Identification and promoter analysis of a GA-stimulated transcript 1 gene from Jatropha curcas.


Journal

Plant cell reports
ISSN: 1432-203X
Titre abrégé: Plant Cell Rep
Pays: Germany
ID NLM: 9880970

Informations de publication

Date de publication:
Aug 2023
Historique:
received: 18 04 2023
accepted: 12 05 2023
medline: 17 7 2023
pubmed: 25 6 2023
entrez: 24 6 2023
Statut: ppublish

Résumé

Overexpression of JcGAST1 promotes plant growth but inhibits pistil development. The pyrimidine box and CGTCA motif of the JcGAST1 promoter were responsible for the GA and MeJA responses. Members of the gibberellic acid-stimulated Arabidopsis (GASA) gene family play roles in plant growth and development, particularly in flower induction and seed development. However, there is still relatively limited knowledge of GASA genes in Jatropha curcas. Herein, we identified a GASA family gene from Jatropha curcas, namely, JcGAST1, which encodes a protein containing a conserved GASA domain. Sequence alignment showed that the JcGAST1 protein shares 76% sequence identity and 80% sequence similarity with SlGAST1. JcGAST1 had higher expression and protein levels in the female flowers than in the male flowers. Overexpression of JcGAST1 in tobacco promotes plant growth but inhibits pistil development. JcGAST1 expression was upregulated by GA and downregulated by MeJA. Promoter analysis indicated that the pyrimidine box and CGTCA motif were the GA- and MeJA-responsive elements of the JcGAST1 promoter. Using a Y1H screen, six transcription factors were found to interact with the pyrimidine box, and three transcription factors were found to interact with the CGTCA motif. Overall, the results of this study improve our understanding of the JcGAST1 gene and provide useful information for further studies.

Identifiants

pubmed: 37355482
doi: 10.1007/s00299-023-03034-5
pii: 10.1007/s00299-023-03034-5
doi:

Substances chimiques

gibberellic acid BU0A7MWB6L
Transcription Factors 0
Plant Proteins 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1333-1344

