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1.
J Environ Manage ; 341: 118033, 2023 Sep 01.
Artigo em Inglês | MEDLINE | ID: mdl-37156023

RESUMO

Overusing non-degradable plastics causes a series of environmental issues, inferring a switch to biodegradable plastics. Polyhydroxyalkanoates (PHAs) are promising biodegradable plastics that can be produced by many microbes using various substrates from waste feedstock. However, the cost of PHAs production is higher compared to fossil-based plastics, impeding further industrial production and applications. To provide a guideline for reducing costs, the potential cheap waste feedstock for PHAs production have been summarized in this work. Besides, to increase the competitiveness of PHAs in the mainstream plastics economy, the influencing parameters of PHAs production have been discussed. The PHAs degradation has been reviewed related to the type of bacteria, their metabolic pathways/enzymes, and environmental conditions. Finally, the applications of PHAs in different fields have been presented and discussed to induce comprehension on the practical potentials of PHAs.


Assuntos
Plásticos Biodegradáveis , Poli-Hidroxialcanoatos , Poli-Hidroxialcanoatos/metabolismo , Plásticos Biodegradáveis/metabolismo , Plásticos , Bactérias/metabolismo , Indústrias
2.
Microbiology (Reading) ; 167(1)2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-33493102

RESUMO

Our knowledge and understanding of micro-organisms have led to the development of safe food, clean water, novel foods, antibiotics, vaccines, healthier plants, animals and soils, and more, which feeds into the United Nations Sustainable Development Goals (UN SDGs). The circular economy can contribute to the UN SDGs and micro-organisms are central to circular nutrient cycles. The circular economy as described by the Ellen MacArthur foundation has two halves, i.e. technical and biological. On the technical side, non-biological resources enter manufacturing paths where resource efficiency, renewable energy and design extend the life of materials so that they are more easily reused and recycled. Biological resources exist on the other half of the circular economy. These are used to manufacture products such as bioplastics and paper. The conservation of nature's stocks, resource efficiency and recycling of materials are key facets of the biological half of the circular economy. Microbes play a critical role in both the biological and technical parts of the circular economy. Microbes are key to a functioning circular economy, where natural resources, including biological wastes, are converted by microbes into products of value and use for society, e.g. biogas, bioethanol, bioplastics, building block chemicals and compost for healthy soils. In more recent times, microbes have also been seen as part of the tool kit in the technical side of the circular economy, where microbial enzymes can degrade plastics and microbes can convert those monomers to value-added products.


Assuntos
Microbiologia/economia , Desenvolvimento Sustentável/economia , Bactérias/metabolismo , Plásticos Biodegradáveis/metabolismo , Biocombustíveis/análise , Biotransformação , Reciclagem/economia , Energia Renovável/economia , Nações Unidas
3.
Life Sci ; 267: 118971, 2021 Feb 15.
Artigo em Inglês | MEDLINE | ID: mdl-33385406

RESUMO

AIMS: The study aimed to develop, characterize, and evaluate poly (ɛ-caprolactone) (PCL) based nanoparticles for the sustained release behaviour of cytarabine and to investigate the in vitro anti-cancer influence on KG-1 leukemic cell line. MATERIALS AND METHODS: Nanoprecipitation method was used for the preparation of cytarabine loaded PCL nanoparticles. The developed nanoparticles were characterized for physicochemical properties and the anti-leukemic effect on the KG-1 cell line was evaluated. KEY FINDINGS: A total number of five formulations were prepared with size range from 120.5 ± 1.18 to 341.5 ± 3.02, entrapment efficiency (41.31 ± 0.49 to 62.28 ± 0.39%), spherical morphology, negative zeta potentials, considerable particle size distribution, compatibility between the drug and excipients and thermal stability. X-ray diffraction analysis confirmed the successful incorporation of cytarabine in PCL polymer. In vitro drug release in phosphate buffer saline (pH 7.4) showed initial burst release followed by sustained release up to 48 h. The sustained release behaviour efficiently increased the toxicity of cytarabine-loaded PCL nanoparticles to KG-1 (leukemic) and MCF-7 (breast cancer) cell lines in time dependent manner with lower IC50 values than that of drug solution. The flow cytometry study revealed the better apoptotic activity of cytarabine loaded PCL nanoparticle against treated KG-1 cell line. The western blot analysis confirmed the upregulation of cleaved caspase-3 and downregulation of Bcl-2 protein. SIGNIFICANCE: The experimental results suggest that cytarabine loaded PCL nanoparticles is an efficient carrier to prevent the dose associated toxicity while providing sustained release pattern to ensure maximum anti-cancer influence.


