Lactic acid production from paper sludge by SSF with thermotolerant Rhizopus sp.

Maki Takano , Kazuhiro Hoshino

Bioresources and Bioprocessing ›› 2016, Vol. 3 ›› Issue (1) : 29

PDF
Bioresources and Bioprocessing ›› 2016, Vol. 3 ›› Issue (1) : 29 DOI: 10.1186/s40643-016-0106-8
Research

Lactic acid production from paper sludge by SSF with thermotolerant Rhizopus sp.

Author information +
History +
PDF

Abstract

Background

Rhizopus fungi is suitable for the production of lactic acid, which is the backbone material of polylactic acid used as green plastic from lignocellulosic biomass, since it can grow and ferment in simple medium with various carbon sources such as starch and cellulose. Although paper sludge (PS) contains a lot of cellulosic fibers and in general was incinerated for volume reduction and heat recovery, other efficient utilizations have hardly been developed. In effective production of lactic acid from PS, the research of the extraction of cellulosic fiber from raw PS to obtain effectively fermentable sugars by cellulase and the selection of lactic acid microorganism are necessary. In this study, the PS pretreatment method with NaOH and HCl and the optimization of cellulase reagent were achieved, and also a desirable thermotolerant Rhizopus was selected. Finally, the production of lactic acid from the treated PS at 40 °C by simultaneous saccharification and fermentation (SSF) with the strain and an optimized cellulase cocktail was investigated.

Results

Rhizopus oryzae NBRC 5384 was selected for thermotolerant lactic acid production from Rhizopus library because of its heat tolerance up to 40 °C and high lactic acid production of 80 g/L. The strain can ferment to lactic acid from hexose, pentose, sugar alcohol, disaccharide and starch. The soaking of raw PS in NaOH and HCl was able to reduce effectively inorganic materials and other reagents for repulping, and the content of Al and Ca per PS dry matter was mainly decreased from 32.9 and 30.8 to 14.1 and 1.66 %, respectively. SSF of the treated PS of 50 g/L with optimized cellulase cocktail and 5384 at 40 °C resulted in lactic acid production of 9.33 g/L for 96 h.

Conclusion

The thermotolerant Rhizopus fungus was found based on its high performance in lactic acid production at high temperature from not only glucose, but also other various carbon sources including polysaccharides and the secretion of amylases and cellulases. The treatment of raw PS by NaOH and subsequent HCl was able to remove a large amount of inorganic materials with decrease of hydrophobicity. In SSF of the treated PS with the strain and the optimized cellulase cocktail, lactic acid was able to be produced. However, the increase of initial PS concentration in SSF led to the decrease of the yield with ethanol production, because of limited aeration due to increase of density. An appropriate oxygen supply to the strain is necessary to improve lactic acid production.

Keywords

Lactic acid / Paper sludge / Thermotolerant / Rhizopus oryzae / SSF

Cite this article

Download citation ▾
Maki Takano, Kazuhiro Hoshino. Lactic acid production from paper sludge by SSF with thermotolerant Rhizopus sp.. Bioresources and Bioprocessing, 2016, 3(1): 29 DOI:10.1186/s40643-016-0106-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Abe S, Takagi M. Simultaneous saccharification and fermentation of cellulose to lactic-acid. Biotechnol Bioeng, 1991, 37: 93-96.

[2]

Bakir U, Yavascaoglu S, Guvenc F, Etsayin A. An endo-β-1,4-xylanase from Rhizopus oryzae: production, partial purification and biochemical characterization. Enzyme Microb Technol, 2001, 29: 328-334.

[3]

Chookietwattana K. Lactic acid production from simultaneous saccharification and fermentation of cassava starch by Lactobacillus plantarum MSUL 903. APCBEE Proc, 2014, 8: 156-160.

[4]

Cui YQ, van der Lans RGJM, Luyben KCAM. Effects of dissolved oxygen tension and mechanical forces on fungal morphology in submerged fermentation. Biotechnol Bioeng, 1998, 57: 409-419.

