Acta Agron Sin ›› 2014, Vol. 40 ›› Issue (03): 390-396.doi: 10.3724/SP.J.1006.2014.00390
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
XU Wen-Ting,WANG Cheng,XU Xiao-Yang,NIU Er-Li,CAI Cai-Ping,GUO Wang-Zhen*
| [1]Sturm A, Tang G Q. The sucrose-cleaving enzymes of plants and crucial for development, growth and carbon partitioning. Trends Plant Sci, 1999, 4: 401–407[2]Roitsch T, González M C. Function and regulation of plant invertases: sweet sensations. Trends Plant Sci, 2004, 9: 606–613[3]Davies C, Robinson S P. Sugar accumulation in grape berries: cloning of two putative vacuolar invertase cDNAs and their expression in grapevine tissues. Plant Physiol, 1996, 111: 275–283[4]Greiner S, Rausch T, Sonnewald U, Herbers K. Ectopic expression of a tobacco invertase inhibitor homolog prevents cold-induced sweetening of potato tubers. Nat Biotechnol, 1999, 17: 708–711[5]Klann E M, Chetelat R T, Bennett A B. Expression of acid invertase gene controls sugar composition in tomato (Lycopersicon) fruit. Plant Physiol, 1993, 103: 863–870[6]Ruan Y L, Jin Y, Yang Y J, Li G J, Boyer J S. Sugar input, metabolism, and signaling mediated by invertase: roles in development, yield potential, and response to drought and heat. Mol Plant, 2010, 3: 942–955[7]Kohorn B D, Kobayashi M, Johansen S, Riese J, Huang LF, Koch K, Fu S, Dotson A, Byers N. An Arabidopsis cell wall-associated kinase required for invertase activity and cell growth. Plant J, 2006, 46: 307–316[8]Roitsch T, González M C. Function and regulation of plant invertases: sweet sensations. Trends Plant Sci, 2004, 9: 606–613[9]Wind J, Smeekens S, Hanson J. Sucrose: metabolite and signaling molecule. Phytochemistry, 2010, 71: 1610–1614[10]Basra A S, Malik C. Development of the cotton fiber. Int Rev Cytol, 1984, 89: 65–113[11]Kim H J, Triplett B A. Cotton fiber growth in planta and in vitro. Models for plant cell elongation and cell wall biogenesis. Plant Physiol, 2001, 127: 1361–1366[12]Wang L, Li X R, Lian H, Ni D A, He Y K, Chen X Y, Ruan Y L. Evidence that high activity of vacuolar invertase is required for cotton fiber and Arabidopsis root elongation through osmotic dependent and independent pathways, respectively. Plant Physiol, 2010, 154: 744–756[13]Taliercio E, Scheffler J, Scheffler B. Characterization of two cotton (Gossypium hirsutum L.) invertase genes. Mol Biol Rep, 2010, 37: 3915–3920[14]Eddy S R. Accelerated profile HMM searches. PLoS Comput Biol, 2011, 7: e1002195[15]武耀廷, 刘进元. 一种高效提取棉花不同组织总RNA的热硼酸改良法. 棉花学报, 2004, 16(2): 67–71Wu Y T, Liu J Y. A modified hot borate method for efficient isolation of total RNA from different cotton tissues. Cotton Sci, 2004, 16(2): 67–71 (in Chinese with English abstract)[16]蒋建雄, 张天真. 利用CTAB/酸酚法提取棉花组织总RNA. 棉花学报, 2003, 15: 166–167 Jiang J X, Zhang T Z. Extraction of total RNA in cotton tissues with CTAB-acidic phenolic method. Cotton Sci, 2003, 15: 166–167 (in Chinese with English abstract) [17]Paterson A H, Brubaker C L, Jonathan F. Rapid method for extraction of cotton (Gossypium spp.) genomic DNA suitable for RFLP or PCR analysis. Plant Mol Biol Rep, 1993, 11: 122–127[18]Pfaffl M W. A new mathematical model for relative quantification in real-time RT-PCR. Nucl Acids Res, 2001, 29: e45[19]Zhao L, Lv