RESEARCH ARTICLE

Synthesis of scl-poly (3-hydroxyalkanoates) by Bacillus cereus found in freshwater, from monosaccharides and disaccharides

  • Tayyaba Naeem ,
  • Naima Khan ,
  • Nazia Jamil
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  • Department of Microbiology and Molecular Genetics, University of the Punjab-Quaid-i-Azam Campus, Lahore-54590, Pakistan

Received date: 13 Oct 2017

Accepted date: 28 Dec 2017

Published date: 26 Mar 2018

Copyright

2018 Higher Education Press and Springer-Verlag GmbH Germany, part of Springer Nature

Abstract

BACKGROUND: Polyhydroxyalkanoates are a good substitute for synthetic plastic because they are highly biocompatible, ecofriendly, and biodegradable. Bacteria in freshwater bodies such as rivers, tube wells, and canals are exposed to alternating high and low concentrations of substrates that induce PHA production.

METHODS: Fresh water samples were collected for isolation of bacterial strains. Screening of PHA in bacterial cells was performed with Sudan and Nile Red staining. Extracted PHA was characterized by FTIR.

RESULTS: In this study, nine bacterial isolates were selected for PHA production on the basis of phenotypic screening. Their ability to accumulate PHAs was determined using different monosaccharides and disaccharides. Two bacterial isolates Bacillus cereus T1 (KY746353) and Bacillus cereus R3 (KY746354) produced PHAs. Optimal growth of the bacterial strain (T1) was observed in the presence of glucose, followed by maximum production of PHAs (63% PHAs) during the logarithmic phase of growth. B. cereus R3 (KY746354) accumulated 60% PHAs by dry cell weight.

CONCLUSION: PHA accumulation was relatively less with fructose, but both strains showed increased production (up to 50%) with sucrose. The polymer produced was characterized by Fourier-transform infrared spectroscopy (FTIR), which showed that the compound contains short-chain PHAs.

Cite this article

Tayyaba Naeem , Naima Khan , Nazia Jamil . Synthesis of scl-poly (3-hydroxyalkanoates) by Bacillus cereus found in freshwater, from monosaccharides and disaccharides[J]. Frontiers in Biology, 2018 , 13(1) : 63 -69 . DOI: 10.1007/s11515-018-1478-2

Compliance with ethics guidelines

Tayyaba Naeem, Naima Khan and Nazia Jamil declare that they have no conflict of interest. This article does not contain any studies with human and animals subject performed by any of the authors.
1
Agus J, Kahar P, Abe H, Doi Y, Tsuge T (2006). Molecular weight characterization of poly [(R)-3-hydroxybutyrate] synthesized by genetically engineered strains of Escherichia coli. Polym Degrad Stabil, 91(5): 1138–1146

DOI

2
Ali I, Jamil N (2014). Enhanced biosynthesis of poly(3-hydroxybutyrate) from potato starch by Bacillus cereus strain 64-INS in a laboratory-scale fermenter. Prep Biochem Biotechnol, 44(8): 822–833

DOI PMID

3
Borah B, Thakur P S, Nigam J N (2002). The influence of nutritional and environmental conditions on the accumulation of poly-β-hydroxybutyrate in Bacillus mycoides RLJ B-017. J Appl Microbiol, 92(4): 776–783

DOI PMID

4
Brandl H, Gross R A, Lenz R W, Fuller R C (1990). Plastics from bacteria and for bacteria: poly (-hydroxyalkanoates) as natural, biocompatible, and biodegradable polyesters. Adv Biochem Eng Biotechnol, 41:77–93

5
Bugnicourt E, Cinelli P, Lazzeri A, Alvarez V A (2014). Polyhydroxyalkanoate (PHA): Review of synthesis, characteristics, processing and potential applications in packaging. Express Polymer Letters, 8 (11) :791–808

6
Cappuccino J G, Sherman N (2008). Microbiology: a laboratory manual.Pearson/Benjamin Cummings, 9

7
Chaudhry W N, Jamil N, Ali I, Ayaz M H, Hasnain S (2011). Screening for polyhydroxyalkanoate (PHA)-producing bacterial strains and comparison of PHA production from various inexpensive carbon sources. Ann Microbiol, 61(3): 623–629

DOI

8
Collins V G (1963). The distribution and ecology of bacteria in freshwater. Proc Soc Wat Treat Exam, 12: 1–73

9
Jacquel N, Lo C W, Wei Y H, Wu H S, Wang S S (2008). Isolation and purification of bacterial poly (3-hydroxyalkanoates). Biochem Eng J, 39(1): 15–27