Subventions

Organisme : National Natural Science Foundation of China
ID : 31760198

Informations de copyright

© 2023. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Références

Ahmad MZ, Sana A, Jamil A, Nasir JA, Ahmed S, Hameed MU, Abdullah (2019) A genome-wide approach to the comprehensive analysis of GASA gene family in Glycine max. Plant Mol Biol 100:607–620
pubmed: 31123969 doi: 10.1007/s11103-019-00883-1
Ali MS, Baek KH (2020) Jasmonic acid signaling pathway in response to abiotic stresses in plants. Int J Mol Sci 21:621
pubmed: 31963549 pmcid: 7013817 doi: 10.3390/ijms21020621
Alonso-Ramírez A, Rodríguez D, Reyes D, Jiménez JA, Nicolás G, López-Climent M, Gómez-Cadenas A, Nicolás C (2009) Evidence for a role of gibberellins in salicylic acid-modulated early plant responses to abiotic stress in Arabidopsis seeds. Plant Physiol 150:1335–1344
pubmed: 19439570 pmcid: 2705047 doi: 10.1104/pp.109.139352
Baidyussen A, Jatayev S, Khassanova G, Amantayev B, Sereda G, Sereda S, Gupta NK, Gupta S, Schramm C, Anderson P, Jenkins CLD, Soole KL, Langridge P, Shavrukov Y (2021) Expression of specific alleles of Zinc-Finger transcription factors, HvSAP8 and HvSAP16, and corresponding SNP markers, are associated with drought tolerance in barley populations. Int J Mol Sci 22:12156
pubmed: 34830037 pmcid: 8617764 doi: 10.3390/ijms222212156
Bao S, Hua C, Shen L, Yu H (2020) New insights into gibberellin signaling in regulating flowering in Arabidopsis. J Integr Plant Biol 62:118–131
pubmed: 31785071 doi: 10.1111/jipb.12892
Ben-Nissan G, Weiss D (1996) The petunia homologue of tomato gast1: transcript accumulation coincides with gibberellin-induced corolla cell elongation. Plant Mol Biol 32:1067–1074
pubmed: 9002605 doi: 10.1007/BF00041390
Chen XY, Wang DX, Liu C, Wang MZ, Wang T, Zhao Q, Yu JJ (2012) Maize transcription factor Zmdof1 involves in the regulation of Zm401 gene. Plant Growth Regul 66:271–284
doi: 10.1007/s10725-011-9651-5
Chen MS, Pan BZ, Fu Q, Tao YB, Martínez-Herrera J, Niu L, Ni J, Dong Y, Zhao ML, Xu ZF (2017) Comparative transcriptome analysis between gynoecious and monoecious plants identifies regulatory networks controlling sex determination in Jatropha curcas. Front Plant Sci 7:1953
pubmed: 28144243 pmcid: 5239818 doi: 10.3389/fpls.2016.01953
Creelman RA, Mullet JE (1995) Jasmonic acid distribution and action in plants: regulation during development and response to biotic and abiotic stress. Proc Natl Acad Sci U S A 92:4114–4119
pubmed: 11607536 pmcid: 41895 doi: 10.1073/pnas.92.10.4114
Dai S, Zhang Z, Chen S, Beachy RN (2004) RF2b, a rice bZIP transcription activator, interacts with RF2a and is involved in symptom development of rice tungro disease. Proc Natl Acad Sci U S A 101:687–692
pubmed: 14704272 pmcid: 327209 doi: 10.1073/pnas.0307687100
Feng K, Hou XL, Xing GM, Liu JX, Duan AQ, Xu ZS, Li MY, Zhuang J, Xiong AS (2020) Advances in AP2/ERF super-family transcription factors in plant. Crit Rev Biotechnol 40:750–776
pubmed: 32522044 doi: 10.1080/07388551.2020.1768509
Furukawa T, Sakaguchi N, Shimada H (2006) Two OsGASR genes, rice GAST homologue genes that are abundant in proliferating tissues, show different expression patterns in developing panicles. Genes Genet Syst 81:171–180
pubmed: 16905871 doi: 10.1266/ggs.81.171
Gübitz GM, Mittelbach M, Trabi M (1999) Exploitation of the tropical oil seed plant Jatropha curcas L. Bioresour Technol 67:73–82
doi: 10.1016/S0960-8524(99)00069-3
Gubler F, Jacobsen JV (1992) Gibberellin-responsive elements in the promoter of a barley high-pI alpha-amylase gene. Plant Cell 4:1435–1441
pubmed: 1477556 pmcid: 160230
Han S, Jiao Z, Niu MX, Yu X, Huang M, Liu C, Wang HL, Zhou Y, Mao W, Wang X, Yin W, Xia X (2021) Genome-wide comprehensive analysis of the GASA gene family in Populus. Int J Mol Sci 22:12336
pubmed: 34830215 pmcid: 8624709 doi: 10.3390/ijms222212336
Herzog M, Dorne AM, Grellet F (1995) GASA, a gibberellin-regulated gene family from Arabidopsis thaliana related to the tomato GAST1 gene. Plant Mol Biol 27:743–752
pubmed: 7727751 doi: 10.1007/BF00020227
Hu J, Su H, Cao H, Wei H, Fu X, Jiang X, Song Q, He X, Xu C, Luo K (2022) AUXIN RESPONSE FACTOR7 integrates gibberellin and auxin signaling via interactions between DELLA and AUX/IAA proteins to regulate cambial activity in poplar. Plant Cell 34:2688–2707
pubmed: 35435234 pmcid: 9252472 doi: 10.1093/plcell/koac107
Huang N, Sutliff TD, Litts JC, Rodriguez RL (1990) Classification and characterization of the rice alpha-amylase multigene family. Plant Mol Biol 14:655–668
pubmed: 2102847 doi: 10.1007/BF00016499
