Record 5196 View: Standard | Glossary HistCite Guide |
Author(s): Prade RA
Title: Xylanases: From biology to biotechnology
Source: BIOTECHNOLOGY AND GENETIC ENGINEERING REVIEWS, VOL 13 13: 101-131
Date: 1996
Document Type: Book in series : Review
DOI:
Language: English
Comment:
Address:
Reprint: Prade, RA, OKLAHOMA STATE UNIV,DEPT MICROBIOL & MOL GENET,STILLWATER,OK
74078. E-mail:
Abstract: Xylan is the main carbohydrate found in the hemicellulosic fraction of plant tissues and accounts for one third of all renewable organic carbon available on earth. Xylanase, the major component of an enzymatic consortium, acts in nature by depolymerizing xylan molecules into monomeric pentosan units that are used by bacterial and fungal populations as a primary carbon source. Xylanase producers have been isolated from all ecological niches where plant material is deposited, and microorganisms often contain multiple loci encoding overlapping xylanolytic functions. The numerical excess of genes and the extensive sharing of structural features within beta-glycanase families suggests that extensive gene duplication and conversion events have occurred during xylanase evolution. Hydrolysis of beta-glycosidic linkages is sponsored by a general acid catalytic reaction common to all glycanases, whereas substrate recognition is specified by subsites that interact with adjacent glycosyl units. Under natural conditions xylanases are inducible by the products of their own action and subject to carbon catabolite repression. Bleaching paper pulps with xylanases is the first successful commercial application for these enzymes. The recovery of cellulosic textile fibers is the next logical application and bioconversion of biomass into fuels and chemicals, remains the ultimate target. Recent developments have shown that metabolic pathways can be transferred from one organism to another and proteins can be modified to gain conformational stability, suggesting that naturally occurring systems can be custom engineered to the situation in the fermentation tank. Thus, biotechnologies developed to transform biomass into marketable products that gradually substitute materials derived from non-renewable resources are becoming commercially worthwhile.
Cited References: ADAMS MWW, 1993, ANNU REV MICROBIOL, V47, P627 AKIN DE, 1988, APPL ENVIRON MICROB, V54, P1117 ALI BRS, 1995, FEMS MICROBIOL LETT, V125, P15 ALLEN JD, 1978, BIOCHEMISTRY-US, V17, P2338 ALTERTHUM F, 1989, APPL ENVIRON MICROB, V55, P1943 APEL PC, 1993, MOL PLANT MICROBE IN, V6, P467 ARCHIBALD FS, 1992, HOLZFORSCHUNG, V46, P305 ARHIN FF, 1994, J BACTERIOL, V16, P4924 BABA T, 1994, APPL ENVIRON MICROB, V60, P2252 BAILEY MJ, 1989, APPL MICROBIOL BIOT, V30, P5 BARBOSA MDS, 1992, APPL ENVIRON MICROB, V58, P1382 BAUCHOP T, 1989, BIOSYSTEMS, V23, P53 BAYER EA, 