas/química , Polímeros , Seda
4.
Biomater Adv ; 140: 213077, 2022 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-35952549

RESUMO

Overall, aptamers are special classes of nucleic acid-based macromolecules that are beginning to investigate because of their capability of avidity binding to a specific target for clinical use. Taking advantage of target-specific medicine led to more effective therapeutic and limitation of side effects of drugs. Herein, we discuss several aptamers and their binding capability and capacity for selecting tumor biomarkers and usage of them as targeting ligands for the functionalization of nanomaterials. We review recent applications based on aptamers and several nanoparticles to rise efficacy and develop carrier systems such as graphene oxide, folic acid, gold, mesopores silica, and various polymers and copolymer, polyethylene glycol, cyclodextrin, chitosan. The nanocarriers have been characterized by particle size, zeta potential, aptamer conjugation, and drug encapsulation efficiency. Hydrodynamic diameter and Zeta potential can used in order to monitor aptamers' crosslinking, in-vitro drug release, intracellular delivery of nanocarriers, and cellular cytotoxicity assay. Also, they are studied for cellular uptake and internalization to types of cancer cell lines such as colorectal, breast, prostate, leukemia and etc. The results are investigated in in-vivo cytotoxicity assay and cell viability assay. Targeted cancer therapy seems a good and promising strategy to overcome the systemic toxicity of chemotherapy.


Assuntos
Aptâmeros de Nucleotídeos , Nanopartículas , Neoplasias , Sistemas de Liberação de Medicamentos/métodos , Liberação Controlada de Fármacos , Excipientes , Humanos , Masculino , Neoplasias/tratamento farmacológico , Polietilenoglicóis/química , Polímeros
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