Assuntos
Plásticos Biodegradáveis/química , Citarabina/farmacologia , Nanopartículas/química , Plásticos Biodegradáveis/metabolismo , Plásticos Biodegradáveis/farmacologia , Linhagem Celular Tumoral , Preparações de Ação Retardada/química , Portadores de Fármacos/química , Composição de Medicamentos/métodos , Liberação Controlada de Fármacos/fisiologia , Humanos , Células MCF-7 , Nanopartículas/uso terapêutico , Tamanho da Partícula , Poliésteres/química , Polietilenoglicóis/química , Polímeros/química
4.
Sci Rep ; 10(1): 8815, 2020 06 01.
Artigo em Inglês | MEDLINE | ID: mdl-32483188

RESUMO

Biobased degradable plastics have received significant attention owing to their potential application as a green alternative to synthetic plastics. A dye-based procedure was used to screen poly-3-hydroxybutyrate (PHB)-producing marine bacteria isolated from the Red Sea, Saudi Arabia. Among the 56 bacterial isolates, Pseudodonghicola xiamenensis, identified using 16S rRNA gene analyses, accumulated the highest amount of PHB. The highest PHB production by P. xiamenensis was achieved after 96 h of incubation at pH 7.5 and 35 °C in the presence of 4% NaCl, and peptone was the preferred nitrogen source. The use of date syrup at 4% (w/v) resulted in a PHB concentration of 15.54 g/L and a PHB yield of 38.85% of the date syrup, with a productivity rate of 0.162 g/L/h, which could substantially improve the production cost. Structural assessment of the bioplastic by Fourier transform infrared spectroscopy and nuclear magnetic resonance spectroscopy revealed the presence of methyl, hydroxyl, methine, methylene, and ester carbonyl groups in the extracted polymer. The derivative products of butanoic acid estimated by gas chromatography-mass spectrometry [butanoic acid, 2-amino-4-(methylseleno), hexanoic acid, 4-methyl-, methyl ester, and hexanedioic acid, monomethyl ester] confirmed the structure of PHB. The present results are the first report on the production of a bioplastic by P. xiamenensis, suggesting that Red Sea habitats are a potential biological reservoir for novel bioplastic-producing bacteria.


Assuntos
Plásticos Biodegradáveis/metabolismo , Biopolímeros/biossíntese , Hidroxibutiratos/metabolismo , Microbiologia Industrial/métodos , Resíduos Industriais , Phoeniceae , Poliésteres/metabolismo , Rhodobacteraceae/metabolismo , Técnicas Bacteriológicas , Plásticos Biodegradáveis/química , Biopolímeros/química , Meios de Cultura , Cromatografia Gasosa-Espectrometria de Massas , Sedimentos Geológicos/microbiologia , Hidroxibutiratos/química , Oceano Índico , Ressonância Magnética Nuclear Biomolecular , Filogenia , Preparações de Plantas , Poliésteres/química , Rhodobacteraceae/classificação , Rhodobacteraceae/genética , Rhodobacteraceae/isolamento & purificação , Ribotipagem , Água do Mar/microbiologia , Cloreto de Sódio/farmacologia , Espectroscopia de Infravermelho com Transformada de Fourier , Microbiologia da Água
5.
Int J Biol Macromol ; 157: 319-328, 2020 Aug 15.
Artigo em Inglês | MEDLINE | ID: mdl-32315677

RESUMO

Plastic accumulation has destructive environmental impacts, so the world needs eco-friendly plastic alternatives. Within this context, polyhydroxyalkanoates (PHAs) appear to be real alternatives to the chemical plastics because they are biocompatible and biodegradable. Despite its similar properties to common plastics, PHAs use is still hampered by higher production costs. PHAs are produced by high density fed-batch cultivation, activated sludge, microbial consortia and continuous substrate supply, and a major cost associated with their production is the carbon source used for bacterial fermentation. Therefore, novel carbon sources have been studied for PHA production including, macro algae, peanut oil, crude glycerol and whey. PHAs were applied in myriad fields such as wood production, food packaging, 3D painting, cancer detection, treating ulcers as well as several agricultural and therapeutic applications. In this review, current knowledge of methods and novel carbon sources enhance the sustainability and reliability of PHAs in the prospective future.


Assuntos
Materiais Biocompatíveis/metabolismo , Plásticos Biodegradáveis/metabolismo , Carbono , Fermentação , Poli-Hidroxialcanoatos/biossíntese , Materiais Biocompatíveis/economia , Plásticos Biodegradáveis/economia , Microbiologia Industrial , Poli-Hidroxialcanoatos/economia
6.
Microbiology (Reading) ; 165(2): 129-137, 2019 02.
Artigo em Inglês | MEDLINE | ID: mdl-30497540

RESUMO

The strength, flexibility and light weight of traditional oil-derived plastics make them ideal materials for a large number of applications, including packaging, medical devices, building, transportation, etc. However, the majority of produced plastics are single-use plastics, which, coupled with a throw-away culture, leads to the accumulation of plastic waste and pollution, as well as the loss of a valuable resource. In this review we discuss the advances and possibilities in the biotransformation and biodegradation of oil-based plastics. We review bio-based and biodegradable polymers and highlight the importance of end-of-life management of biodegradables. Finally, we discuss the role of a circular economy in reducing plastic waste pollution.


Assuntos
Plásticos Biodegradáveis/metabolismo , Poluentes Ambientais/metabolismo , Reciclagem/tendências , Plásticos Biodegradáveis/química , Biodegradação Ambiental , Poluentes Ambientais/química , Polímeros/química , Polímeros/metabolismo , Reciclagem/economia , Eliminação de Resíduos
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