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Review Article

Mannan biotechnology: from biofuels to health

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Pages 32-42 | Received 12 Jul 2013, Accepted 08 Mar 2014, Published online: 15 Jul 2014

References

  • Al-Ghazzewi FH, Khanna S, Tester RF, Piggott J. (2007). The potential use of hydrolysed konjac glucomannan as a prebiotic. J Sci Food Agric, 87, 1758–66
  • Alvira P, Tomas-Pejo E, Ballesteros M, Negro MJ. (2010). Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: a review. Bioresour Technol, 101, 4851–61
  • Asano I, Hamaguchi K, Fujii S, Iino H. (2003). In vitro digestibility and fermentation of mannooligosaccharides from coffee mannan. Food Sci Technol Res, 9, 62–6
  • Aspinall GO. (1959). Structural chemistry of the hemicelluloses. Adv Carbohydr Chem, 14, 429–68
  • Baurhoo B, Letellier A, Zhao X, Ruiz-Feria CA. (2007). Cecal populations of lactobacilli and bifidobacteria and Escherichia coli populations after in vivo Escherichia coli challenge in birds fed diets with purified lignin or mannanoligosaccharides. Poult Sci, 86, 2509–16
  • Bettiol J-LP, Showell MS, Baeck AC, Thoen CAJK. (2002). Detergent compositions comprising a mannanase and a bleach system. In: Patent, U.S. (Ed.). Procter & Gamble Company (Cincinnati, OH) USA
  • Boraston AB, Bolam DN, Gilbert HJ, Davies GJ. (2004). Carbohydrate-binding modules: fine-tuning polysaccharide recognition. Biochem J, 382, 769–81
  • Bourgault R, Oakley AJ, Bewley JD, Wilce MC. (2005). Three-dimensional structure of (1,4)-β-D-mannan mannanohydrolase from tomato fruit. Protein Sci, 14, 1233–41
  • Braidwood L, Breuer C, Sugimoto K. (2014). My body is a cage: mechanisms and modulation of plant cell growth. New Phytol, 201, 388–402
  • Bychkov AL, Korolev KG, Lomovsky OI. (2010). Obtaining mannanoligosaccharide preparations by means of the mechanoenzymatic hydrolysis of yeast biomass. Appl Biochem Biotechnol, 162, 2008–14
  • Callaway TR, Edrington TS, Anderson RC, et al. (2008). Probiotics, prebiotics and competitive exclusion for prophylaxis against bacterial disease. Anim Health Res Rev, 9, 217–25
  • Cantarel BL, Coutinho PM, Rancurel C, et al. (2009). The carbohydrate-active enzymes database (CAZy): an expert resource for glycogenomics. Nucleic Acids Res, 37, D233–8
  • Capek P, Kubackova M, Alfoldi J, et al. (2000). Galactoglucomannan from the secondary cell wall of Picea abies L. Karst. Carbohydr Res, 329, 635–45
  • Cartmell A, Topakas E, Ducros VM, et al. (2008). The Cellvibrio japonicus mannanase CjMan26C displays a unique exo-mode of action that is conferred by subtle changes to the distal region of the active site. J Biol Chem, 283, 34403–13
  • Charalampopoulos D, Rastall RA. (2012). Prebiotics in foods. Curr Opin Biotechnol, 23, 187–91
  • Chauhan PS, Puri N, Sharma P, Gupta N, et al. (2012). Mannanases: microbial sources, production, properties and potential biotechnological applications. Appl Microbiol Biotechnol, 93, 1817–30
  • Che TM, Johnson RW, Kelley KW, et al. (2012). Effects of mannan oligosaccharide on cytokine secretions by porcine alveolar macrophages and serum cytokine concentrations in nursery pigs. J Anim Sci, 90, 657–68
  • Clemente JC, Ursell LK, Parfrey LW, Knight R. (2012). The impact of the gut microbiota on human health: an integrative view. Cell, 148, 1258–70
  • Corrigan A, Horgan K, Clipson N, Murphy RA. (2011). Effect of dietary supplementation with a Saccharomyces cerevisiae mannan oligosaccharide on the bacterial community structure of broiler cecal contents. Appl Environ Microbiol, 77, 6653–62