DOI

10
Khanna S, Srivastava A K (2005). Recent advances in microbial polyhydroxyalkanoates. Process Biochem, 40(2): 607–619

DOI

11
Kulpreecha S, Boonruangthavorn A, Meksiriporn B, Thongchul N (2009). Inexpensive fed-batch cultivation for high poly(3-hydroxybutyrate) production by a new isolate of Bacillus megaterium. J Biosci Bioeng, 107(3): 240–245

DOI PMID

12
Kumar P, Patel S K, Lee J K, Kalia V C (2013). Extending the limits of Bacillus for novel biotechnological applications. Biotechnol Adv, 31(8): 1543–1561

DOI PMID

13
Kumar P, Singh M, Mehariya S, Patel S K, Lee J K, Kalia V C (2014). Ecobiotechnological approach for exploiting the abilities of Bacillus to produce co-polymer of polyhydroxyalkanoate. Indian J Microbiol, 54(2): 151–157

DOI PMID

14
Kumar T, Singh M, Purohit H J, Kalia V C (2009). Potential of Bacillus sp. to produce polyhydroxybutyrate from biowaste. J Appl Microbiol, 106(6): 2017–2023

DOI PMID

15
López-Cortés A, Lanz-Landázuri A, García-Maldonado J Q (2008). Screening and isolation of PHB-producing bacteria in a polluted marine microbial mat. Microb Ecol, 56(1): 112–120

DOI PMID

16
Lu J, Tappel R C, Nomura C T (2009). Mini-review: biosynthesis of poly (hydroxyalkanoates). Journal of Macromolecular Science®, Part C. Polym Rev (Phila Pa), 49(3): 226–248

DOI

17
Misra A, Thakur M, Srinivas P, Karanth N (2000). Screening of poly-β-hydroxybutyrate-producing microorganisms using Fourier transform infrared spectroscopy. Biotechnol Lett, 22(15): 1217–1219

DOI

18
Nagamani P, Chaitanya K, Mahmood S (2015). Bacterial profile and isolation of PHA producing bacteria from Uppal Lake, India. Int J Curr Microbiol Appl Sci, 4(6): 990–996

19
Ray A, Cot M, Puzo G, Gilleron M, Nigou J (2013). Bacterial cell wall macroamphiphiles: pathogen-/microbe-associated molecular patterns detected by mammalian innate immune system. Biochimie, 95(1): 33–42

DOI PMID

20
Rehman S, Jamil N, Husnain S (2007). Screening of different contaminated environments for polyhydroxyalkanoates-producing bacterial strains. Biologia, 62(6): 650–656

DOI

21
Sial R A, Chaudhary M F, Abbas S T, Latif M I, Khan A G (2006). Quality of effluents from Hattar industrial estate. J Zhejiang Univ Sci B, 7(12): 974–980

DOI PMID

22
Smith R (2005). Biodegradable Polymers for Industrial Applications. CRC Press, Taylor&Francis Group

23
Sutcliffe I C, Brown A K, Dover L G (2010). The Rhodococcal Cell Envelope: Composition, Organisation and Biosynthesis. Springer-Verlag Berlin Heidelberg, pp. 29–71

24
Teeka J, Imai T, Cheng X, Reungsang A, Higuchi T, Yamamoto K, Sekine M (2010). Screening of PHA-producing bacteria using biodiesel-derived waste glycerol as a sole carbon source. J Water Environ Technol, 8(4): 373–381

DOI

25
Valappil S P, Peiris D, Langley G J, Herniman J M, Boccaccini A R, Bucke C, Roy I (2007). Polyhydroxyalkanoate (PHA) biosynthesis from structurally unrelated carbon sources by a newly characterized Bacillus spp. J Biotechnol, 127(3): 475–487

DOI PMID

26
Venkateswar Reddy M, Venkata Mohan S (2012). Effect of substrate load and nutrients concentration on the polyhydroxyalkanoates (PHA) production using mixed consortia through wastewater treatment. Bioresour Technol, 114: 573–582

DOI PMID

27
Verlinden R A, Hill D J, Kenward M A, Williams C D, Radecka I (2007). Bacterial synthesis of biodegradable polyhydroxyalkanoates. J Appl Microbiol, 102(6): 1437–1449

DOI PMID

28
Wu Q, Tian G, Sun S, Noda I, Chen G Q (2001). Study of microbial polyhydroxyalkanoates using two-dimensional Fourier-transform infrared correlation spectroscopy. J Appl Polym Sci, 82(4): 934–940

DOI

29
Zinn M, Witholt B, Egli T (2001). Occurrence, synthesis and medical application of bacterial polyhydroxyalkanoate. Adv Drug Deliv Rev, 53(1): 5–21

DOI PMID

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