[2]Wu C X, Ma Q B, Yam K M, et al In situ expression of the GmNMH7 gene is photoperioddependent in a unique soybean (Glycine max[L] Merr) flowering reversion system [J]. Planta, 2006, 223(4): 725-735
[3]Abd Alla H M Autoregulation of soybean Bradyrhizobium nodule symbiosis is controlled by shoot or/and root factors[J]. World Journal of Microbiology & Biotechnology, 1999, 15: 715-722
[4]Kühn C, Barker L, Bürkle L, et al Update on sucrose transport in higher plants[J]. Journal of Experimental Botany, 1999, 50: 935-953
[5]Frommer B W, Sonnewald U Molecular analysis of carbon partitioning in solanaceous species [J]. Journal of Experimental Botany, 1995, 46(287): 587-607
[6]Seger M, Gebril S, Tabilona J, et al Impact of concurrent overexpression of cytosolic glutamine synthetase(GS1) and sucrose phosphate synthase (SPS) on growth and development in transgenic tobacco[J]. Planta, 2015, 241(1): 69-81
[7]Roldán M, Gómez Mena C, Ruiz García L, et al Sucrose availability on the aerial part of the plant promotes morphogenesis and flowering of Arabidopsis in the dark[J]. The Plant Journal, 1999, 20(5): 581-590
[8]Ohto M, Onai K, Furukawa Y, et al Effects of sugar on vegetative development and floral transition in Arabidopsis [J]. Plant Physiology, 2001, 127: 252-261
[9]董钻大豆栽培生理[M]. 北京:中国农业出版社, 1997: 33-51(Dong Z Soybean cultivation physiology[M]. Beijing: Agricultural Press, 1997: 33-51)
[10]马春梅, 郭海龙, 龚振平, 等不同基因型大豆糖分积累规律的研究—(II)蔗糖含量积累规律研究[J]. 作物杂志, 2011(1): 25-29(Ma C M, Guo H L, Gong Z P, et al Sugar accumulation in soybean among different genotypes—(II) Sucrose[J]. Crops, 2011(1): 25-29)
[11]Pedra J H, Delú Filho N, Pirovani C P, et al Antisense and sense expression of a sucrose binding protein homologue gene from soybean in transgenic tobacco affects plant growth and carbohydrate partitioning in leaves[J]. Plant Science, 2000, 152: 87-98
[12]Ripp G K, Viitanen V P, Hitz D W, et al Identification of a membrane protein associated with sucrose transport into cells of development soybean cotyledons[J]. Plant Physiology, 1988, 88: 1435-1445
[13]Lu Q Y, Zhao L, Li D M, et al A GmRAV ortholog is involved in photoperiod and sucrose control of flowering time in soybean[J]. PLoS One, 2014, 9(2): e89145
[14]Wong C E, Singh M B, Bhalla P L Molecular processes underlying the floral transition in the soybean shoot apical meristem[J]. The Plant Journal, 2009, 57(5): 832-845
[15]Chopra J, Kaur N, Gupta K A Carbohydrate status and sucrose metabolism in mungbean roots and nodules[J]. Phytochemistry, 1998, 49(7): 1891-1895
[16]Udvardi K M, Day A D Metabolite transport across symbiotic membranes of legume nodules [J]. The Annual Review of Plant Biology and Plant Molecular Biology, 1997, 48: 493-523
[17]González E M, Gordon A J, James C L, et al The role of sucrose synthase in the response of soybean nodules to drought[J]. Journal of Experimental Botany, 1995, 46(291): 1515-1523
[18]Gordon J A, Minchin R F, Sk t L, et al Stress induced declines in soybean N, fixation are related to nodule sucrose synthase activity [J]. Plant Physiolgy, 1997, 114: 937-946
[19]López M, Herrera Cervera J A, Lluch C, et al Trehalose metabolism in root nodules of the model legume Lotus japonicas in response to salt stress[J]. Physiologia Plantarum, 2006, 128(4): 701-709
[20]Rhrig H, John M, Schmidt JModification of soybean sucrose synthase by S thiolation with ENOD40 peptide A[J]. Biochemical and Biophysical Research Communications, 2004, 325(3): 864-870
[21]Rhrig H, Schmidt J, Miklashevichs E, et al Soybean ENOD40 encodes two peptides that bind to sucrose synthase[J]. Proceedings of The National Academy of Sciences of The United States of America, 2002, 99(4): 1915-1920
[22]orresponding proteins in nodules of soybean plants subjected to dark induced stress[J]. Journal of Experimental Botany, 1993, 44(266): 1453-1460
[23]Ching T M, Hedtke S, Russell A S Energy state and dinitrogen fixation in soybean nodules of darkgrown plants[J]. Plant Physiolgy, 1975, 55: 796-798
[24]Fujikake H, Yamazaki A, Ohtake N, et al Quick and reversible inhibition of soybean root nodule growth by nitrate involves a decrease in sucrose supply to nodules[J]. Journal of Experimental Botany, 2003, 54(386): 1379-1388