  • Corrigan A, Horgan K, Clipson N, Murphy RA. (2012). Effect of dietary prebiotic (mannan oligosaccharide) supplementation on the caecal bacterial community structure of turkeys. Microb Ecol, 64, 826–36
  • Couturier M, Feliu J, Bozonnet S, et al. (2013a). Molecular engineering of fungal GH5 and GH26 beta-(1,4)-mannanases toward improvement of enzyme activity. PLoS One, 8, e79800
  • Couturier M, Roussel A, Rosengren A, et al. (2013b). Structural and biochemical analyses of glycoside hydrolase families 5 and 26 β-(1,4)-mannanases from Podospora anserina reveal differences upon manno-oligosaccharide catalysis. J Biol Chem, 288, 14624–35
  • CyberColloids. (2014). Resources [online]. Carrigaline, County Cork, Ireland: CyberColloids Ltd. Available at: http://www.cybercolloids.net/ [last accessed 27 May 2014]
  • de O. Petkowicz CL, Reicher F, Chanzy H, et al. (2001). Linear mannan in the endosperm of Schizolobium amazonicum. Carbohydr Polym, 44, 107–12
  • Dhawan S, Kaur J. (2007). Microbial mannanases: an overview of production and applications. Crit Rev Biotechnol, 27, 197–216
  • Dias FM, Vincent F, Pell G, et al. (2004). Insights into the molecular determinants of substrate specificity in glycoside hydrolase family 5 revealed by the crystal structure and kinetics of Cellvibrio mixtus mannosidase 5A. J Biol Chem, 279, 25517–26
  • Dilokpimol A, Nakai H, Gotfredsen CH, et al. (2011). Recombinant production and characterisation of two related GH5 endo-β-1,4-mannanases from Aspergillus nidulans FGSC A4 showing distinctly different transglycosylation capacity. Biochim Biophys Acta, 1814, 1720–9
  • Do BC, Dang TT, Berrin JG, et al. (2009). Cloning, expression in Pichia pastoris, and characterization of a thermostable GH5 mannan endo-1,4-β-mannosidase from Aspergillus niger BK01. Microb Cell Fact, 8, 59 (1–12)
  • Duffaud GD, McCutchen CM, Leduc P, et al. (1997). Purification and characterization of extremely thermostable β-mannanase, β-mannosidase, and α-galactosidase from the hyperthermophilic eubacterium Thermotoga neapolitana 5068. Appl Environ Microbiol, 63, 169–77
  • Fernandez F, Hinton M, Van Gils B. (2000). Evaluation of the effect of mannan-oligosaccharides on the competitive exclusion of Salmonella enteritidis colonization in broiler chicks. Avian Pathol, 29, 575–81
  • FitzPatrick M, Champagne P, Cunningham MF, Whitney RA. (2010). A biorefinery processing perspective: treatment of lignocellulosic materials for the production of value-added products. Bioresour Technol, 101, 8915–22
  • Franklin ST, Newman MC, Newman KE, Meek KI. (2005). Immune parameters of dry cows fed mannan oligosaccharide and subsequent transfer of immunity to calves. J Dairy Sci, 88, 766–75
  • Gaggia F, Mattarelli P, Biavati B. (2010). Probiotics and prebiotics in animal feeding for safe food production. Int J Food Microbiol, 141, S15–28
  • Ganner A, Stoiber C, Wieder D, Schatzmayr G. (2010). Quantitative in vitro assay to evaluate the capability of yeast cell wall fractions from Trichosporon mycotoxinivorans to selectively bind gram negative pathogens. J Microbiol Methods, 83, 168–74
  • Gibson GR, Probert HM, Loo JV, et al. (2004). Dietary modulation of the human colonic microbiota: updating the concept of prebiotics. Nutr Res Rev, 17, 259–75
