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Sun Y, Yang W, Shi H, Tanveer SK, Hai J. Past, present, and future perspectives of biodegradable films for soil: A 30-year systematic review. Front Bioeng Biotechnol 2022; 10:1006388. [PMID: 36324902 PMCID: PMC9621393 DOI: 10.3389/fbioe.2022.1006388] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/29/2022] [Accepted: 10/03/2022] [Indexed: 11/20/2022] Open
Abstract
Based on the Web of Science Core Collection (WOSCC) database, the academic works published in the past 30 years on biodegradable films for soil were analyzed. In order to ensure the rigor of this experiment, this paper is based on the mathematical double matrix model VOS Viewer software and CiteSpace software. This work shows that publications of biodegradable films for soil are increasing year by year; polymer science is the hottest subject in the field of biodegradable films for soil; China and the United States are the countries with the most significant number of publications in this field, has an important position; Washington State University is the most published institution. This study further identifies and reveals the essential characteristics, research strength, knowledge structure, main research fields, and research hotspots in the late stage of the field of biodegradable films for soil and introduces the Activity Index (AI) and the Attractive Index (AAI), thereby assessing trends and performance in different countries. The paper also further illustrates the importance of biodegradable films by presenting field trials using biodegradable films on different plants. The research in the field of biodegradable films for soil is divided into four categories: “The research field of degradation,” “The effect of biodegradable film on soil,” “Performance and mechanism of the biodegradable film,” and “Effects of biodegradable film on crop growth and development.”. The study can be seen as a microcosm of the development of biodegradable films for soils, which will help researchers quickly identify their general patterns. Readers can better understand the changes and development trends in this field in the past 30 years and provide references for future research.
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Affiliation(s)
- Yitao Sun
- College of Agronomy, Northwest A&F University, Yangling, China
| | - Wenlong Yang
- College of Agronomy, Northwest A&F University, Yangling, China
| | - Hongxia Shi
- College of Agronomy, Northwest A&F University, Yangling, China
| | | | - Jiangbo Hai
- College of Agronomy, Northwest A&F University, Yangling, China
- *Correspondence: Jiangbo Hai,
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2
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El-Malek FA, Steinbüchel A. Post-Synthetic Enzymatic and Chemical Modifications for Novel Sustainable Polyesters. Front Bioeng Biotechnol 2022; 9:817023. [PMID: 35071219 PMCID: PMC8766639 DOI: 10.3389/fbioe.2021.817023] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/17/2021] [Accepted: 12/20/2021] [Indexed: 11/13/2022] Open
Abstract
Because of their biodegradability, compostability, compatibility and flexible structures, biodegradable polymers such as polyhydroxyalkanoates (PHA) are an important class of biopolymers with various industrial and biological uses. PHAs are thermoplastic polyesters with a limited processability due to their low heat resistance. Furthermore, due to their high crystallinity, some PHAs are stiff and brittle. These features result sometimes in very poor mechanical characteristics with low extension at break values which limit the application range of some natural PHAs. Several in vivo approaches for PHA copolymer modifications range from polymer production to enhance PHA-based material performance after synthesis. The methods for enzymatic and chemical polymer modifications are aiming at modifying the structures of the polyesters and thereby their characteristics while retaining the biodegradability. This survey illustrates the efficient use of enzymes and chemicals in post-synthetic PHA modifications, offering insights on these green techniques for modifying and improving polymer performance. Important studies in this sector will be reviewed, as well as chances and obstacles for their stability and hyper-production.