1986, J BACTERIOL, V167, P828 BECK EA, 1993, BIOCONVERSION FOREST, V9, P211 BEGUIN P, 1990, ANNU REV MICROBIOL, V44, P219 BEGUIN P, 1992, FEMS MICROBIOL LETT, V100, P523 BEGUIN P, 1994, FEMS MICROBIOL REV, V13, P25 BIELY P, 1980, EUR J BIOCHEM, V108, P313 BIELY P, 1980, EUR J BIOCHEM, V108, P323 BIELY P, 1981, EUR J BIOCHEM, V119, P559 BIELY P, 1981, EUR J BIOCHEM, V119, P565 BIELY P, 1983, BIOCHIM BIOPHYS ACTA, V743, P155 BIELY P, 1984, FEBS LETT, V178, P323 BIELY P, 1984, J BACTERIOL, V160, P408 BIELY P, 1985, TRENDS BIOTECHNOL, V3, P286 BIELY P, 1986, BIO-TECHNOL, V4, P731 BIELY P, 1993, BIOCHIM BIOPHYS ACTA, V1162, P246 BIELY P, 1993, HEMICELLULOSE HEMICE, P29 BLACK GW, 1994, BIOCHEM J, V299, P381 BLACK GW, 1995, BIOCHEM J, V307, P191 BLAZEJ A, 1993, PHYTOMASS RAW MAT CH BORNEMAN WS, 1989, APPL ENVIRON MICROB, V55, P1066 BORNEMAN WS, 1990, APPL MICROBIOL BIOT, V33, P345 BORNEMAN WS, 1992, APPL ENVIRON MICROB, V58, P3762 BOTHAST RJ, 1994, BIOTECHNOL LETT, V16, P401 BRAY MR, 1990, BIOCHEM J, V270, P91 BRAY MR, 1992, EUR J BIOCHEM, V204, P191 BRAY MR, 1994, EUR J BIOCHEM, V219, P821 BUCHERT J, 1992, APPL MICROBIOL BIOT, V37, P825 BURCHHARDT G, 1992, APPL ENVIRON MICROB, V58, P1128 CARTER GL, 1992, MOL MICROBIOL, V6, P2167 CHAUVAUX S, 1992, J BIOL CHEM, V267, P4472 CHIPMAN DM, 1969, SCIENCE, V165, P454 CLAEYSSENS M, 1992, PROTEIN SCI, V1, P1293 CLARKE AJ, 1985, EUR J BIOCHEM, V149, P233 COUTINHO JB, 1992, MOL MICROBIOL, V6, P1243 CUBERO B, 1994, EMBO J, V13, P407 DEAN JFD, 1992, HOLZFORSCHUNG, V46, P135 DEBEIRE P, 1990, EUR J BIOCHEM, V187, P573 DEFAYE J, 1992, CARBOHYD RES, V228, P47 DEGRAAFF LH, 1994, MOL MICROBIOL, V12, P479 DEISING H, 1991, MOL BIOL FILAMENTOUS, P27 DEREWENDA U, 1994, J BIOL CHEM, V269, P20811 ELGOGARY S, 1989, P NATL ACAD SCI USA, V86, P6138 ERIKSSON KE, 1974, CAN J MICROBIOL, V20, P371 ERIKSSON KE, 1978, BIOTECHNOL BIOENG, V70, P317 ERIKSSON KEL, 1989, ENZYME SYSTEMS LIGNO, P101 ERIKSSON KEL, 1990, MICROBIAL ENZYMATIC ERIKSSON KEL, 1990, WOOD SCI TECHNOL, V24, P79 ERIKSSON O, 1980, WOOD SCI TECHNOL, V14, P267 FARBER GK, 1990, TRENDS BIOCHEM SCI, V15, P228 FAULDS CB, 1991, J GEN MICROBIOL, V137, P2339 FELIX CR, 1993, ANNU REV MICROBIOL, V47, P791 FERREIRA LMA, 1990, BIOCHEM J, V269, P261 FERREIRA LMA, 1993, BIOCHEM J 2, V294, P349 FLINT HJ, 1993, J BACTERIOL, V175, P2943 FOONG FCF, 1992, J BACTERIOL, V174, P1403 FRANCK RW, 1992, BIOORG CHEM, V20, P77 GABORIAUD C, 1987, FEBS LETT, V224, P149 GARTNER D, 1988, J BACTERIOL, V170, P3102 GEBLER J, 1992, J BIOL CHEM, V267, P12559 GILBERT HJ, 1987, MOL GEN GENET, V210, P551 GILBERT HJ, 1988, J GEN MICROBIOL, V134, P3239 GILBERT HJ, 1990, MOL MICROBIOL, V4, P759 GILBERT HJ, 1992, MOL MICROBIOL, V6, P2065 GILBERT HJ, 1993, J GEN MICROBIOL, V139, P187 GILKES NR, 1988, J BIOL CHEM, V263, P10401 GILKES NR, 1989, J