Medium chain length polyhydroxyalkanoate (mcl-PHA) production from volatile fatty acids derived from the anaerobic digestion of grass

Federico Cerrone1, Santosh K. Choudhari1, Reeta Davis1, Denise Cysneiros1, Vincent O’Flaherty1, Gearóid Duane2, Eoin Casey2, Maciej Guzik3, Shane T. Kenny3, Ramesh Babu4, Kevin E. O’Connor3
1Technology Centre for Biorefining and Bioenergy, Orbsen Building, National University of Ireland, Galway, Ireland
2School of Biochemical and Bioprocessing Engineering, University College Dublin, Belfield Dublin 4, Ireland
3School of Biomolecular and Biomedical Sciences, UCD Conway Institute and Earth Institute, University College Dublin, Belfield Dublin 4, Ireland
4Centre for Research on Adaptive Nanostructure and Nanodevices, Trinity College Dublin, Dublin 2, Ireland

Tóm tắt

Từ khóa


Tài liệu tham khảo

Albuquerque MAM, Martino V, Pollet E, Averous L, Reis MAM (2011) Mixed culture polyhydroxyalkanoate (PHA) production from volatile fatty acid (VFA)-rich streams: effect of substrate composition and feeding regime on PHA productivity, composition and properties. J Biotechnol 151(1):66–76

Alkaya E, Kaptan S, Ozkan L, Uludag-Demirer S, Demirer GN (2009) Recovery of acids from anaerobic acidification broth by liquid–liquid extraction. Chemosphere 77:1137–1142

Arias S, Sandoval A, Arcos M, Caedo LM, Maestro B, Sanz JM, Naharro G, Luengo JM (2008) Poly-3-hydroxyalkanoate synthases from Pseudomonas putida U: substrate specificity and ultrastructural studies. Microb Biotechnol 1(2):170–176

Balat M (2011) Production of bioethanol from lignocellulosic materials via the biochemical pathway: a review. Energy Convers Manage 52:858–875

Bhattacharyya JK, Kumar S, Devotta S (2008) Studies on acidification in two-phase biomethanation process of municipal solid waste. Waste Manage 28:164–169

Casey WT, Nikodinovic-Runic J, Fonseca-Garcia P, Guzik MW, McGrath JW, Quinn JP, Cagney G, Prieto MA, O'Connor KE (2013) The effect of polyphosphate kinase (ppk) deletion on polyhydroxyalkanoate accumulation and carbon metabolism in Pseudomonas putida KT2440 Env Microbiol Rep, in press

Cerrone F, Sánchez-Peinado MDM, Juárez-Jimenez B, González-López J, Pozo C (2010) Biological treatment of two-phase olive mill wastewater (TPOMW, alpeorujo): polyhydroxyalkanoates (PHAs) production by Azotobacter strains. J Microbiol Biotechnol 20(3):594–601

Cherkasov DG, Il'in KK (2009) Salting out of butyric acid from aqueous solutions with potassium chloride. Russ J Appl Chem 82(5):920–924

Cheung HNB, Huang GH, Yu H (2010) Microbial-growth inhibition during composting of food waste: effects of organic acids. Biores Technol 101(15):5925–5934

Chuah JA, Yamada M, Taguchi S, Sudesh K, Doi Y, Numata K (2013) Biosynthesis and characterization of polyhydroxyalkanoate containing 5-hydroxyvalerate units: effects of 5HV units on biodegradability, cytotoxicity, mechanical and thermal properties. Polym Degrad Stabil 98(1):331–338

Cirne DG, Lethomaki A, Bjornsson L, Blackall LL (2007) Hydrolysis and microbial community analyses in two-stage anaerobic digestion of energy crops. J Appl Microb 103:516–527

CSO (Central Statistics Office) (2007) Census 2006. Volume 1 (Population classified by area) and Volume 8 (Occupations). Central Statistics Office, Cork

Cysneiros D, Banks CJ, Heaven S, Karatzas Kimon-Andreas G (2012a) The effect of pH control and 'hydraulic flush' on hydrolysis and Volatile Fatty Acids (VFA) production and profile in anaerobic leach bed reactors digesting a high solids content substrate. Biores Technol 123:263–271

Cysneiros D, Banks CJ, Heaven S, Karatzas Kimon-Andreas G (2012b) The role of phase separation and feed cycle length in leach beds coupled to methanogenic reactors for digestion of a solid substrate (Part 1): optimisation of reactors' performance. Biores Technol 103(1):56–63

Du G, Yu J (2002a) Green technology for conversion of food scraps to biodegradable thermoplastic polyhydroxyalkanoates. Env Sci Technol 36:5511–5516

Du G, Yu J (2002b) Metabolic analysis on fatty acid utilization by Pseudomonas oleovorans: mcl-poly(3-hydroxyalkanoates) synthesis versus β-oxidation. Process Biochem 38(3):325–332

Ellis JL, Dijkstra J, France J, Parsons AJ, Edwards GR, Rasmussen S, Kebreab E, Bannink A (2012) Effect of high-sugar grasses on methane emissions simulated using a dynamic model. J Dairy Sci 95:272–285

