Kinetic modeling, recovery, and molecular characterization of poly-beta-hydroxybutyrate polymer in Acinetobacter baumannii isolate P39

Elsayed, Noha S; Aboshanab K. M.; Yassien, Mahmoud A; Hassouna, Nadia A;

Abstract


To control the poly-β-hydroxybutyrate (PHB) biopolymer production by Acinetobacter baumannii isolate P39 kinetic modeling of the fermentation process, polymer downstream processing, enzymological analysis, and molecular characterization of PHA synthase, key biosynthetic enzyme, should be addressed. A. baumannii isolate P39 produced 0.15 g/L PHB after 24 h of incubation with a polymer content of 28% per dry weight. Logistic and Leudeking-Piret models were used for describing cell growth and PHB production, respectively. They showed good agreement with the experimental data describing both cell growth and PHB production (average regression coefficient r2:0.999). The growth-associated production of PHB biopolymer as an electron acceptor was confirmed using Leudeking-Piret model and victim substrate experiment. The best method of recovery of PHB biopolymer was chemical digestion using sodium hypochlorite, since it produced the largest amount of polymer and highest molecular weight (16,000 g/mole) in comparison to other recovery methods. DTNB assay showed high activity of PHA synthase enzyme, 600 U activity, and 153.8 U/mg specific activity. Molecular analysis of PHA synthase enzyme confirmed class III identity. Taken together, micelle model was proposed for polyhydroxybutyrate formation in A. baumannii isolate P39.


Other data

Title Kinetic modeling, recovery, and molecular characterization of poly-beta-hydroxybutyrate polymer in Acinetobacter baumannii isolate P39
Authors Elsayed, Noha S ; Aboshanab K. M. ; Yassien, Mahmoud A ; Hassouna, Nadia A 
Issue Date Dec-2018
Publisher SPRINGER
Journal Bioprocess and biosystems engineering 
DOI 1779-1791
1615-7605
12
1791
https://api.elsevier.com/content/abstract/scopus_id/85052952388
41
10.1007/s00449-018-2000-6
PubMed ID 30194493
Scopus ID 2-s2.0-85052952388
Web of science ID WOS:000450077300005

Attached Files

File Description SizeFormat Existing users please Login
Elsayed2018_Article_KineticModelingRecoveryAndMole.pdf1.82 MBAdobe PDF    Request a copy
Recommend this item

Similar Items from Core Recommender Database

Google ScholarTM

Check

Citations 6 in scopus
views 37 in Shams Scholar
downloads 8 in Shams Scholar


Items in Ain Shams Scholar are protected by copyright, with all rights reserved, unless otherwise indicated.