[1] Himmel ME, Ding SY, Johnson DK, et al. Biomass recalcitrance: engineering plants and enzymes for biofuels production[J]. Science, 2007, 315(5813):804-807.
[2] 莫建初. 黑翅土白蚁纤维素酶开发利用前景[C]. 城市害虫综合治理进展. 全国第七届城市昆虫学术研讨会论文集(资源昆虫), 诸暨, 2005. 杭州:浙江大学出版社, 2005:161-165.
[3] Prins RA, Kreulen DA. Comparative aspects of plant cell wall degradation in insects[J]. Animal Feed Sci Technol, 1991, 32(1/3):101-118.
[4] 龙海涛. 白蚁纤维素酶研究进展[J]. 现代农业科技, 2012(21):235-236.
[5] Watanabe H, Noda H, Tokuda G, et al. A cellulase gene of termite origin[J]. Nature, 1998, 394(6691):330-331.
[6] Tokuda G, Lo N, Watanabe H. Metazoan cellulase genes from termites: intron/exon structures and sites of expression[J]. Biochim Biophys Acta, 1999, 1447(2/3):146-159.
[7] Tokuda G, Miyagi M, Makiya H, et al. Digestive β?gluosidases from the wood?feeding higher termite, Nastitermes takasagoensis: intestinal distribution, molecular characterization, and alteration in sites of expression[J]. Insect Biochem Mol Biol, 2009, 39(12): 931-937.
[8] Zhou X, Wheeler MM, Oi FM, et al. RNA interference in the termite Reticulitermes flavipes through ingestion of double?stranded RNA[J]. Insect Biochem Mol Biol, 2008, 38(8):805-815.
[9] Mika N, Zorn H, Rühl M. Insect?Derived Enzymes: A Treasure for Industrial Biotechnology and Food Biotechnology[J/OL]. Adv Biochem Eng Biotechnol, 2013, 136:1-17.[2013-07-25]. http://www.ncbi.nlm.nih.gov/pubmed/23881056.
[10] Watanabe H, Tokuda G. Cellulolytic systems in insects[J]. Annu Rev Entomol, 2010(55):609-632.
[11] Zhang DH, Lax AR, Henrissat B, et al. Carbohydrate?active enzymes revealed in Coptotermes formosanus (Isoptera: Rhinotermitidae) transcriptome[J]. Insect Mol Biol, 2012, 21(2): 235-245.
[12] Yamada A, Inoue T, Wiwatwitaya D, et al. Carbon mineralization by termites in tropical forests, with emphasis on fungus combs[J]. Ecol Res, 2005, 20(4):453-460.
[13] Yuki M, Moriya S, Inoue T, et al. Transcriptome analysis of the digestive organs of Hodotermopsis sjostedti, a lower termite that hosts mutualistic microorganisms in its hindgut[J]. Zool Sci, 2008, 25(4):401-406.
[14] Tokuda G, Lo N, Watanabe H, et al. Major alteration of the expression site of endogenous cellulases in members of an apical termite lineage[J]. Mol Ecol, 2004, 13(10):3219-3228.
[15] Tokuda G, Watanabe H, Hojo M, et al. Cellulolytic environment in the midgut of the wood?feeding higher termite Nasutitermes takasagoensis[J]. J Insect Physiol, 2012, 58(1):147-154.
[16] Wu Y, Chi S, Yun C, et al. Molecular cloning and characterization of an endogenous digestive β?glucosidase from the midgut of the fungus?growing termite Macrotermes barneyi[J]. Insect Mol Biol, 2012, 21(6):604-614.
[17] Ni JF, Tokuda G. Lignocellulose?degrading enzymes from termites and their symbiotic microbiota[J]. Biotechnol Advances, 2013, 31(6):838-850.
[18] Ni JF, Takehara M, Watanabe H. Heterologous overexpression of a mutant termite cellulase gene in Escherichia coli by DNA shuffling of four orthologous parental cDNAs[J]. Biosci Biotechnol Biochem, 2005, 69(9):1711-1720.