  • Gidley MJ, Reid JSG. (2006). Galactomannans and other cell wall storage polysaccharides in seeds. In: Stephen AM, Phillips GO, Williams PA, eds. Food polysaccharides and their applications. Boca Raton, London, New York: CRC Press, 181–216
  • Gilbert HJ, Knox JP, Boraston AB. (2013). Advances in understanding the molecular basis of plant cell wall polysaccharide recognition by carbohydrate-binding modules. Curr Opin Struct Biol, 23, 669–77
  • Gilbert HJ, Stålbrand H, Brumer H. (2008). How the walls come crumbling down: recent structural biochemistry of plant polysaccharide degradation. Curr Opin Plant Biol, 11, 338–48
  • Gübitz G, Sachslehner A, Haltrich D. (2001). Microbial mannanases: substrates, production and application. In: Himmel ME, Baker JO, Saddler JN, eds. Glycosyl hydrolases for biomass conversion. ACS Symposium Series, Vol 769. Washington, DC: American Chemical Society, 239–62
  • Gübitz GM, Lischnig T, Stebbing D, Saddler JN. (1997). Enzymatic removal of hemicellulose from dissolving pulps. Biotechnol Lett, 19, 491–5
  • Guillen D, Sanchez S, Rodriguez-Sanoja R. (2010). Carbohydrate-binding domains: multiplicity of biological roles. Appl Microbiol Biotechnol, 85, 1241–9
  • Hägglund P, Eriksson T, Collen A, et al. (2003). A cellulose-binding module of the Trichoderma reesei β-mannanase Man5A increases the mannan-hydrolysis of complex substrates. J Biotechnol, 101, 37–48
  • Hannuksela T, Herve du Penhoat C. (2004). NMR structural determination of dissolved O-acetylated galactoglucomannan isolated from spruce thermomechanical pulp. Carbohydr Res, 339, 301–12
  • Heinrichs AJ, Jones CM, Heinrichs BS. (2003). Effects of mannan oligosaccharide or antibiotics in neonatal diets on health and growth of dairy calves. J Dairy Sci, 86, 4064–9
  • Hilge M, Gloor SM, Rypniewski W, et al. (1998). High-resolution native and complex structures of thermostable β-mannanase from Thermomonospora fusca – substrate specificity in glycosyl hydrolase family 5. Structure, 6, 1433–44
  • Hogg D, Woo EJ, Bolam DN, et al. (2001). Crystal structure of mannanase 26A from Pseudomonas cellulosa and analysis of residues involved in substrate binding. J Biol Chem, 276, 31186–92
  • Hoshino-Takao I, Fujii S, Ishii A, et al. (2008). Effects of mannooligosaccharides from coffee mannan on blood pressure in Dahl salt-sensitive rats. J Nutr Sci Vitaminol (Tokyo), 54, 181–4
  • Iji PA, Saki AA, Tivey DR. (2001). Intestinal structure and function of broiler chickens on diets supplemented with a mannan oligosaccharide. J Sci Food Agric, 81, 1186–92
  • Ishurd O, Kermagi A, Elghazoun M, Kennedy JF. (2006). Structural of a glucomannan from Lupinus varius seed. Carbohydr Polym, 65, 410–3
  • Jackson ME, Anderson DM, Hsiao HY, et al. (2003). Beneficial effect of β-mannanase feed enzyme on performance of chicks challenged with Eimerla sp. and Clostridium perfringens. Avian Dis, 47, 759–63
  • Jagtap SS, Dhiman SS, Jeya M, et al. (2012). Saccharification of poplar biomass by using lignocellulases from Pholiota adiposa. Bioresour Technol, 120, 264–72
  • Jettanacheawchankit S, Sasithanasate S, Sangvanich P, et al. (2009). Acemannan stimulates gingival fibroblast proliferation; expressions of keratinocyte growth factor-1, vascular endothelial growth factor, and type I collagen; and wound healing. J Pharmacol Sci, 109, 525–31
  • Jiang Z, Wei Y, Li D, et al. (2006). High-level production, purification and characterization of a thermostable β-mannanase from the newly isolated Bacillus subtilis WY34. Carbohydr Polym, 66, 88–96