[25]D′Haeseleer K, De Keyser A, Goormachtig S, et al Transcription factor MtATB2: About nodulation, sucrose and senescence[J]. Plant and Cell Physiology, 2010, 51(9): 1416-2144
[26]Liu W, Han X D, Zhan G, et al A novel sucroseregulatory MADSBox transcription factor GmNMHC5 promotes root development and nodulation in soybean ( Glycine max [L] Merr )[J]. International Journal of Molecular Sciences, 2015, 16(9): 20657-20673
[27]Greer H A L Effect of growth regulators on reproduction in soybean[J]. Retrospective Theses and Dissertations, 1964: 2708
[28]Nonokawa K, Kokubun M, Nakajima T, et al Roles of auxin and cytokinin in sybean pod setting[J]. Plant Production Science, 2007, 10(2): 199-206
[29]Oberholster S D, Peterson C M, Dute R R Pedicel abscission of soybean: Cytological and ultrastructural changes induced by auxin and ethephon[J]. Canadian Journal of Botany, 1991, 69: 2177-2186
[30]Turner M, Nizampatnam N R, Baron M, et al Ectopic expression of miR160 results in auxin hypersensitivity, cytokinin hyposensitivity, and inhibition of symbiotic nodule development in soybean[J]. Plant Physiology, 2013, 162(4): 2042-2055
[31]Ferguson B J, Mathesius U Phytohormone regulation of legumerhizobia interactions[J]. Journal of Chemical Ecology, 2014, 40(7): 770-790
[32]Ghosh S, Basu P S Production and metabolism of indole acetic acid in roots and root nodules of Phaseolus mungo [J]. Microbiological Research, 2006, 161(4): 362-366
[33]Pacios Bras C, Schlaman H R M, Boot K, et al Auxin distribution in Lotus japonicusduring root nodule development[J]. Plant Molecular Biology, 2003, 52: 1169-1180
[34]Billy F, Grosjean C, May S, et al Expression studies on AUX1 like genes in Medicago truncatula suggest that auxin is required at two steps in early nodule development[J]. Molecular Plant Microbe Interactions, 2001, 14(3): 267-277
[35]Subramanian P, Kim K, Krishnamoorthy R, et al Endophytic bacteria improve nodule function and plant nitrogen in soybean on co inoculation with Bradyrhizobium japonicum MN110 [J]. Plant Growth Regulation, 2014, 76(3): 327-332
[36]Datta C, Basu P S Indole acetic acid production by a Rhizobium species from root nodules of a leguminous shrub, Cajanus cajan [J]. Microbiological Research, 2000, 155(2): 123-127
[37]Suo H C, Ma Q B, Ye K X, et al Overexpression of AtDERB1A causes a severe dwarf phenotype by decreasing endogenous Gibberellin levels in soybean [Glycine max(L) Merr][J]. PLoS One, 2012, 7(9): e45568
[38]Sun Mx, Wong C E, Singh M B, et al The dynamics of soybean leaf and shoot apical meristem transcriptome undergoing floral initiation process [J]. PLoS One, 2013, 8(6): e65319
[39]Huff A, Dybing D C Factors affecting shedding of flowers in soybean (Glycine max(L) Merrill)[J]. Journal of Experimental Botany, 1980, 31(122): 751-762
[40]Zhao L, Wang Z, Lu Q, et al Overexpression of a GmGBP1 ortholog of soybean enhances the responses to flowering, stem elongation and heat tolerance in transgenic tobaccos[J]. Plant Molecular Biology, 2013, 82(3): 279-299
[41]Hayashi S, Reid D E, Lorenc M T, et al Transient Nod factor dependent gene expression in the nodulation competent zone of soybean ( Glycine max [L] Merr) roots [J]. Plant Biotechnology Journal, 2012, 10(8): 995-1010
[42]Méndez C, Baginsky C, Hedden P, et al Gibberellin oxidase activities in Bradyrhizobium japonicum bacteroids[J]. Phytochemistry, 2014, 98: 101-109
[43]Noodén L D, Singh S, Letham D S Correlation of xylem sap Cytokinin levelswith monocarpic senescence in soybean[J]. Plant Physiology, 1990, 93: 33-39
[44]Nagel L, Brewster R, Riedell W E, et alCytokinin regulation of flower and pod set in soybean ( Glycine max (L) Merr ) [J]. Annals of Botany, 2001, 88: 27-31
[45]Bishopp A, Help H,Helariutta Y Chapter 1 Cytokinin signaling during root development[J]. 2009, 276: 1-48
[46]Frugier F, Kosuta S, Murray J D, et al Cytokinin: Secret agent of symbiosis[J]. Trends in Plant Science, 2008, 13(3): 115-120
[47]Prudent M, Salon C, Smith L D, et al Nod factor supply under water stress conditions modulates cytokinin biosynthesis and enhances nodule formation and N nutrition in soybean[J]. Plant Signaling & Behavior, 2016, 11(9): e1212799
