[1] YIN Yanbin, MOHNEN D, GELINEO-ALBERSHEIM, et al. Glycosyltransferases of the GT8 Family[J]. Annu Plant Rev, 2011, 41:167-172.
[2] LAIRSON LL, HENRISSAT B, DAVIES GJ, et al. Glycosyltransferases:structures, functions, and mechanisms[J]. Annu Rev Biochem, 2008, 77:521-555.
[3] LAO J, OIKAWA A, BROMLEY J R, et al. The plant glycosyltransferase clone collection for functional genomics[J]. Plant J, 2014, 79(3):517-529.
[4] VOGT T, JONES P. Glycosyltransferases in plant natural product synthesis:characterization of a supergene family[J]. Trends Plant Sci, 2000, 5(9):380-386.
[5] CAMPBELL J A, DAVIES G J, BULONE V, et al. A classification of nucleotide-diphospho-sugar glycosyltransferases based on amino acid sequence similarities[J]. Biochem J, 1997, 326(3):929-939.
[6] TIWARI P, SANGWAN R S, SANGWAN N S. Plant secondary metabolism linked glycosyltransfrases:an update on expanding knowledge and scopes[J]. Biotechnol Adv, 2016, 34(5):714-739.
[7] PALANIYANDI S A, CHUNG G, KIM S H, et al. Molecular cloning and characterization of the ABA-specific glucosyltransferase gene from bean (Phaseolus vulgaris L.)[J]. J Plant Physiol, 2015, 178(2):1-9.
[8] STERLING J D, ATMODJO M A, INWOOD S E, et al. Functional identification of an Arabidopsis pectin biosynthetic homogalacturonan galacturonosyltransferase[J]. Proc Nat Acad Sci USA, 2006, 103(13):5236-5241.
[9] BROWN D M, GOUBET F, WONG V W, et al. Comparison of five xylan synthesis mutants reveals new insight into the mechanisms of xylan synthesis[J]. Plant J, 2007, 52(6):1154-1168.
[10] RENNIE E A, HANSEN S F, BAIDOO E E, et al. Three members of the Arabidopsis glycosyltransferase family 8 are xylan glucuronosyltransferases[J]. Plant Physiol, 2012, 159(4):1408-1417.
[11] COSGROVE D J. Growth of the plant cell wall[J]. Nat Rev Mol Cell Biol, 2005, 6(11):850-861.
[12] PEAUCELLE A, BRAYBROOK S, HÖFTE H. Cell wall mechanics and growth control in plants:the role of pectins revisited[J]. Front Plant Sci, 2012, 3:121. doi:10.338g/fpls. 2012. 00121.
[13] CHATTERJEE M, BERBEZY P, VYAS D, et al. Reduced expression of a protein homologous to glycogenin leads to reduction of starch content in Arabidopsis leaves[J]. Plant Sci, 2005, 168(2):501-509.
[14] NISHIZAWA-YOKOI A, YABUTA Y, SHIGEOKA S. Galactinol and raffinose constitute a novel function to protect plants from oxidative damage[J]. Plant Physiol, 2008, 147(3):1251-1263.
[15] LAO N T, LONG D, KIANG S, et al. Mutation of a family 8 glycosyltransferase gene alters cell wall carbohydrate composition and causes a humidity-sensitive semi-sterile dwarf phenotype in Arabidopsis[J]. Plant Mol Biol, 2003, 53(5):687-701.
[16] COUTINHO P M, HENRISSAT B. Annotating Carbohydrateactive Enzymes in Plant Genomes:Present Challenges[M]. Oxford:Wiley-Blackwell Publishing Ltd., 2010:93-107.
[17] LEE C H, ZHONG R Q, RICHARDSON E A, et al. The PARVUS gene is expressed in cells undergoing secondary wall thickening and is essential for glucuronoxylan biosynthesis[J]. Plant Cell Physiol, 2007, 48(12):1659-1672.
[18] KONG Yingzhen, ZHOU Gongke, AVCI U, et al. Two poplar glycosyltransferase genes, PdGATL1.1 and PdGATL1.2, are functional orthologs to PARVUS/AtGATL1 in Arabidopsis[J]. Mol Plant, 2009, 2(5):1040-1050.