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Affiliation(s)
- Fady Abd El-Malek
- International Center for Research on Innovative Biobased Materials (ICRI-BioM)-International Research Agenda, Lodz University of Technology, Lodz, Poland
| | - Alexander Steinbüchel
- International Center for Research on Innovative Biobased Materials (ICRI-BioM)-International Research Agenda, Lodz University of Technology, Lodz, Poland
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3
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Zhang F, Ma C, Huang X, Liu J, Lu L, Peng K, Li S. Research progress in solid carbon source-based denitrification technologies for different target water bodies. THE SCIENCE OF THE TOTAL ENVIRONMENT 2021; 782:146669. [PMID: 33839669 DOI: 10.1016/j.scitotenv.2021.146669] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/07/2020] [Revised: 02/25/2021] [Accepted: 03/17/2021] [Indexed: 06/12/2023]
Abstract
Nitrogen pollution in water bodies is a serious environmental issue which is commonly treated by various methods such as heterotrophic denitrification. In particular, solid carbon source (SCS)-based denitrification has attracted widespread research interest due to its gradual carbon release, ease of management, and long-term operation. This paper reviews the types and properties of SCSs for different target water bodies. While both natural (wheat straw, wood chips, and fruit shells) and synthetic (polybutylene succinate, polycaprolactone, polylactic acid, and polyhydroxyalkanoates) SCSs are commonly used, it is observed that the denitrification performance of the synthetic sources is generally superior. SCSs have been used in the treatment of wastewater (including aquaculture wastewater), agricultural subsurface drainage, surface water, and groundwater; however, the key research aspects related to SCSs differ markedly based on the target waterbody. These key research aspects include nitrogen pollutant removal rate and byproduct accumulation (ordinary wastewater); water quality parameters and aquatic product yield (recirculating aquaculture systems); temperature and hydraulic retention time (agricultural subsurface drainage); the influence of dissolved oxygen (surface waters); and nitrate-nitrogen load, HRT, and carbon source dosage on denitrification rate (groundwater). It is concluded that SCS-based denitrification is a promising technique for the effective elimination of nitrate-nitrogen pollution in water bodies.
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Affiliation(s)
- Feifan Zhang
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Chengjin Ma
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Xiangfeng Huang
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Jia Liu
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Lijun Lu
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Kaiming Peng
- College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Tongji University, Shanghai 200092, People's Republic of China
| | - Shiyang Li
- Key Laboratory of Organic Compound Pollution Control Engineering (MOE), School of Environmental and chemical engineering, Shanghai University, Shanghai 200092, People's Republic of China.
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4
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Rizzi M, Rodrigues FL, Medeiros L, Ortega I, Rodrigues L, Monteiro DS, Kessler F, Proietti MC. Ingestion of plastic marine litter by sea turtles in southern Brazil: abundance, characteristics and potential selectivity. MARINE POLLUTION BULLETIN 2019; 140:536-548. [PMID: 30803675 DOI: 10.1016/j.marpolbul.2019.01.054] [Citation(s) in RCA: 48] [Impact Index Per Article: 9.6] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/09/2018] [Revised: 01/24/2019] [Accepted: 01/24/2019] [Indexed: 05/25/2023]
Abstract
The ingestion of plastic marine litter (PML) by sea turtles is widespread and concerning, and the five species that occur in the southwestern Atlantic - green, loggerhead, olive ridley, leatherback and hawksbill - are vulnerable to this pollution. Here, we quantified and characterized PML ingested by these species in southern Brazil, and observed PML ingestion in 49 of 86 sampled individuals (~57.0%). Green turtles presented the highest rates and variety of ingested plastics, and such ingestion has been high at least since 1997. Omnivorous turtles presented higher PML ingestion than carnivorous ones. Loggerheads displayed a negative correlation between body size and number of ingested items. Green turtles ingested mostly flexible transparent and flexible/hard white plastics; loggerheads ate mainly flexible, hard and foam fragments, in white and black/brown colors. These results help us better understand PML ingestion by sea turtles, highlighting the seriousness of this threat and providing information for prevention and mitigation strategies.