  • Jittapiromsak N, Sahawat D, Banlunara W, et al. (2010). Acemannan, an extracted product from Aloe vera, stimulates dental pulp cell proliferation, differentiation, mineralization, and dentin formation. Tissue Eng Part A, 16, 1997–2006
  • Jorgensen H, Sanadi AR, Felby C, et al. (2010). Production of ethanol and feed by high dry matter hydrolysis and fermentation of palm kernel press cake. Appl Biochem Biotechnol, 161, 318–32
  • Kath F, Kulicke WM. (1999). Mild enzymatic isolation of mannan and glucan from yeast Saccharomyces cerevisiae. Angew Makromol Chem, 268, 59–68
  • Kim GB, Seo YM, Kim CH, Paik IK. (2011). Effect of dietary prebiotic supplementation on the performance, intestinal microflora, and immune response of broilers. Poult Sci, 90, 75–82
  • Kirk O, Borchert TV, Fuglsang CC. (2002). Industrial enzyme applications. Curr Opin Biotechnol, 13, 345–51
  • Klippel B, Antranikian G. (2011). Lignocellulose converting enzymes from Thermophiles. In: Horikoshi K, ed. Extremophiles handbook. Tokyo, Dordrecht, Heidelberg, London, New York: Springer, 443–74
  • Kocourek J, Ballou CE. (1969). Method for fingerprinting yeast cell wall mannans. J Bacteriol, 100, 1175–81
  • Kollar R, Reinhold BB, Petrakova E, et al. (1997). Architecture of the yeast cell wall. β(1–>6)-glucan interconnects mannoprotein, β(1–>)3-glucan, and chitin. J Biol Chem, 272, 17762–75
  • Kollarova K, Vatehova Z, Slovakova L, Liskova D. (2010). Interaction of galactoglucomannan oligosaccharides with auxin in mung bean primary root. Plant Physiol Biochem, 48, 401–6
  • Kote NV, Patil AG, Mulimani VH. (2009). Optimization of the production of thermostable endo-β-1,4 mannanases from a newly isolated Aspergillus niger gr and Aspergillus flavus gr. Appl Biochem Biotechnol, 152, 213–23
  • Larsson AM, Anderson L, Xu B, et al. (2006). Three-dimensional crystal structure and enzymic characterization of β-mannanase Man5A from blue mussel Mytilus edulis. J Mol Biol, 357, 1500–10
  • Lavoie J-M, Beauchet R, Berberi Vr, Chornet M. (2011). Biorefining lignocellulosic biomass via the feedstock impregnation rapid and sequential steam treatment. In: Bernardes DMADS, ed. Biofuel's Engineering Process Technology. InTech. Available at: http://www.intechopen.com/books/biofuel-s-engineering-process-technology/biorefining-lignocellulosic-biomass-via-the-feedstock-impregnation-rapid-and-sequential-steam-treatm [last accessed 27 May 2014]
  • Le Nours J, Anderson L, Stoll D, et al. (2005). The structure and characterization of a modular endo-β-1,4-mannanase from Cellulomonas fimi. Biochemistry, 44, 12700–8
  • Lee KJ, Marcus SE, Knox JP. (2011). Cell wall biology: perspectives from cell wall imaging. Mol Plant, 4, 212–19
  • Liepman AH, Nairn CJ, Willats WG, et al. (2007). Functional genomic analysis supports conservation of function among cellulose synthase-like a gene family members and suggests diverse roles of mannans in plants. Plant Physiol, 143, 1881–93
  • Lin CSK, Pfaltzgraff LA, Herrero-Davila L, et al. (2013). Food waste as a valuable resource for the production of chemicals, materials and fuels. Current situation and global perspective. Energy Environ Sci, 6, 426–64
  • Lipke PN, Ovalle R. (1998). Cell wall architecture in yeast: new structure and new challenges. J Bacteriol, 180, 3735–40
  • Liu Q, Yang P, Luo H, et al. (2012a). A novel endo-1,4-β-mannanase from Bispora antennata with good adaptation and stability over a broad pH range. Appl Biochem Biotechnol, 166, 1442–53
  • Liu S, Lu H, Hu R, et al. (2012b). A sustainable woody biomass biorefinery. Biotechnol Adv, 30, 785–810