BIOL CHEM, V264, P17802 GILKES NR, 1991, MICROBIOL REV, V55, P303 GODDEN B, 1989, J GEN MICROBIOL, V135, P285 GOHEEN DW, 1981, CHEM ED, V58, P465 GOMES J, 1993, APPL MICROBIOL BIOT, V39, P700 GOSALBES MJ, 1991, J BACTERIOL, V173, P7705 HAHNHAGERDAL B, 1991, APPL BIOCHEM BIOTECH, V29, P131 HAHNHAGERDAL B, 1994, ENZYME MICROB TECH, V16, P933 HALL J, 1989, MOL MICROBIOL, V3, P1211 HAYN M, 1993, BIOCONVERSION FOREST, V9, P33 HAZLEWOOD GP, 1988, FEMS MICROBIOL LETT, V51, P231 HAZLEWOOD GP, 1992, J APPL BACTERIOL, V72, P244 HEILER S, 1993, MYCOL RES, V97, P77 HENRISSAT B, 1989, GENE, V81, P83 HENRISSAT B, 1993, BIOCHEM J, V293, P781 HESPELL RB, 1990, J DAIRY SCI, V73, P3013 HOJ PB, 1989, J BIOL CHEM, V264, P4939 HRMOVA M, 1986, ARCH MICROBIOL, V144, P307 HRMOVA M, 1989, ENZYME MICROB TECH, V11, P610 HRMOVA M, 1991, J GEN MICROBIOL, V137, P541 HUECK CJ, 1995, MOL MICROBIOL, V15, P395 HURST PL, 1977, BIOCHEM J, V167, P549 JEFFRIES TW, 1994, ENZYME MICROB TECH, V16, P922 JENSEN RA, 1976, ANNU REV MICROBIOL, V30, P409 KATO K, 1981, ENCY PLANT PHYSL B, V13, P29 KATO Y, 1985, CARBOHYD RES, V137, P139 KELLETT LE, 1990, BIOCHEM J, V272, P369 KESKAR SS, 1992, BIOCHEM J, V281, P601 KLING SH, 1987, BIOTECHNOL BIOENG, V29, P1035 KLUEPFEL D, 1990, BIOCHEM J, V267, P45 KO EP, 1992, BIOCHEM J 1, V288, P117 KORMELINK FJM, 1991, APPL MICROBIOL BIOT, V35, P753 KRUGER S, 1993, J GEN MICROBIOL, V139, P2047 KUBBICEK CP, 1993, ENZYME MICROBIAL TEC, V15, P90 KUBICEK CP, 1993, J BIOL CHEM, V268, P19364 KULMBURG P, 1993, MOL MICROBIOL, V7, P847 LAMED R, 1987, BIOCH GENETICS CELLU, P101 LEE YE, 1993, J BACTERIOL, V175, P5890 LINDNER C, 1994, MICROBIOL-UK, V140, P753 LINKO M, 1989, ENZYME SYSTEMS LIGNO, P331 LOWE SE, 1987, APPL ENVIRON MICROB, V53, P1216 LUTHI E, 1990, APPL ENVIRON MICROB, V56, P1017 MACKENZIE CR, 1987, APPL ENVIRON MICROB, V53, P2835 MACKENZIE CR, 1989, ARCH MICROBIOL, V152, P377 MACLEOD AM, 1994, BIOCHEMISTRY-US, V33, P6371 MCCARTER JD, 1994, CURR OPIN STRUC BIOL, V4, P885 MCNEIL M, 1984, ANNU REV BIOCHEM, V53, P625 MENDGEN K, 1993, NEW PHYTOL, V124, P193 MENG MH, 1993, BIO-TECHNOL, V11, P1157 MIAO SC, 1994, BIOCHEMISTRY-US, V33, P7027 MILAGRES AMF, 1993, ENZYME MICROB TECH, V15, P248 MILAGRES AMF, 1994, ENZYME MICROB TECH, V16, P627 MILLWARDSADLER SJ, 1994, MOL MICROBIOL, V11, P375 MINORU F, 1992, ULTRASTRUCTURE FORMA MONDOU F, 1986, GENE, V49, P323 MORAG E, 1990, J BACTERIOL, V172, P6098 MOREAU A, 1994, BIOCHEM J, V302, P291 MOREAU A, 1994, EUR J BIOCHEM, V219, P261 MOROSOLI R, 1986, BIOCHIM BIOPHYS ACTA, V870, P473 MOUNTFORT DO, 1989, APPL ENVIRON MICROB, V55, P1016 NORTHCOTE DH, 1972, ANNU REV PLANT PHYS, V23, P113 NORTHCOTE DH, 1989, ACS SYM SER, V399, P1 OHTA K, 1990, APPL ENVIRON MICROB, V56, P463 OHTA K, 1991, APPL ENVIRON MICROB, V57, P2810 OHTA K, 1991, APPL ENVIRON