Hafuka A, Sakaida K, Satoh H, Takahashi M, Watanabe Y, Okabe S (2011) Effect of feeding regimens on polyhydroxybutyrate production from food wastes by Cupriavidus necator. Biores Technol 102(3):3551–3553

Haruta S, Cui Z, Huang Z, Li M, Ishii M, Igarashi Y (2002) Construction of a stable microbial community with high cellulose-degradation ability. Appl Microbiol Biotechnol 59(4–5):529–534

Hazer B, Steinbüchel A (2007) Increased diversification of polyhydroxyalkanoates by modification reactions for industrial and medical applications. Minireview. Appl Microbiol Biotechnol 74(1):1–12

Hoffmann N, Rehm BHA (2005) Nitrogen-dependent regulation of medium-chain length polyhydroxyalkanoate biosynthesis genes in pseudomonads. Biotechnol Lett 27:279–282

Huijberts GNM, Eggink G, de Waard P, Huisman GW, Witholt B (1992) Pseudomonas putida KT2442 cultivated on glucose accumulates poly(3-hydroxyalkanoates) consisting of saturated and unsaturated monomers. Appl Environ Microbiol 58:536–544

Jagadabhi GS, Kaparaju P, Rintala J (2010) Effect of micro-aeration and leachate replacement on COD solubilisation and VFA production during mono-digestion of grass-silage in one-stage leach-bed reactors. Biores Technol 101(8):2818–2824

Jiang Y, Hebly M, Kleerebezem R, Muyzer G, van Loosdrecht MCM (2011) Metabolic modeling of mixed substrate uptake for polyhydroxyalkanoate (PHA) production. Water Res 45(3):1309–1321

Jiang X, Sun Z, Marchessault RH, Ramsay JA, Ramsay B (2012) Biosynthesis and properties of medium-chain-length polyhydroxyalkanoates with enriched content of the dominant monomer. Biomacromol 13(9):2926–2932

Kenny TS, Runic JN, Kaminsky W, Woods T, Babu RP, O'Connor KE (2012) Development of a bioprocess to convert PET derived terephthalic acid and biodiesel derived glycerol to medium chain length polyhydroxyalkanoate. Appl Microbiol Biotechnol 95:623–633

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

Koch K, Lübken M, Gehring T, Wichern M, Horn H (2010) Biogas from grass silage – measurements and modeling with ADM1. Biores Technol 101(21):8158–8165

Lageveen R, Huisman G, Preusting H, Witholt B (1988) Formation of polyesters by Pseudomonas oleovorans: effect of substrates on formation and composition of poly-(R)-3-hydroxyalkanoates and poly-(R)-3-hydroxyalkanoates. Appl Environ Microbiol 54(12):2924–2932

Le Meur S, Zinn M, Egli T, Thöny-Meyer L, Ren Q (2012) Production of medium-chain-length polyhydroxyalkanoates by sequential feeding of xylose and octanoic acid in engineered Pseudomonas putida KT2440. BMC Biotechnol 12:53

Lemos PC, Serafim LS, Reis MAM (2006) Synthesis of polyhydroxyalkanoates from different short-chain fatty acids by mixed cultures submitted to aerobic dynamic feeding. J Biotechnol 122(2):226–238

Lehtomaki A, Huttunen S, Lehtinen TM, Rintala JA (2008) Anaerobic digestion of grass silage in batch leach bed processes for methane production. Biores Technol 99(8):3267–3278

Lu F, He PJ, Hao L, Shao LM (2008) Impact of recycled effluent on the hydrolysis during anaerobic digestion of vegetable and flower waste. Water Sci Technol 58(8):1637–1643

Muhr A, Rechberger EM, Salerno A, Reiterer A, Malli K, Strohmeier K, Schober S, Mittlebach M, Koller M (2013) Novel description of mcl-PHA biosynthesis by Pseudomonas chlororaphis from animal-derived waste. J Biotechnol 165(1):45–61

Nikodinovic-Runic J, Guzik M, Kenny ST, Babu R, Werker A, O'Connor KE (2013) Chapter Four. Carbon-rich wastes as feedstocks for biodegradable polymer (polyhydroxyalkanoate) production using bacteria. Adv Appl Microbiol 84:139–200

Nizami AS, Korres NE, Murphy JD (2009) Review of the integrated process for the production of grass biomethane. Env Sci Technol 43(22):8496–8508

Nizami AS, Thamisiriroj T, Singh A, Murphy JD (2010) Role of leaching and hydrolysis in a two-phase grass digestion system. Energ Fuel 24:4549–4559

O'Connor K, Buckley CM, Hartmans S, Dobson ADW (1995) Possible regulatory role for nonaromatic carbon sources in styrene degradation by Pseudomonas putida CA-3. Appl Environ Microbiol 61:544–548

O'Leary N, O'Connor KE, Ward P, Goff M, Dobson ADW (2005) Genetic characterization of accumulation of polyhydroxyalkanoate from styrene in Pseudomonas putida CA-3. Appl Env Microbiol 71(8):4380–4387