  • Lundqvist J, Jacobs A, Palm M, et al. (2003). Characterization of galactoglucomannan extracted from spruce (Picea abies) by heat-fractionation at different conditions. Carbohydr Polym, 51, 203–11
  • Lundqvist J, Teleman A, Junel L, et al. (2002). Isolation and characterization of galactoglucomannan from spruce (Picea abies). Carbohydr Polym, 48, 29–39
  • Luo H, Wang Y, Wang H, et al. (2009). A novel highly acidic β-mannanase from the acidophilic fungus Bispora sp. MEY-1: gene cloning and overexpression in Pichia pastoris. Appl Microbiol Biotechnol, 82, 453–61
  • Luthi E, Jasmat NB, Grayling RA, et al. (1991). Cloning, sequence analysis, and expression in Escherichia coli of a gene coding for a β-mannanase from the extremely thermophilic bacterium “Caldocellum saccharolyticum”. Appl Environ Microbiol, 57, 694–700
  • Mackie W, Preston RD. (1968). The occurrence of mannan microfibrils in the green algae Codium fragile and Acetabularia crenulata. Planta, 79, 249–53
  • Marcus SE, Blake AW, Benians TA, et al. (2010). Restricted access of proteins to mannan polysaccharides in intact plant cell walls. Plant J, 64, 191–203
  • Mellitzer A, Weis R, Glieder A, Flicker K. (2012). Expression of lignocellulolytic enzymes in Pichia pastoris. Microb Cell Fact, 11, 61(1–11)
  • Middelbos IS, Fastinger ND, Fahey Jr GC. (2007). Evaluation of fermentable oligosaccharides in diets fed to dogs in comparison to fiber standards. J Anim Sci, 85, 3033–44
  • Millane RP, Hendrixson TL. (1994). Crystal structures of mannan and glucomannans. Carbohydr Polym, 25, 245–51
  • Moreira LR, Filho EX. (2008). An overview of mannan structure and mannan-degrading enzyme systems. Appl Microbiol Biotechnol, 79, 165–78
  • Murthy AK, Chaganty BK, Troutman T, et al. (2011). Mannose-containing oligosaccharides of non-specific human secretory immunoglobulin A mediate inhibition of Vibrio cholerae biofilm formation. PLoS One, 6, e16847
  • Nakajima T, Ballou CE. (1974a). Characterization of the carbohydrate fragments obtained from Saccharomyces cerevisiae mannan by alkaline degradation. J Biol Chem, 249, 7679–84
  • Nakajima T, Ballou CE. (1974b). Structure of the linkage region between the polysaccharide and protein parts of Saccharomyces cerevisiae mannan. J Biol Chem, 249, 7685–94
  • Northcote DH. (1972). Chemistry of the plant cell wall. Annu Rev Plant Physiol, 23, 113–32
  • Nunes FM, Coimbra MA. (2001). Chemical characterization of the high molecular weight material extracted with hot water from green and roasted arabica coffee. J Agric Food Chem, 49, 1773–82
  • Nunes FM, Coimbra MA. (2002). Chemical characterization of the high-molecular-weight material extracted with hot water from green and roasted robusta coffees as affected by the degree of roast. J Agric Food Chem, 50, 7046–52
  • O’Hara AM, Shanahan F. (2006). The gut flora as a forgotten organ. EMBO Rep, 7, 688–93
  • Otieno DO, Ahring BK. (2012a). The potential for oligosaccharide production from the hemicellulose fraction of biomasses through pretreatment processes: xylooligosaccharides (XOS), arabinooligosaccharides (AOS), and mannooligosaccharides (MOS). Carbohydr Res, 360, 84–92
  • Otieno DO, Ahring BK. (2012b). A thermochemical pretreatment process to produce xylooligosaccharides (XOS), arabinooligosaccharides (AOS) and mannooligosaccharides (MOS) from lignocellulosic biomasses. Bioresour Technol, 112, 285–92