[19] Zhang DH, Lax AR, Raina AK, et al. Differential cellulolytic activity of native?form and C?terminal tagged?form cellulase derived from Coptotermes formosanus in E. coli[J]. Insect Biochem Mol Biol, 2009, 39(8):516-522.
[20] Zhang DH, Lax AR, Bland JM, et al. Characterization of a new endogenous endo-β-1, 4-glucanase of Formosan subterranean termite (Coptotermes formosanus)[J]. Insect Biochem Mol Biol, 2011, 41(4):211-218.
[21] 刘慧琳, 曹以诚, 杨磊, 等. 白蚁纤维素酶结构域重组研究[J]. 广东农业科学, 2011, 38(9):152-154.
[22] Zhou X, Kovaleva ES, Scharf DW, et al. Production and characterization of a recombinant β-1, 4-endoglucanase (glycohydrolase family 9) from the termite Reticulitermes flavipes[J]. Arch Insect Biochem Physiol, 2010, 74(3):147-162.
[23] 陈春润. 黑翅土白蚁体内纤维素酶编码基因的克隆与表达[D]. 杭州:浙江大学, 2010.
[24] Hirayama K, Watanabe H, Tokuda G, et al. Purification and characterization of termite endogenous β-1, 4-endoglucanases produced in Aspergillus oryzae[J]. Biosci Biotechnol Biochem, 2010, 74(8):1680-1686.
[25] Uchima CA, Arioka M. Expression and one?step purification of recombinant proteins using an alternative episomal vector for the expression of N?tagged heterologous proteins in Pichia pastoris[J]. Biosci Biotechnol Biochem, 2012, 76(2):368-371.
[26] 秦国梅, 张建珍, 韦宇拓, 等. 白蚁内切-β-1, 4-葡聚糖酶基因的克隆、表达、纯化及酶学性质的研究[J]. 工业微生物, 2009, 39(5):30-37.
[27] Tokuda G, Saito H, Watanabe H. A digestive β?glucosidase from the salivary glands of the termite, Neotermes koshunensis (Shiraki): distribution, characterization and isolation of its precursor cDNA by 5′- and 3′-RACE amplifications with degenerate primers[J]. Insect Biochem Mol Biol, 2002, 32(12):1681-1689.
[28] Ni JF, Tokuda G, Takehara M, et al. Heterologous expression and enzymatic characterization of beta?glucosidase from the drywood?eating termite, Neoterme koshunensis[J]. Appl Entomol Zool, 2007, 42(3):457-463.
[29] Zhang DH, Allen AB, Lax AR. Functional analyses of the digestiveβ?glucosidase of Formosan subterranean termites (Coptotermes formosanus)[J]. J Insect Physiol, 2012, 58(1):205-210.
[30] Uchima CA, Tokuda G, Watanabe H, et al. Heterologous expression and characterization of a glucose?stimulated β?glucosidase from the termite Neotermes koshunensisin Aspergillus oryzae[J]. Appl Microbiol Biotechnol, 2011, 89(6):1761-1771.
[31] Scharf ME, Kovaleva ES, Jadhao S, et al. Functional and translational analyses of a beta?glucosidase gene (glycosyl hydrolase family 1) isolated from the gut of the lower termite Reticulitermes flavipes[J]. Insect Biochem Mol Biol, 2010, 40(8): 611-620.
[32] Scharf ME, Karl ZJ, Sethi A, et al. Multiple levels of synergistic collaboration in termite lignocellulose digestion[J]. PLoS One, 2011, 6(7):e21709.
[33] Uchima CA, Tokuda G, Watanabe H, et al. Heterologous expression in Pichia pastoris and characterization of an endogenous thermostable and high glucose?tolerant β?glucosidase from the termite Nasutitermes takasagoensis[J]. Appl Environ Microbiol, 2012, 78(12):4288-4293. |