Olivera ER, Carnicero D, Garcia B, Minambres B, Moreno MA, Cañedo L, Di Russo CC, Naharro G, Luengo JM (2001) Two different pathways are involved in the β-oxidation of n-alkanoic and n-phenylalkanoic acids in Pseudomonas putida U: genetic studies and biotechnological applications. Mol Microbiol 39(4):863–874

O'Mara F (2008) Country Pasture/Forage Resource Profile. FAO Plant production and protection Division report Agriculture Dept. Crop and Grassland Service, FAO, 2008; http://www.fao.org/ag/AGP/AGPC/doc/Counprof/Ireland/Ireland.htm

Panunzi E (2008) Are grasslands under threat? Brief analysis of FAO statistical data on pasture and fodder crops. http://www.fao.org/ag/agp/agpc/doc/grass_stats/grassstats.htm

Ramsay BA, Saracovan I, Ramsay JA, Marchessault RH (1992) Effect of nitrogen limitation on long-side-chain poly-beta-hydroxyalkanoate synthesis by Pseudomonas resinovorans. Appl Env Microb 58(2):744–746

Reddy MV, Nikhil GN, Mohan SV, Swamy YV, Sarma PN (2012) Pseudomonas otitidis as a potential biocatalyst for polyhydroxyalkanoates (PHA) synthesis using synthetic wastewater and acidogenic effluents. Biores Technol 123:471–479

Regenhardt D, Heuer H, Heim S, Fernandez DU, Strömpl C, Moore ERB, Timmis KN (2002) Pedigree and taxonomic credentials of Pseudomonas putida strain KT2440. Environ Microbiol 4:912–915

Riedel SL, Bader J, Brigham CJ, Budde CF, Yusof ZAM, Rha C, Sinskey AJ (2012) Production of poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) by Ralstonia eutropha in high cell density palm oil fermentations. Biotech Bioeng 109(1):74–83

Rodrigues AC, Wuertz S, Brito AG, Melo LF (2005) Fluorene and phenanthrene uptake by Pseudomonas putida ATCC 17514: kinetics and physiological aspects. Biotechnol Bioeng 90(3):281–289

Sanchez C (2009) Lignocellulosic residues: biodegradation and bioconversion by fungi. Biotechnol Adv 27:185–194

Satyanarayana KG, Arizaga GGC, Wypych F (2009) Biodegradable composites based on lignocellulosic fibers—an overview. Progr Polym Sci 34(9):982–1021

Scheiner D (1976) Determination of ammonia and Kjeldahl nitrogen by indophenol method. Water Res 10(1):31–36

Schlegel H, Kaltwasser H, Gottschalk G (1961) Ein Submersverfahren zur Kultur wasserstoffoxidierender Bakterien: Wachstumsphysiologische Untersuchungen. Arch Mikrobiol 38:209–222

Seppala M, Pavola T, Lehtomaki A, Rintala J (2009) Biogas production from boreal herbaceous grasses – specific methane yield and methane yield per hectare. Biores Technol 100(12):2952–2958

Siegert I, Banks C (2005) The effect of volatile fatty acid additions on the anaerobic digestion of cellulose and glucose in batch reactors. Process Biochem 40(11):3412–3418

Sohn SB, Kim TY, Park JM, Lee SY (2010) In silico genome-scale metabolic analysis of Pseudomonas putida KT2440 for polyhydroxyalkanoate synthesis, degradation of aromatics and anaerobic survival. Biotechnol J 5(7):739–750

Steinbüchel A (2003) Production of rubber-like polymers by microorganisms. Curr Op Microbiol 6(3):261–270

Steinbüchel A, Lotke-Eversloh T (2003) Metabolic engineering and pathway construction for biotechnological production of relevant polyhydroxyalkanoates in microorganisms. Biochem Eng J 16:81–96

Tobin KM, McGrath JW, Mullan A, Quinn JP, O'Connor KE (2007) Polyphosphate accumulation by Pseudomonas putida CA-3 and other medium-chain-length polyhydroxyalkanoate-accumulating bacteria under aerobic growth conditions. Appl Environ Micrbiol 73(4):1383–1387

USEPA (1978) Method 365.3, Phosphorus, all forms, colorimetric, ascorbic acid, two reagent. Issued 1978. Table IB, Note 1

Xu Y, Wang RH, Koutinas AA, Webb C (2010) Microbial biodegradable plastic production from a wheat-based biorefining strategy. Proc Biochem 45(2):153–163

Ward PG, O'Connor KE (2005) Induction and quantification of phenylacyl-CoA ligase enzyme activities in Pseudomonas putida CA-3 grown on aromatic carboxylic acids. FEMS Microbiol Lett 251:227–232

Witzig M, Boghun J, Kleinsteuber S, Fetzer I, Rodehustcord M (2010) Effect of the corn silage to grass silage ratio and feed particle size of diets for ruminants on the ruminal Bacteroides–Prevotella community in vitro. Anaer 16:412–419