Y D, Cai C P, Tong X C, Chen X D, Zhang W, Du H, Guo X H, Guo W Z. Toward allotetraploid cotton genome assembly: integration of a high-density molecular genetic linkage map with DNA sequence information. BMC Genomics, 2012, 13: 539[20]Wang C, Zhang T Z, Guo W Z. The im mutant gene negatively affects many aspects of fiber quality traits and lint percentage in cotton. Crop Sci, 2013, 53(1): 27–37[21]Ross H A, Davies H V, Burch L R, Viola R, McRae D. Developmental changes in carbohydrate content and sucrose degrading enzymes in tuberising stolons of potato (Solanum tuberosum). Physiol Plant, 1994, 90: 748–756[22]Tang G Q, Luscher M, Sturm A. Antisense repression and vacuolar and cell wall invertase in transgenic carrot alters early plant development and sucrose partitioning. Plant Cell, 1999, 11: 177–189[23]Andersen M N, Asch F, Wu Y, Jensen C R, Naested H, Mogensen V O, Koch K E. Soluble invertase expression is an early target of drought stress during the critical, abortion-sensitive phase of young ovary development in maize. Plant Physiol, 2002, 130: 591–604[24]Klann E M, Hall B, Bennett A B. Antisense acid invertase (TIV1) gene alters soluble sugar composition and size in transgenic tomato fruit. Plant Physiol, 1996, 112: 1321–1330[25]Davies C, Robinson S P. Sugar accumulation in grape berries: cloning of two putative vacuolar invertase cDNAs and their expression in grapevine tissues. Plant Physiol, 1996, 111: 275–283[26]Yau Y, Simon, P. A 2.5-kb insert eliminates acid soluble invertase isozyme II transcript in carrot (Daucus carota L.) roots, causing high sucrose accumulation. Plant Mol Biol, 2003, 53: 151–162[27]Sergeeva L I, Keurentjes J J B, Bentsink L, Vonk J, van der Plas L H W, Koornneef M, Vreugdenhil D. Vacuolar invertase regulates elongation of Arabidopsis thaliana roots as revealed by QTL and mutant analysis. Proc Nat Acad Sci USA, 2006, 103: 2994–2999[28]Long J C, Zhao W, Rashotte A M, Muday G K, Huber S C. Gravity-stimulated changes in auxin and invertase gene expression in maize pulvinal cells. Plant Physiol, 2002, 128: 591–602[29]Trouverie J, Thévenot C, Rocher J P, Sotta B, Prioul J L. The role of abscisic acid in the response of a specific vacuolar invertase to water stress in the adult maize leaf. J Exp Bot, 2003, 54: 2177–2186[30]Mitsuhashi W, Sasaki S, Kanazawa A, Yang Y Y, Kamiya Y, Toyomasu T. Differential expression of acid invertase genes during seed germination in Arabidopsis thaliana. Biosci Biotechnol Biochem, 2004, 68: 602–608[31]Trouverie J, Chateau-Joubert S, Thévenot C, Jacquemot M P, Prioul J L. Regulation of vacuolar invertase by abscisic acid or glucose in leaves and roots from maize plantlets. Planta, 2004, 219: 894–905[32]Li Z, Palmer W M, Martin A P, Wang R, Rainsford F, Jin Y, Patrick JW, Yang Y, Ruan Y L. High invertase activity in tomato reproductive organs correlates with enhanced sucrose import into, and heat tolerance of, young fruit. J Exp Bot, 2012, 63: 1155–1166[33]Xu J, Avigne W T, McCarty D R, Koch K E. A similar dichotomy of sugar modulation and developmental expression affects both paths of sucrose metabolism: evidence from a maize invertase gene family. Plant Cell, 1996, 8: 1209–1220 |
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