  • Park SH, Park KH, Oh BC, et al. (2011). Expression and characterization of an extremely thermostable β-glycosidase (mannosidase) from the hyperthermophilic archaeon Pyrococcus furiosus DSM3638. Nat Biotechnol, 28, 639–48
  • Parks CW, Grimes JL, Ferket PR, Fairchild AS. (2001). The effect of mannanoligosaccharides, bambermycins, and virginiamycin on performance of large white male market turkeys. Poult Sci, 80, 718–23
  • Perez Recalde M, Noseda MD, Pujol CA, et al. (2009). Sulfated mannans from the red seaweed Nemalion helminthoides of the South Atlantic. Phytochemistry, 70, 1062–8
  • Pham TA, Berrin JG, Record E, et al. (2010). Hydrolysis of softwood by Aspergillus mannanase: role of a carbohydrate-binding module. J Biotechnol, 148, 163–70
  • Picout DR, Ross-Murphy SB, Jumel K, et al. (2002). Pressure cell assisted solution characterization of polysaccharides. 2. Locust bean gum and tara gum. Biomacromolecules, 3, 761–7
  • Popper ZA, Michel G, Herve C, et al. (2011). Evolution and diversity of plant cell walls: from algae to flowering plants. Annu Rev Plant Biol, 62, 567–90
  • Pu Y, Zhang D, Singh PM, Ragauskas AJ. (2008). The new forestry biofuels sector. Biofuels Bioprod Bioref, 2, 58–73
  • Puls J. (1997). Chemistry and biochemistry of hemicelluloses: relationship between hemicellulose structure and enzymes required for hydrolysis. Macromol Symp, 120, 183–96
  • Reid JSG, Edwards ME. (1995). Galactomannans and other cell wall storage polysaccharides in seeds. In: Stephen AM, Phillips GO, Williams PA, eds. Food polysaccharides and their applications. Boca Raton, FL: CRC Press, 155–86
  • Roberfroid M. (2007). Prebiotics: the concept revisited. J Nutr, 137, 830S–7S
  • Roberfroid M, Gibson GR, Hoyles L, et al. (2010). Prebiotic effects: metabolic and health benefits. Br J Nutr, 104, S1–63
  • Rodríguez Rodríguez E, Darias Martin J, Díaz Romero C. (2010). Aloe vera as a functional ingredient in foods. Crit Rev Food Sci Nutr, 50, 305–26
  • Rodríguez-Gacio Mdel C, Iglesias-Fernandez R, Carbonero P, Matilla AJ. (2012). Softening-up mannan-rich cell walls. J Exp Bot, 63, 3976–88
  • Rosen GD. (2006). Holo-analysis of the efficacy of Bio-Mos® in pig nutrition. Anim Sci, 82, 683–9
  • Rosen GD. (2007). Holo-analysis of the efficacy of Bio-Mos in turkey nutrition. Br Poult Sci, 48, 27–32
  • Sabini E, Schubert H, Murshudov G, et al. (2000). The three-dimensional structure of a Trichoderma reesei β-mannanase from glycoside hydrolase family 5. Acta Crystallogr D Biol Crystallogr, 56, 3–13
  • Sachslehner A, Foidl G, Foidl N, et al. (2000). Hydrolysis of isolated coffee mannan and coffee extract by mannanases of Sclerotium rolfsii. J Biotechnol, 80, 127–34
  • Saeki K, Okuda M, Hatada Y, et al. (2000). Novel oxidatively stable subtilisin-like serine proteases from alkaliphilic Bacillus spp.: enzymatic properties, sequences, and evolutionary relationships. Biochem Biophys Res Commun, 279, 313–9
  • Saittagaroon S, Kawakishi S, Namiki M. (1983). Characterisation of polysaccharides of copra meal. J Sci Food Agric, 34, 855–60
  • Salinardi TC, Rubin KH, Black RM, St-Onge MP. (2010). Coffee mannooligosaccharides, consumed as part of a free-living, weight-maintaining diet, increase the proportional reduction in body volume in overweight men. J Nutr, 140, 1943–8
  • Sandin RL. (1987). Studies on cell adhesion and concanavalin A-induced agglutination of Candida albicans after mannan extraction. J Med Microbiol, 24, 145–50
  • Sang HM, Fotedar R. (2010). Effects of mannan oligosaccharide dietary supplementation on performances of the tropical spiny lobsters juvenile (Panulirus ornatus, Fabricius 1798). Fish Shellfish Immunol, 28, 483–9