[48]Mortier V, Fenta B A, Martens C, et al Search for nodulation related CLE genes in the genome of Glycine max[J]. Journal of Experimental Botany, 2011, 62(8): 2571-2583
[49]Heckmann A B, Sandal N, Bek A S, et al Cytokinin induction of root nodule primordia in Lotus japonicas is regulated by a mechanism operating in the root cortex[J]. Molecular Plant Microbe Interactions, 2011, 24(11): 1385-1395
[50]Sasaki T, Suzaki T, Soyano T, et al Shoot derived cytokinins systemically regulate root nodulation[J]. Nature Communication, 2014, 5: 4983
[51]程云清, 张奇, 刘剑锋, 等 外源乙烯调控大豆花粉育性的研究[J]. 浙江大学学报(农业与生命科学版), 2014, 40(1): 25-32 (Cheng Y Q, Qi Zhang, Liu J F, et al Studies on pollen fertility regulated by exogenous ethylene in soybean (Glycine max L Merrill)[J]. Journal of Zhejiang University(Agricultural and Life Science), 2014, 40(1): 25-32
[52]Rook F, Hadingham S A, Li Y, et al Sugar and ABA response pathways and the control of gene expression[J]. Plant, Cell and Environment, 2006, 29(3): 426-434
[53]Oldroyd G E, Downie J A Coordinating nodule morphogenesis with rhizobial infection in legumes[J]. Annual Review of Plant Biology, 2008, 59: 519-546
[54]Oldroyd G E D, Engstrom E M, Long S R Ethylene inhibits the Nod factor signal transduction pathway of Medicago truncatula [J]. The Plant Cell, 2001, 13: 1835-1849
[55]Heidstra R, Yang W C, Yalcin Y, et al Ethylene provides positional information on cortical cell division but is not involved in Nod factor induced root hair tip growth in Rhizobium legume interaction[J]. Development, 1997, 124: 1781-1787
[56]Prayitno J, Rolfe B G, Mathesius U The Ethylene insensitive sickle mutant of Medicago truncatula shows altered auxin transport regulation during nodulation[J]. Plant Physiology, 2006, 142(1): 168-180
[57]Ding Y L, Oldroyd G E D Positioning the nodule, the hormone dictum[J]. Plant Signaling and Behavior, 2009, 4(2): 89-93
[58]Sun J, Cardoza V, Mitchell D M, et al Crosstalk between jasmonic acid, ethylene and Nod factor signaling allows integration of diverse inputs for regulation of nodulation[J]. Plant Journal, 2006, 46(6): 961-970
[59]Cho M J, Harper J E Effect of abscisic acid application on root isoflavonoid concentration and nodulation of wild type and nodulationmutant soybean plants[J]. Plant and Soil, 1993, 152: 145-149
[60]Wang Y, Suo H, Zheng Y, et al The soybean root specific protein kinase GmWNK1 regulates stressresponsive ABA signaling on the root system architecture[J]. Plant Journal, 2010, 64(2): 230-242
[61]Cho J M, Harper E J Effect of abscisic acid application on root isoflavonoid concentration and nodulation of wild type and nodulationmutant soybean plants[J]. Plant and Soil, 1993, 152: 145-149
[62]Martínez Abarca F, Herrera Cervera J A, Bueno P, et al Involvement of salicylic acid in the establishment of the Rhizobium meliloti Alfalfa symbiosis[J]. Molecular PlantMicrobe Interactions, 1998, 11(2): 153-155
[63]Stacey G, McAlvin C B, Kim S Y, et al Effects of endogenous salicylic acid on nodulation in the model legumes Lotus japonicas and Medicago truncatula [J]. Plant Physiology, 2006, 141(4): 1473-1481
[64]Yan Z, Hossain M S, Wang J, et al miR172 regulates soybean nodulation[J]. Molecular Plant Microbe Interactions, 2013, 26(12): 1371-1377
[65]Subramanian S, Fu Y, Sunkar R, et al Novel and nodulation regulated microRNAs in soybean roots[J]. BMC Genomics, 2008, 9(1): 160
[66]Wang T, Sun M Y, Wang X S, et al Over expression of GmGIa regulated soybean miR172a confers early flowering in transgenic Arabidopsis thaliana [J]. International Journal of Molecular Sciences, 2016, 17(5): 645
[67]Cao D, Li Y, Wang J, et al GmmiR156b overexpression delays flowering time in soybean[J]. Plant Molecular Biology, 2015, 89 (4): 353-363
[68]Simon S A, Meyers B C, Sherrier D J MicroRNAs in the Rhizobia legume symbiosis[J]. Plant Physiology, 2009, 151(3): 1002-1008
[69]Wang Y N, Li K X, Chen L, et al MicroRNA167 directed regulation of the auxin response factors GmARF8a and GmARF8b is required for soybean nodulation and lateral root development [J]. Plant Physiology, 2015, 168: 101-116