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Affiliation(s)
- Milena Rizzi
- Programa de Pós-Graduação em Oceanografia Biológica - PPGOB, Instituto de Oceanografia, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil.
| | - Fábio L Rodrigues
- Centro de Estudos Costeiros, Limnológicos e Marinhos (CECLIMAR), Universidade Federal do Rio Grande do Sul, Campus Litoral Norte, 95625-000 Imbé, RS, Brazil
| | - Luciana Medeiros
- Programa de Pós-Graduação em Oceanografia Biológica - PPGOB, Instituto de Oceanografia, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil
| | - Ileana Ortega
- Programa de Pós-Graduação em Oceanografia Biológica - PPGOB, Instituto de Oceanografia, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil
| | - Lucas Rodrigues
- Programa de Pós-Graduação em Oceanografia Biológica - PPGOB, Instituto de Oceanografia, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil
| | - Danielle S Monteiro
- Núcleo de Educação e Monitoramento Ambiental - NEMA, Rua Maria Araújo, 450 - Cassino, CEP 96207-480 Rio Grande, RS, Brazil
| | - Felipe Kessler
- Escola de Química e Alimentos, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil
| | - Maíra C Proietti
- Programa de Pós-Graduação em Oceanografia Biológica - PPGOB, Instituto de Oceanografia, Universidade Federal do Rio Grande - FURG, Av. Itália, km 8, CEP 96201-900 Rio Grande, RS, Brazil
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Lando GA, Marconatto L, Kessler F, Lopes W, Schrank A, Vainstein MH, Weibel DE. UV-Surface Treatment of Fungal Resistant Polyether Polyurethane Film-Induced Growth of Entomopathogenic Fungi. Int J Mol Sci 2017; 18:E1536. [PMID: 28718785 PMCID: PMC5536024 DOI: 10.3390/ijms18071536] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/29/2017] [Revised: 07/08/2017] [Accepted: 07/11/2017] [Indexed: 11/18/2022] Open
Abstract
Synthetic polymers are the cause of some major environmental impacts due to their low degradation rates. Polyurethanes (PU) are widely used synthetic polymers, and their growing use in industry has produced an increase in plastic waste. A commercial polyether-based thermoplastic PU with hydrolytic stability and fungus resistance was only attacked by an entomopathogenic fungus, Metarhiziumanisopliae, when the films were pre-treated with Ultraviolet (UV) irradiation in the presence of reactive atmospheres. Water contact angle, Fourier transform infrared spectroscopy in attenuated total reflection mode (FTIR-ATR), scanning electron microscopy (SEM), and profilometer measurements were mainly used for analysis. Permanent hydrophilic PU films were produced by the UV-assisted treatments. Pristine polyether PU films incubated for 10, 30, and 60 days did not show any indication of fungal growth. On the contrary, when using oxygen in the UV pre-treatment a layer of fungi spores covered the sample, indicating a great adherence of the microorganisms to the polymer. However, if acrylic acid vapors were used during the UV pre-treatment, a visible attack by the entomopathogenic fungi was observed. SEM and FTIR-ATR data showed clear evidence of fungal development: growth and ramifications of hyphae on the polymer surface with the increase in UV pre-treatment time and fungus incubation time. The results indicated that the simple UV surface activation process has proven to be a promising alternative for polyether PU waste management.
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Affiliation(s)
- Gabriela Albara Lando
- Laboratory of Photochemistry and Surfaces, Institute of Chemistry, Universidade Federal de Rio Grande do Sul (UFRGS), Av. Bento Gonçalves, 9500, CEP 91501-970 Porto Alegre, RS, Brazil.
| | - Letícia Marconatto
- Laboratory of Geobiology, Institute of Petroleum and Natural Resources, Pontifical Catholic University Rio Grande do Sul (IPR-PUCRS), Av. Ipiranga, 6681, CEP 90619-900 Porto Alegre, RS, Brazil.
| | - Felipe Kessler
- Laboratory of Applied and Technological Physical Chemistry, Escola de Química e Alimentos, Universidade Federal do Rio Grande (FURG), Av. Itália, Km 08, CEP 96201-900 Rio Grande, RS, Brazil.
