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Characterization and Biotechnological Potential of Intracellular Polyhydroxybutyrate by Stigeoclonium sp. B23 Using Cassava Peel as Carbon Source.
Mourão, Murilo Moraes; Xavier, Luciana Pereira; Urbatzka, Ralph; Figueiroa, Lucas Barbosa; Costa, Carlos Emmerson Ferreira da; Dias, Carmen Gilda Barroso Tavares; Schneider, Maria Paula Cruz; Vasconcelos, Vitor; Santos, Agenor Valadares.
Affiliation
  • Mourão MM; Laboratory of Biotechnology of Enzymes and Biotransformations, Institute of Biological Sciences, Federal University of Pará, 66075-110 Belém, Pará, Brazil.
  • Xavier LP; Laboratory of Biotechnology of Enzymes and Biotransformations, Institute of Biological Sciences, Federal University of Pará, 66075-110 Belém, Pará, Brazil.
  • Urbatzka R; Interdisciplinary Center of Marine and Environmental Research-CIIMAR, University of Porto, 4450-208 Porto, Portugal.
  • Figueiroa LB; Laboratory of Oils of the Amazon, Guamá Science and Technology Park, Federal University of Pará, 66075-750 Belém, Pará, Brazil.
  • Costa CEFD; Laboratory of Oils of the Amazon, Guamá Science and Technology Park, Federal University of Pará, 66075-750 Belém, Pará, Brazil.
  • Dias CGBT; Laboratory of Materials Processing, Institute of Technology, Federal University of Pará, 66075-110 Belém, Pará, Brazil.
  • Schneider MPC; Genomics and Systems Biology Center, Federal University of Pará, 66075-110 Belém, Pará, Brazil.
  • Vasconcelos V; Interdisciplinary Center of Marine and Environmental Research-CIIMAR, University of Porto, 4450-208 Porto, Portugal.
  • Santos AV; Department of Biology, Faculty of Sciences, University of Porto, 4069-007 Porto, Portugal.
Polymers (Basel) ; 13(5)2021 Feb 25.
Article in En | MEDLINE | ID: mdl-33668862
ABSTRACT
The possibility of utilizing lignocellulosic agro-industrial waste products such as cassava peel hydrolysate (CPH) as carbon sources for polyhydroxybutyrate (PHB) biosynthesis and characterization by Amazonian microalga Stigeoclonium sp. B23. was investigated. Cassava peel was hydrolyzed to reducing sugars to obtain increased glucose content with 2.56 ± 0.07 mmol/L. Prior to obtaining PHB, Stigeoclonium sp. B23 was grown in BG-11 for characterization and Z8 media for evaluation of PHB nanoparticles' cytotoxicity in zebrafish embryos. As results, microalga produced the highest amount of dry weight of PHB with 12.16 ± 1.28 (%) in modified Z8 medium, and PHB nanoparticles exerted some toxicity on zebrafish embryos at concentrations of 6.25-100 µg/mL, increased mortality (<35%) and lethality indicators as lack of somite formation (<25%), non-detachment of tail, and lack of heartbeat (both <15%). Characterization of PHB by scanning electron microscopy (SEM), X-ray diffraction (XRD), differential scanning calorimeter (DSC), and thermogravimetry (TGA) analysis revealed the polymer obtained from CPH cultivation to be morphologically, thermally, physically, and biologically acceptable and promising for its use as a biomaterial and confirmed the structure of the polymer as PHB. The findings revealed that microalgal PHB from Stigeoclonium sp. B23 was a promising and biologically feasible new option with high commercial value, potential for biomaterial applications, and also suggested the use of cassava peel as an alternative renewable resource of carbon for PHB biosynthesis and the non-use of agro-industrial waste and dumping concerns.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Polymers (Basel) Year: 2021 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Polymers (Basel) Year: 2021 Document type: Article