Ishiguro S, Kawai-Oda A, Ueda J, Nishida I, Okada K (2001) The DEFECTIVE IN ANTHER DEHISCIENCE gene encodes a novel phospholipase A1 catalyzing the initial step of jasmonic acid biosynthesis, which synchronizes pollen maturation, anther dehiscence, and flower opening in Arabidopsis. Plant Cell 13:2191–3209
pubmed: 11595796 pmcid: 139153 doi: 10.1105/tpc.010192
Izawa T (2021) What is going on with the hormonal control of flowering in plants? Plant J 105:431–445
pubmed: 33111430 doi: 10.1111/tpj.15036
Jefferson RA, Kavanagh TA, Bevan MW (1987) GUS fusions: beta-glucuronidase as a sensitive and versatile gene fusion marker in higher plants. EMBO J 6:3901–3907
King RW, Evans LT (2003) Gibberellins and flowering of grasses and cereals: prizing open the lid of the “florigen” black box. Annu Rev Plant Biol 54:307–328
pubmed: 14502993 doi: 10.1146/annurev.arplant.54.031902.135029
Kotilainen M, Helariutta Y, Mehto M, Pollanen E, Albert VA, Elomaa P, Teeri TH (1999) GEG participates in the regulation of cell and organ shape during corolla and carpel development in gerbera hybrida. Plant Cell 11:1093–1104
pubmed: 10368180 pmcid: 144246 doi: 10.1105/tpc.11.6.1093
Li Z, Gao J, Wang G, Wang S, Chen K, Pu W, Wang Y, Xia Q, Fan X (2022) Genome-wide identification and characterization of GASA Gene family in Nicotiana tabacum. Front Genet 12:768942
pubmed: 35178069 pmcid: 8844377 doi: 10.3389/fgene.2021.768942
Ma N, Ma C, Liu Y, Shahid MO, Wang C, Gao J (2018) Petal senescence: a hormone view. J Exp Bot 69:719–732
pubmed: 29425359 doi: 10.1093/jxb/ery009
Maghuly F, Laimer M (2013) Jatropha curcas, a biofuel crop: functional genomics for understanding metabolic pathways and genetic improvement. Biotechnol J 8:1172–1182
pubmed: 24092674 pmcid: 4065342 doi: 10.1002/biot.201300231
Mena M, Cejudo FJ, Isabel-Lamoneda I, Carbonero P (2002) A role for the DOF transcription factor BPBF in the regulation of gibberellin-responsive genes in barley aleurone. Plant Physiol 130:111–119
pubmed: 12226491 pmcid: 166544 doi: 10.1104/pp.005561
Moyano-Cañete E, Bellido ML, García-Caparrós N, Medina-Puche L, Amil-Ruiz F, González-Reyes JA, Caballero JL, Muñoz-Blanco J, Blanco-Portales R (2013) FaGAST2, a strawberry ripening-related gene, acts together with FaGAST1 to determine cell size of the fruit receptacle. Plant Cell Physiol 54:218–236
pubmed: 23231876 doi: 10.1093/pcp/pcs167
Nahirñak V, Almasia NI, Hopp HE, Vazquez-Rovere C (2012) Snakin/GASA proteins: involvement in hormone crosstalk and redox homeostasis. Plant Signal Behav 7:1004–1008
pubmed: 22836500 pmcid: 3474668 doi: 10.4161/psb.20813
Openshaw K (2000) A review of Jatropha curcas: An oil plant of unfulfilled promise. Biomass Bioenergy 19:1–15
doi: 10.1016/S0961-9534(00)00019-2
Pak H, Guo Y, Chen M, Chen K, Li Y, Hua S, Shamsi I, Meng H, Shi C, Jiang L (2009) The effect of exogenous methyl jasmonate on the flowering time, floral organ morphology, and transcript levels of a group of genes implicated in the development of oilseed rape flowers (Brassica napus L.). Planta 231:79–91
pubmed: 19826836 doi: 10.1007/s00425-009-1029-9
Pan BZ, Chen MS, Ni J, Xu ZF (2014) Transcriptome of the inflorescence meristems of the biofuel plant Jatropha curcas treated with cytokinin. BMC Genomics 15:974
pubmed: 25400171 pmcid: 4246439 doi: 10.1186/1471-2164-15-974
Pi X, Pan B, Xu Z (2013) Induction of bisexual flowers by gibberellins in monoecious biofuel plant Jatropha curcas (Euphorbiaceae). Plant Divers Resour 35:26–32
Prior MJ, Selvanayagam J, Kim JG, Tomar M, Jonikas M, Mudgett MB, Smeekens S, Hanson J, Frommer WB (2021) Arabidopsis bZIP11 is a susceptibility factor during Pseudomonas syringae infection. Mol Plant Microbe Interact 34:439–447
pubmed: 33400562 doi: 10.1094/MPMI-11-20-0310-R
Qu J, Kang SG, Hah C, Jang JC (2016) Molecular and cellular characterization of GA-stimulated transcripts GASA4 and GASA6 in Arabidopsis thaliana. Plant Sci 246:1–10
pubmed: 26993231 doi: 10.1016/j.plantsci.2016.01.009
Raju AJS, Ezradanam V (2002) Pollination ecology and fruiting behaviour in a monoe-cious species, Jatropha curcas L. (Euphorbiaceae). Curr Sci 83:13951398
Rogers JC, Rogers SW (1992) Definition and functional implications of gibberellin and abscisic acid cis-acting hormone response complexes. Plant Cell 4:1443–1451
pubmed: 1477557 pmcid: 160231
Roxrud I, Lid SE, Fletcher JC, Schmidt ED, Opsahl-Sorteberg HG (2007) GASA4, one of the 14-member Arabidopsis GASA family of small polypeptides, regulates flowering and seed development. Plant Cell Physiol 48:471–483
pubmed: 17284469 doi: 10.1093/pcp/pcm016