| | - William Lopes
- Laboratório de Fungos de Importância Médica e Biotecnológica, Departamento de Biologia Molecular e Biotecnologia, Centro de Biotecnologia, UFRGS, Av. Bento Gonçalves, 9500, CEP 91501-970 Porto Alegre, RS, Brazil.
| | - Augusto Schrank
- Laboratório de Fungos de Importância Médica e Biotecnológica, Departamento de Biologia Molecular e Biotecnologia, Centro de Biotecnologia, UFRGS, Av. Bento Gonçalves, 9500, CEP 91501-970 Porto Alegre, RS, Brazil.
| | - Marilene Henning Vainstein
- Laboratório de Fungos de Importância Médica e Biotecnológica, Departamento de Biologia Molecular e Biotecnologia, Centro de Biotecnologia, UFRGS, Av. Bento Gonçalves, 9500, CEP 91501-970 Porto Alegre, RS, Brazil.
| | - Daniel Eduardo Weibel
- Laboratory of Photochemistry and Surfaces, Institute of Chemistry, Universidade Federal de Rio Grande do Sul (UFRGS), Av. Bento Gonçalves, 9500, CEP 91501-970 Porto Alegre, RS, Brazil.
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Volova TG, Tarasevich AA, Golubev AI, Boyandin AN, Shumilova AA, Nikolaeva ED, Shishatskaya EI. Laser processing of polymer constructs from poly(3-hydroxybutyrate). JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION 2015; 26:1210-28. [PMID: 26278920 DOI: 10.1080/09205063.2015.1082810] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 10/23/2022]
Abstract
CO2 laser radiation was used to process poly(3-hydroxybutyrate) constructs - films and 3D pressed plates. Laser processing increased the biocompatibility of unperforated films treated with moderate uniform radiation, as estimated by the number and degree of adhesion of NIH 3T3 mouse fibroblast cells. The biocompatibility of perforated films modified in the pulsed mode did not change significantly. At the same time, pulsed laser processing of the 3D plates produced perforated scaffolds with improved mechanical properties and high biocompatibility with bone marrow-derived multipotent, mesenchymal stem cells, which show great promise for bone regeneration.
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Affiliation(s)
- T G Volova
- a Institute of Biophysics of Siberian Branch of Russian Academy of Sciences , Akademgorodok, Krasnoyarsk 660036 , Russia.,b School of Fundamental Biology and Biotechnology, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
| | - A A Tarasevich
- c School of Engineering Physics and Radio Electronics, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
| | - A I Golubev
- d Special Design and Technological Bureau 'Nauka' Krasnoyarsk Scientific Centre of Siberian Branch Russian Academy of Sciences , 53 Mir Avenue, Krasnoyarsk 660049 , Russia
| | - A N Boyandin
- a Institute of Biophysics of Siberian Branch of Russian Academy of Sciences , Akademgorodok, Krasnoyarsk 660036 , Russia.,b School of Fundamental Biology and Biotechnology, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
| | - A A Shumilova
- a Institute of Biophysics of Siberian Branch of Russian Academy of Sciences , Akademgorodok, Krasnoyarsk 660036 , Russia.,b School of Fundamental Biology and Biotechnology, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
| | - E D Nikolaeva
- a Institute of Biophysics of Siberian Branch of Russian Academy of Sciences , Akademgorodok, Krasnoyarsk 660036 , Russia.,b School of Fundamental Biology and Biotechnology, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
| | - E I Shishatskaya
- a Institute of Biophysics of Siberian Branch of Russian Academy of Sciences , Akademgorodok, Krasnoyarsk 660036 , Russia.,b School of Fundamental Biology and Biotechnology, Siberian Federal University , 79 Svobodnyi Avenue, Krasnoyarsk 660041 , Russia
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