  • Scheller HV, Ulvskov P. (2010). Hemicelluloses. Annu Rev Plant Biol, 61, 263–89
  • Schroder R, Atkinson RG, Redgwell RJ. (2009). Re-interpreting the role of endo-β-mannanases as mannan endotransglycosylase/hydrolases in the plant cell wall. Ann Bot, 104, 197–204
  • Schwartz RD, Bodie EA. (1983). Thickening composition from fermented whey. US Patent US 4 399 160
  • Shibata N, Suzuki A, Kobayashi H, Okawa Y. (2007). Chemical structure of the cell-wall mannan of Candida albicans serotype A and its difference in yeast and hyphal forms. Biochem J, 404, 365–72
  • Silva TH, Alves A, Popa EG, et al. (2012). Marine algae sulfated polysaccharides for tissue engineering and drug delivery approaches. Biomatter, 2, 278–89
  • Simoes J, Madureira P, Nunes FM, et al. (2009). Immunostimulatory properties of coffee mannans. Mol Nutr Food Res, 53, 1036–43
  • Sofos JN. (2008). Challenges to meat safety in the 21st century. Meat Sci, 78, 3–13
  • Songsiriritthigul C, Buranabanyat B, Haltrich D, Yamabhai M. (2010). Efficient recombinant expression and secretion of a thermostable GH26 mannan endo-1,4-β-mannosidase from Bacillus licheniformis in Escherichia coli. Microb Cell Fact, 9, 20(1–13)
  • St-Onge MP, Salinardi T, Herron-Rubin K, Black RM. (2012). A weight-loss diet including coffee-derived mannooligosaccharides enhances adipose tissue loss in overweight men but not women. Obesity (Silver Spring), 20, 343–8
  • Sun Y, Cheng J. (2002). Hydrolysis of lignocellulosic materials for ethanol production: a review. Bioresour Technol, 83, 1–11
  • Tai-Nin Chow J, Williamson DA, Yates KM, Goux WJ. (2005). Chemical characterization of the immunomodulating polysaccharide of Aloe vera L. Carbohydr Res, 340, 1131–42
  • Tailford LE, Money VA, Smith NL, et al. (2007). Mannose foraging by Bacteroides thetaiotaomicron: structure and specificity of the β-mannosidase, BtMan2A. J Biol Chem, 282, 11291–9
  • Tailford LE, Offen WA, Smith NL, et al. (2008). Structural and biochemical evidence for a boat-like transition state in β-mannosidases. Nat Chem Biol, 4, 306–12
  • Talbot G, Sygusch J. (1990). Purification and characterization of thermostable β-mannanase and α-galactosidase from Bacillus stearothermophilus. Appl Environ Microbiol, 56, 3505–10
  • Teleman A, Nordstrom M, Tenkanen M, et al. (2003). Isolation and characterization of O-acetylated glucomannans from aspen and birch wood. Carbohydr Res, 338, 525–34
  • Tester R, Al-Ghazzewi F, Shen N, et al. (2012). The use of konjac glucomannan hydrolysates to recover healthy microbiota in infected vaginas treated with an antifungal agent. Benef Microbes, 3, 61–6
  • Timell TE. (1964). Wood hemicelluloses: Part I. In: Melville LW, ed. Advances in carbohydrate chemistry. New York: Academic Press, 247–302
  • Timell TE. (1965). Wood hemicelluloses: Part II. In: Melville LW, ed. Advances in carbohydrate chemistry. New York: Academic Press, 409–83
  • Timell TE. (1967). Recent progress in the chemistry of wood hemicelluloses. Wood Sci Technol, 1, 45–70
  • Torrecillas S, Makol A, Benitez-Santana T, et al. (2011). Reduced gut bacterial translocation in European sea bass (Dicentrarchus labrax) fed mannan oligosaccharides (MOS). Fish Shellfish Immunol, 30, 674–81
  • Torrecillas S, Makol A, Caballero MJ, et al. (2012). Effects on mortality and stress response in European sea bass, Dicentrarchus labrax (L.), fed mannan oligosaccharides (MOS) after Vibrio anguillarum exposure. J Fish Dis, 35, 591–602