MICROB, V57, P893 OKADA H, 1989, ADV PROTEIN DESIGN, V12, P81 OKU T, 1993, FEBS LETT, V334, P296 OVEREND RP, 1991, ACS SYM SER, V460, P270 PAICE MG, 1984, BIO-TECHNOL, V2, P535 PAICE MG, 1984, J WOOD CHEM TECHNOL, V4, P187 PAICE MG, 1992, ENZYME MICROB TECHNO, V14, P272 POOLE DM, 1991, BIOCHEM J, V279, P787 POOLE DM, 1993, FEMS MICROBIOL LETT, V106, P77 POUTANEN K, 1987, J BIOTECHNOL, V6, P49 POUTANEN K, 1990, APPL MICROBIOL BIOT, V33, P506 PREEZ JC, 1994, ENZYME MICROBIAL TEC, V16, P944 PULS J, 1987, ENZYME MICROB TECH, V9, P83 RAMOS LP, 1992, APPL BIOCHEM BIOTECH, V34, P37 ROBYT JF, 1970, J BIOL CHEM, V245, P3917 SADDLER JN, 1992, BIOMASS BIOENERG, V2, P229 SADDLER JN, 1993, BIOTECHNOLOGY AGR SE, V9, P73 SAKKA K, 1993, BIOSCI BIOTECH BIOCH, V57, P273 SCHELL DJ, 1991, APPL BIOCHEM BIOTECH, V28, P87 SCHNEIDER H, 1989, CRIT REV BIOTECHNOL, V9, P1 SCOTTCRAIG JS, 1990, PLANT CELL, V2, P1191 SELVENDRAN RR, 1985, J CELL SCI S, V2, P51 SENIOR DJ, 1992, J PULP PAP SCI, V18, P165 SENIOR DJ, 1992, TAPPI J, V75, P125 SHARECK F, 1991, GENE, V107, P75 SHOSEYOV O, 1990, P NATL ACAD SCI USA, V87, P2192 SINNOTT ML, 1990, CHEM REV, V90, P1171 SMITH MM, 1983, CARBOHYD RES, V118, P65 STAHL DJ, 1992, PLANT CELL, V4, P621 STAHLBERG J, 1988, EUR J BIOCHEM, V173, P179 STEINER W, 1987, BIOTECHNOL BIOENG, V30, P169 STERNBERG D, 1979, J BACTERIOL, V139, P761 STRAUSS J, 1995, FEBS LETT, V376, P103 SVENSSON B, 1993, J BIOTECHNOL, V29, P1 TAKAHASHI DF, 1994, BIOTECHNOL LETT, V16, P747 TAVOIBILOV IM, 1981, APPL BIOCHEM MICROB, V17, P320 TEUNISSEN MJ, 1993, ANTON LEEUW INT J G, V63, P63 TIMELL TE, 1967, WOOD SCI TECHNOL, V1, P45 TOLAN JS, 1992, PULP PAP-CANADA, V93, P39 TOMME P, 1994, PROTEIN ENG, V7, P117 TORRONEN A, 1993, FEBS LETT, V321, P135 TORRONEN A, 1993, J MOL BIOL, V233, P313 TORRONEN A, 1994, EMBO J, V13, P2493 TORRONEN A, 1995, BIOCHEMISTRY-US, V34, P847 TSUJIBO H, 1992, APPL ENVIRON MICROB, V58, P371 TULL D, 1991, J BIOL CHEM, V266, P15621 VIIKARI L, 1990, BIOTECHNOLOGY PULP P, P145 VIIKARI L, 1991, PAP PUU-PAP TIM, V73, P384 VIIKARI L, 1993, BIOTECHNOLOGY AGR, V9, P131 VRSANSKA M, 1990, CARBOHYD RES, V206, P251 WAKARCHUK WW, 1994, PROTEIN ENG, V7, P1379 WALLACE RJ, 1992, FEMS MICROBIOL LETT, V100, P529 WARARCHUK WW, 1994, PROTEIN SCI, V3, P467 WHITEHEAD TR, 1990, J BACTERIOL, V172, P2408 WHITEHEAD TR, 1991, APPL ENVIRON MICROB, V57, P277 WILKIE KCB, 1979, ADV CARBOHYD CHEM BI, V36, P215 WONG KKY, 1988, MICROBIOL REV, V52, P305 WU JHD, 1988, BIOCHEMISTRY-US, V27, P1703 WUBAH DA, 1993, CRIT REV MICROBIOL, V19, P99 XUE GP, 1992, J GEN MICROBIOL, V138, P2397 YAGUCHI M, 1983, BIOCHEM BIOPH RES CO, V116, P408 YANG JL, 1992, HOLZFORSCHUNG, V46, P481 ZHANG JX, 1992, MOL MICROBIOL, V6, P1013 ZHANG M, 1994, MOL GEN GENET, V245, P269 ZHANG M, 1995, SCIENCE, V267, P240 ZHU H, 1994, J BACTERIOL, V176, P3885 |