Ruan J, Zhou Y, Zhou M, Yan J, Khurshid M, Weng W, Cheng J, Zhang K (2019) Jasmonic acid signaling pathway in plants. Int J Mol Sci 20:2479
pubmed: 31137463 pmcid: 6566436 doi: 10.3390/ijms20102479
Rubinovich L, Weiss D (2010) The Arabidopsis cysteine-rich protein GASA4 promotes GA responses and exhibits redox activity in bacteria and in planta. Plant J 64:1018–1027
pubmed: 21143681 doi: 10.1111/j.1365-313X.2010.04390.x
Shi L, Gast RT, Gopalraj M, Olszewski NE (1992) Characterization of a shoot specific, GA3- and ABA-regulated gene from tomato. Plant J 2:153–159
pubmed: 1302047
Sun S, Wang H, Yu H, Zhong C, Zhang X, Peng J, Wang X (2013) GASA14 regulates leaf expansion and abiotic stress resistance by modulating reactive oxygen species accumulation. J Exp Bot 64:1637–1647
pubmed: 23378382 doi: 10.1093/jxb/ert021
Thomas R, Sah NK, Sharma PB (2008) Therapeutic biology of Jatropha curcas: a mini review. Curr Pharm Biotechnol 9:315–324
pubmed: 18691091 doi: 10.2174/138920108785161505
Wang H, Jones B, Li Z, Frasse P, Delalande C, Regad F, Chaabouni S, Latché A, Pech JC, Bouzayen M (2005) The tomato Aux/IAA transcription factor IAA9 is involved in fruit development and leaf morphogenesis. Plant Cell 17:2676–2692
pubmed: 16126837 pmcid: 1242265 doi: 10.1105/tpc.105.033415
Wang L, Wang Z, Xu Y, Joo SH, Kim SK, Xue Z, Xu Z, Wang Z, Chong K (2009) OsGSR1 is involved in crosstalk between gibberellins and brassinosteroids in rice. Plant J 57:498–510
pubmed: 18980660 doi: 10.1111/j.1365-313X.2008.03707.x
Wang Z, Wong DCJ, Wang Y, Xu G, Ren C, Liu Y, Kuang Y, Fan P, Li S, Xin H, Liang Z (2021) GRAS-domain transcription factor PAT1 regulates jasmonic acid biosynthesis in grape cold stress response. Plant Physiol 186:1660–1678
pubmed: 33752238 pmcid: 8260143 doi: 10.1093/plphys/kiab142
Xu G, Huang J, Yang Y, Yao YA (2016) Transcriptome analysis of flower sex differentiation in Jatropha curcas L. using RNA sequencing. PLoS One 11:e0145613
pubmed: 26848843 pmcid: 4746058 doi: 10.1371/journal.pone.0145613
Xu G, Huang J, Lei SK, Sun XG, Li X (2019) Comparative gene expression profile analysis of ovules provides insights into Jatropha curcas L. ovule development. Sci Rep 9:15973
pubmed: 31685957 pmcid: 6828956 doi: 10.1038/s41598-019-52421-0
Xu CJ, Zhao ML, Chen MS, Xu ZF (2020) Silencing of the Ortholog of DEFECTIVE IN ANTHER DEHISCENCE 1 gene in the woody perennial Jatropha curcas alters flower and fruit development. Int J Mol Sci 21:8923
pubmed: 33255510 pmcid: 7727821 doi: 10.3390/ijms21238923
Yadeta KA, Hanemian M, Smit P, Hiemstra JA, Pereira A, Marco Y, Thomma BP (2011) The Arabidopsis thaliana DNA-binding protein AHL19 mediates verticillium wilt resistance. Mol Plant Microbe Interact 24:1582–1591
pubmed: 21864046 doi: 10.1094/MPMI-04-11-0090
Yan Y, Christensen S, Isakeit T, Engelberth J, Meeley R, Hayward A, Emery RJ, Kolomiets MV (2012) Disruption of OPR7 and OPR8 reveals the versatile functions of jasmonic acid in maize development and defense. Plant Cell 24:1420–1436
Yanagisawa S (2000) Dof1 and Dof2 transcription factors are associated with expression of multiple genes involved in carbon metabolism in maize. Plant J 21:281–288
pubmed: 10758479 doi: 10.1046/j.1365-313x.2000.00685.x
Yu X, Zhang W, Zhang Y, Zhang X, Lang D, Zhang X (2019) The roles of methyl jasmonate to stress in plants. Funct Plant Biol 46:197–212
pubmed: 32172764 doi: 10.1071/FP18106
Yuan Z, Zhang D (2015) Roles of jasmonate signaling in plant inflorescence and flower development. Curr Opin Plant Biol 27:44–51
pubmed: 26125498 doi: 10.1016/j.pbi.2015.05.024
Zhang SC, Wang XJ (2008) Expression pattern of GASA, downstream genes of DELLA, in Arabidopsis. Chinese Sci Bull 53:3839–3846
Zhang S, Wang X (2017) One new kind of phytohormonal signaling integrator: Up-and-coming GASA family genes. Plant Signal Behav 12:e1226453
pubmed: 27574012 doi: 10.1080/15592324.2016.1226453
Zhang S, Yang C, Peng J, Sun S, Wang X (2009) GASA5, a regulator of flowering time and stem growth in Arabidopsis thaliana. Plant Mol Biol 69:745–759
pubmed: 19190987 doi: 10.1007/s11103-009-9452-7
Zhang F, Fu X, Lv Z, Lu X, Shen Q, Zhang L, Zhu M, Wang G, Sun X, Liao Z, Tang K (2015) A basic leucine zipper transcription factor, AabZIP1, connects abscisic acid signaling with artemisinin biosynthesis in Artemisia annua. Mol Plant 8:163–175
pubmed: 25578280 doi: 10.1016/j.molp.2014.12.004
Zhong C, Xu H, Ye S, Wang S, Li L, Zhang S, Wang X (2015) Gibberellic acid-stimulated Arabidopsis6 serves as an integrator of gibberellin, abscisic acid, and glucose signaling during seed germination in Arabidopsis. Plant Physiol 169:2288–2303
pubmed: 26400990 pmcid: 4634064