[5]

Datta R, Tsai SP, Bonsignore P, Moon SH, Frank JR. Technological and economic-potential of poly(lactic acid) and lactic-acid derivatives. FEMS Microbiol Rev, 1995, 16: 221-231.

[6]

Gao L, Yang H, Wang X, Huang Z, Ishii M, Igarashi Y, Cui Z. Rice straw fermentation using lactic acid bacteria. Bioresour Technol, 2008, 99: 2742-2748.

[7]

Grade A, Jonsson G, Schmidt AS, Ahring BK. Lactic acid production from wheat straw hemicellulose hydrolysate by Lactobacillus pentosus and Lactobacillus brevis. Bioresour Technol, 2002, 81: 217-223.

[8]

Hama S, Mizuno S, Kihara M, Tanaka T, Ogino C, Noda H, Kondo A. Production of D-lactic acid from hard wood pulp by mechanical milling followed by simultaneous saccharification and fermentation using metabolically engineered Lactobacillus plantarum. Bioresour Technol, 2015, 187: 167-172.

[9]

Henry CL. Nitrogen dynamics of pulp and paper sludge amendment to forest soils. Water Sci Technol, 1991, 24: 417-425.

[10]

Hetényi K, Németh Á, Sevella B. Investigation and modeling of lactic acid fermentation on wheat starch via SSF, CHF and SHF technology. Per Pol Chem Eng, 2011, 55: 11-16.

[11]

Ishimoto H, Origuchi T, Yasuda H. Use of papermaking sludge as new material. J Mater Civ Eng, 2000, 12: 310-313.

[12]

John RP, Nampoothiri KM, Pandey A. Simultaneous saccharification and fementation of cassava bagasse for L-(+)-lactic acid production using Lactobacilli. Appl Biochem Biotechnol, 2006, 134: 263-272.

[13]

Kang L, Wang W, Lee YY. Bioconversion of kraft paper mill sludges to ethanol by SSF and SSCF. Appl Biochem Biotechnol, 2010, 161: 53-66.

[14]

Kang L, Wang W, Pallapolu VR, Lee YY. Enhanced ethanol production from de-ashed paper sludge by simultaneous saccharification and fermentation and simultaneous saccharification and co-fermentation. BioResour, 2011, 6(4): 3791-3808.

[15]

Kitpreechavanich V, Maneeboon T, Kayano Y, Sakai K. Comparative Characterization of L-lactic acid-producing thermotlerant Rhizopus fungi. J Biosci Bioeng, 2008, 106: 541-546.

[16]

Lopez M, Huerta-Pujol O, Martinez-Farre FX, Soliva M. Approachng compost stability from Klason lignin modified method: chemical stability degree for OM and N quality assessment. Recour Conserv Recy, 2010, 55: 171-181.

[17]

Lunt J. Large-scale production, properties and commercial applications of polylactic acid polymers. Polym Degrad Stabil, 1998, 59: 145-152.

[18]

Lynd LR, Cushman JH, Nichols RJ, Wyman CE. Fuel ethanol from cellulosic biomass. Science, 1991, 251: 1318-1323.

[19]

Lynd LR, Wyman CE, Gerngross TU. Biocommodity engineering. Biotechnol Prog, 1999, 15: 777-793.

[20]

Lynd LR, Lyford Lyford, South v, van Walsum v, Levenson v. Evaluation of paper sludges for amenability to enzymatic hydrolysis and conversion to ethanol. Tappi J, 2001, 84: 50.

[21]

Marques S, Santos JAL, Girio FM, Roseiro JC. Lactic acid production from recycled paper sludge by simultaneous saccharification and fermentation. Biochem Eng J, 2008, 41: 210-216.