  • Torrecillas S, Makol A, Caballero MJ, et al. (2007). Immune stimulation and improved infection resistance in European sea bass (Dicentrarchus labrax) fed mannan oligosaccharides. Fish Shellfish Immunol, 23, 969–81
  • Turner P, Mamo G, Karlsson EN. (2007). Potential and utilization of thermophiles and thermostable enzymes in biorefining. Microb Cell Fact, 6, 9(1–23)
  • Van Dyk JS, Pletschke BI. (2012). A review of lignocellulose bioconversion using enzymatic hydrolysis and synergistic cooperation between enzymes – factors affecting enzymes, conversion and synergy. Biotechnol Adv, 30, 1458–80
  • Viikari L, Alapuranen M, Puranen T, et al. (2007). Thermostable enzymes in lignocellulose hydrolysis. Adv Biochem Eng Biotechnol, 108, 121–45
  • Vocadlo DJ, Davies GJ. (2008). Mechanistic insights into glycosidase chemistry. Curr Opin Chem Biol, 12, 539–55
  • Vuksan V, Jenkins DJ, Spadafora P, et al. (1999). Konjac-mannan (glucomannan) improves glycemia and other associated risk factors for coronary heart disease in type 2 diabetes. A randomized controlled metabolic trial. Diabetes Care, 22, 913–9
  • Wen F, Nair NU, Zhao H. (2009). Protein engineering in designing tailored enzymes and microorganisms for biofuels production. Curr Opin Biotechnol, 20, 412–9
  • Willfor S, Sjoholm R, Laine C, et al. (2003). Characterisation of water-soluble galactoglucomannans from Norway spruce wood and thermomechanical pulp. Carbohydr Polym, 52, 175–87
  • Wolf S, Hematy K, Hofte H. (2012). Growth control and cell wall signaling in plants. Annu Rev Plant Biol, 63, 381–407
  • Wu G, Bryant MM, Voitle RA, Roland DA Sr. (2005). Effects of β-mannanase in corn-soy diets on commercial leghorns in second-cycle hens. Poult Sci, 84, 894–7
  • Yamabhai M, Buranabanyat B, Jaruseranee N, Songsiriritthigul C. (2011). Efficient E. coli expression systems for the production of recombinant β-mannanases and other bacterial extracellular enzymes. Bioeng Bugs, 2, 45–9
  • Yamaura I, Matsumoto T. (1993). Purification and some properties of endo-1,4-β-D-mannanase from a mud snail, Pomacea insularus (de Ordigny). Biosci Biotechnol Biochem, 57, 1316–9
  • Yamaura I, Nozaki Y, Matsumoto T, Kato T. (1996). Purification and some properties of an endo-1,4-β-D-mannanase from a marine mollusc, Littorina brevicula. Biosci Biotechnol Biochem, 60, 674–6
  • Yan X-X, An X-M, Gui L-L, Liang D-C. (2008). From structure to function: Insights into the catalytic substrate specificity and thermostability displayed by Bacillus subtilis mannanase BCman. J Mol Biol, 379, 535–44
  • Yu X, Li Z, Yu M, et al. (2011). Method and preparing glucan and mannan, glucan preparation and mannan preparation produced thereby and use thereof. US Patent 20110045545. PCT/CN2008/073895. USA: Angel Yeast Co., Ltd, Yichang (CN)
  • Zhang X, Rogowski A, Zhao L, et al. (2013). Understanding how the complex molecular architecture of mannan degrading hydrolases contributes to plant cell wall degradation. J Biol Chem, 289, 2002–12
  • Zhang Y, Ju J, Peng H, et al. (2008). Biochemical and structural characterization of the intracellular mannanase AaManA of Alicyclobacillus acidocaldarius reveals a novel glycoside hydrolase family belonging to clan GH-A. J Biol Chem, 283, 31551–8
  • Zou XT, Qiao XJ, Xu ZR. (2006). Effect of β-mannanase (Hemicell) on growth performance and immunity of broilers. Poult Sci, 85, 2176–9

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