Auteurs

Shikang Lei (S)

School of Traditional Chinese Medicine Resource/ Key Laboratory of State Administration of Traditional Chinese Medicine for Production & Development of Cantonese Medicinal Materials, Guangdong Pharmaceutical University, Guangzhou, 510006, China.
Key Laboratory of Biology and Genetic Breeding, Guangzhou Academy of Agricultural Sciences, Guangzhou, 510000, China.

Liangqing Zhao (L)

Guizhou Botanical Garden, Guiyang, 550005, China.

Yuqian Chen (Y)

Institute for Forest Resources and Environment of Guizhou/College of Forestry, Guizhou University, Guiyang, 550025, China.

Gang Xu (G)

School of Traditional Chinese Medicine Resource/ Key Laboratory of State Administration of Traditional Chinese Medicine for Production & Development of Cantonese Medicinal Materials, Guangdong Pharmaceutical University, Guangzhou, 510006, China. xg335300@aliyun.com.

Articles similaires

Amaryllidaceae Alkaloids Lycoris NADPH-Ferrihemoprotein Reductase Gene Expression Regulation, Plant Plant Proteins
Drought Resistance Gene Expression Profiling Gene Expression Regulation, Plant Gossypium Multigene Family
Arabidopsis Arabidopsis Proteins Osmotic Pressure Cytoplasm RNA, Messenger
Genome Size Genome, Plant Magnoliopsida Evolution, Molecular Arabidopsis

Classifications MeSH