[22]

Murashima K, Nishimura T, Nakamura Y, Koga J, Moriya T, Sumida N, Yaguchi T, Kono T. Purification and characterization of new endo-1,4-β-d-glucanases from Rhizopus oryzae. Enzyme Microb Technol, 2002, 30: 319-326.

[23]

Naresh KB, Zhiliang F. Production of lactic acid from paper sludge usinf acid-tolerant, thermophilic Bacillus coagulan strains. Bioresour Tech, 2009, 100: 5966-5972.

[24]

Nikolov T, Bakalova N, Petrova S, Benadova R, Spasov S, Kolev D. An effective method for bioconversion of delignified waste cellulose fibers from the paper industry with a cellulase complex. Bioresour Technol, 2000, 71: 1-4.

[25]

Passos FV, Fleming HP, Ollis DF, Felder RM, Mcfeeters RF. Kinetics and modeling of lactic-acid production by Lactobacillus plantarum. Appl Environ Microbiol, 1994, 60: 2627-2636.

[26]

Ping Huang L, Jin B, Lant P. Direct fermentation of potato starch waste water to lactic acid by Rhizopus oryzae and Rhizopus arrhizus. Bioprocess Biosyst Eng, 2005, 27: 229-238.

[27]

Skory CD, Freer SN, Bothast RJ. Production of L-lactic acid by Rhizopus oryzae under oxygen limiting conditions. Biotechnol Lett, 1998, 20: 191-194.

[28]

Sreenath HK, Moldes AB, Koegel RG, Straub RJ. Lactic acid production by simultaneous saccharification and fermentation of alfalfa fiber. J Biosci Bioeng, 2001, 92: 518-523.

[29]

Tanaka T, Hoshina M, Tanabe S, Sakai K, Ohtsubo S, Taniguchi M. Production of d-lactic acid from defatted rice bran by simultaneous saccharification and fermentation. Bioresour Technol, 2006, 97: 211-217.

[30]

Thongchul N, Yang S-T. Controlling filamentous fungal morphology by immobilization on a rotating fibrous matrix to enhance oxygen transfer and L-(+)lactic acid production by Rhizopus oryzae. Ferment Biotechnol, 2003, 3: 36-51.

[31]

Tripepi RR, Zhang X, Campbell AG. Use of raw and composted paper sludge as a soil additive or mulch for cottonwood plants. Compost Sci Util, 1996, 4: 26-30.

[32]

Wang L, Zhao B, Liu B, Yang C, Yu B, Li Q, Ma C, Xu P, Ma Y. Efficient production of L-lactic acid from cassava powder by Lactobacillus rhamnosus. Bioresour Technol, 2010, 101: 7895-7901.

[33]

Woiciechowski AL, Soccol CR, Romas LP, Pandey A. Experimental design to enhance the production of L-(+)-lactic acid from steam-exploded wood hydrolysate using Rhizopus oryzae in a mixed-acid fermentation. Proc Biochem, 1999, 34: 949-955.

[34]

Wyman CE. Potential synergies and challenges in refining cellulosic biomass to fuels, chemicals, and power. Biotechnol prog, 2003, 19: 254-262.

[35]

Yanez R, Moldes AB, Alonso JL, Parajo JC. Production of D-(−)-lactic acid from cellulose by simultaneous saccharification and fermentation using Lactobacillus coryniformis subsp. torquens. Biotechnol Lett, 2003, 25: 1161-1164.

[36]

Yin P, Nishina N, Kosakai Y, Yahiro K, Park K, Okabe M. Enhanced production of L(+)-lactic acid from corn starch in a culture of Rhizopus oryzae using an air-lift bioreactor. J Ferment Bioeng, 1997, 84: 249-253.

[37]

Zhou Y, Dominguez JM, Cao N, Du J, Tsao GT. Optimization of l-lactic acid production from glucose by Rhizopus oryzae ATCC52311. Appl Biochem Biotechnol, 1999, 77–79: 401-407.

Funding

Japan Science and Technology Agency

AI Summary AI Mindmap
PDF

176

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/