[19] LIU Jinlong, LUO Mansi, YAN Xin, et al. Characterization of genes coding for galacturonosyltransferase-like (GATL) proteins in rice[J]. Genes Genom, 2016, 38(10):917-929.
[20] YIN Yanbin, CHEN Huiling, HAHN M G, et al. Evolution and function of the plant cell wall synthesis-related glycosyltransferase family 8[J]. Plant Physiol, 2010, 153(4):1729-1746.
[21] ULVSKOV P. Annual Plant Reviews, Plant Polysaccharides:Biosynthesis and Bioengineering[M]. New Jersey:John Wiley & Sons, 2011. DOI:10.1002/9781444391015
[22] 魏晓玲, 程龙军, 窦锦青, 等.巨桉EgrDREB2A基因结构及表达特性分析[J].林业科学, 2015, 51(2):80-89.

WEI Xiaoling, CHENG Longjun, DOU Jinqing, et al. The structure and expression characteristics of EgrDREB2A gene in Eucalyputs grandis[J]. Sci Silv Sin, 2015, 51(2):80-89.
[23] 王亚红, 刘缙, 王玉国.高质量提取银杏种仁RNA的改良方法[J].中国农学通报, 2010, 26(15):48-52.

WANG Yahong, LIU Jin, WANG Yuguo. An improved method for RNA isolation from seeds of Ginkgo biloba L.[J]. Chin Agric Sci Bull, 2010, 26(15):48-52.
[24] KONG Yingzhen, ZHOU Gongke, YIN Yanbin, et al. Molecular analysis of a family of Arabidopsis genes related to galacturonosyl transferases[J]. Plant Physiol, 2011, 155(4):1791-1805.
[25] KONG Yingzhen, ZHOU Gongke, ABDEEN A A, et al. GALACTURONOSYLTRANSFERASE-LIKE5 is involved in the production of Arabidopsis seed coat mucilage[J]. Plant Physiol, 2013, 163(3):1203-1217.
[26] TENHAKEN R. Cell wall remodeling under abiotic stress[J]. Front Plant Sci, 2015, 5:771. doi:10.338g/fpls. 2014. 00771.
[27] QU Tangdong, LIU Rugao, WANG Weilin, et al. Brassinosteroids regulate pectin methylesterase activity and AtPME41 expression in Arabidopsis under chilling stress[J]. Cryobiology, 2011, 63(2):111-117.
[28] DOMON J M, BALDWIN L, ACKET S, et al. Cell wall compositional modifications of Miscanthus ecotypes in response to cold acclimation[J]. Phytochemistry, 2013, 85(2):51-61.
[29] LEUCCI M R, LENUCCI M S, PIRO G, et al. Water stress and cell wall polysaccharides in the apical root zone of wheat cultivars varying in drought tolerance[J]. J Plant Physiol, 2008, 165(11):1168-1180.
[30] PAULY M, KEEGSTRA K. Cell-wall carbohydrates and their modification as a resource for biofuels[J]. Plant J, 2008, 54(4):559-568.
[31] le GALL H, PHILIPPE F, DOMON J M, et al. Cell wall metabolism in response to abiotic stress[J]. Plants, 2015, 4(1):112-166.
[32] GACHON C M M, LANGLOIS-MEURINNE M, SAINDRENAN P. Plant secondary metabolism glycosyltransferases:the emerging functional analysis[J]. Trends Plant Sci, 2005, 10(11):542-549.
[33] BEVERIDGE C A, MURFET I C, KERHOAS L, et al. The shoot controls zeatin riboside export from pea roots:evidence from the branching mutant rms4[J]. Plant J, 1997, 11(2):339-345.
[34] DONG Ting, XU Zhengyi, PARK Y M, et al. Abscisic acid uridine diphosphate glucosyltransferases play a crucial role in abscisic acid homeostasis in Arabidopsis[J]. Plant Physiol, 2014, 165(1):277-289.
[35] RIEMANN M, DHAKAREY R, HAZMAN M, et al. Exploring jasmonates in the hormonal network of drought and salinity responses[J]. Front Plant Sci, 2015, 6:1077. doi:10.3389/fpls.2015.01077.