CmoNAC1 in pumpkin rootstocks improves salt tolerance of grafted cucumbers by binding to the promoters of CmoRBOHD1, CmoNCED6, CmoAKT1;2 and CmoHKT1;1 to regulate H2O2, ABA signaling and K+/Na+ homeostasis

Yuquan Peng , Haishun Cao , Lvjun Cui , Ying Wang , Lanxing Wei , Shouyu Geng , Li Yang , Yuan Huang , Zhilong Bie

Horticulture Research ›› 2023, Vol. 10 ›› Issue (9) : 157

PDF (1537KB)
Horticulture Research ›› 2023, Vol. 10 ›› Issue (9) :157 DOI: 10.1093/hr/uhad157
Article
research-article
CmoNAC1 in pumpkin rootstocks improves salt tolerance of grafted cucumbers by binding to the promoters of CmoRBOHD1, CmoNCED6, CmoAKT1;2 and CmoHKT1;1 to regulate H2O2, ABA signaling and K+/Na+ homeostasis
Author information +
History +
PDF (1537KB)

Abstract

The NAC transcription factor is a type of plant-specific transcription factor that can regulate plant salt tolerance, but the underlying mechanism is unclear in grafted vegetables. H2O2 and ABA in pumpkin rootstocks can be transported to cucumber scion leaves, promoting stomatal closure to improve salt tolerance of grafted cucumbers. Despite these observations, the regulatory mechanism is unknown. Here, our research revealed that CmoNAC1 is a key transcription factor that regulates H2O2 and ABA signaling in pumpkin roots under salt stress. The function of CmoNAC1 was analyzed using root transformation and RNA-seq, and we found that pumpkin CmoNAC1 promoted the production of H2O2 and ABA via CmoRBOHD1 and CmoNCED6, respectively, and regulated K+/Na+ homeostasis via CmoAKT1;2, CmoHKT1;1, and CmoSOS1 to improve salt tolerance of grafted cucumbers. Root knockout of CmoNAC1 resulted in a significant decrease in H2O2 (52.9% and 32.1%) and ABA (21.8% and 42.7%) content and K+/Na+ ratio (81.5% and 56.3%) in leaf and roots of grafted cucumber, respectively, while overexpression showed the opposite effect. The root transformation experiment showed that CmoNCED6 could improve salt tolerance of grafted cucumbers by regulating ABA production and K+/Na+ homeostasis under salt stress. Finally, we found that CmoNAC1 bound to the promoters of CmoRBOHD1, CmoNCED6, CmoAKT1;2, and CmoHKT1;1 using yeast one-hybrid, luciferase, and electrophoretic mobility shift assays. In conclusion, pumpkin CmoNAC1 not only binds to the promoters of CmoRBOHD1 and CmoNCED6 to regulate the production of H2O2 and ABA signals in roots, but also binds to the promoters of CmoAKT1;2 and CmoHKT1;1 to increase the K+/Na+ ratio, thus improving salt tolerance of grafted cucumbers.

Cite this article

Download citation ▾
Yuquan Peng, Haishun Cao, Lvjun Cui, Ying Wang, Lanxing Wei, Shouyu Geng, Li Yang, Yuan Huang, Zhilong Bie. CmoNAC1 in pumpkin rootstocks improves salt tolerance of grafted cucumbers by binding to the promoters of CmoRBOHD1, CmoNCED6, CmoAKT1;2 and CmoHKT1;1 to regulate H2O2, ABA signaling and K+/Na+ homeostasis. Horticulture Research, 2023, 10 (9) : 157 DOI:10.1093/hr/uhad157

登录浏览全文

4963

注册一个新账户 忘记密码

Acknowledgements

This research was supported by grants from the National Natural Science Foundation of China (31772357, 32072653), the Natural Science Foundation of Hubei Province (2019CFA017), the Fundamental Research Funds for the Central Universities (2662023YLPY008), and the Ningbo Scientific and Technological Project (2021Z006).

Author contributions

Z.L.B., L.Y., and Y.H. conceived and designed the experiments. Y.Q.P., H.S.C., L.J.C., Y.W., L.X.W., and S.Y.G. performed the experiments and analyzed the data. Y.Q.P., Y.H., and Z.L.B. wrote the paper, and all authors read the final manuscript.

Data availability

The authors declare that all the data necessary to support the study’s conclusions are included in the paper and the supplementary materials, or can be obtained upon request from the corresponding author.

Conflict of interest

The authors declare that they have no competing interests.

References

[1]

Wang Y, Cao S, Guan C et al. Overexpressing the NAC transcription factor LpNAC13 from Lilium pumilum in tobacco negatively regulates the drought response and positively regulates the salt response. Plant Physiol Biochem. 2020; 149: 96-110

[2]

Zhao C, Zhang H, Song C et al. Mechanisms of plant responses and adaptation to soil salinity. Innovation. 2020; 1: 100017

[3]

Du Y, Liu X, Zhang L et al. Drip irrigation in agricultural saline-alkali land controls soil salinity and improves crop yield: evidence from a global meta-analysis. Sci Total Environ. 2023; 880: 163226

[4]

Jin K, Ran Y, Alengebawy A et al. Agro-environmental sustainability of using digestate fertilizer for solanaceous and leafy vegetables cultivation: insights on fertilizer efficiency and risk assessment. J Environ Manag. 2022; 320: 115895

[5]

Hameed A, Ahmed MZ, Hussain T et al. Effects of salinity stress on chloroplast structure and function. Cell. 2021; 10: 2023

[6]

Sanders D . The salinity challenge. New Phytol. 2020; 225: 1047-8

[7]

Van Zelm E, Zhang Y, Testerink C . Salt tolerance mechanisms of plants. Annu Rev Plant Biol. 2020; 71: 403-33

[8]

Isayenkov SV, Maathuis FJM . Plant salinity stress: many unanswered questions remain. Front Plant Sci. 2019; 10: 80

[9]

Meng Y, Yin Q, Yan Z et al. Exogenous silicon enhanced salt resistance by maintaining K+/Na+ homeostasis and antioxidant performance in alfalfa leaves. Front Plant Sci. 2020; 11: 1183

[10]

Hasanuzzaman M, Bhuyan M, Anee TI et al. Regulation of ascorbate-glutathione pathway in mitigating oxidative damage in plants under abiotic stress. Antioxidants (Basel). 2019; 8: 384

[11]

Che Y, Yao T, Wang H et al. Potassium ion regulates hormone, Ca2+ and H2O2 signal transduction and antioxidant activities to improve salt stress resistance in tobacco. Plant Physiol Biochem. 2022; 186: 40-51

[12]

Yu Z, Duan X, Luo L et al. How plant hormones mediate salt stress responses. Trends Plant Sci. 2020; 25: 1117-30

[13]

Hsu PK, Dubeaux G, Takahashi Y et al. Signaling mechanisms in abscisic acid-mediated stomatal closure. Plant J. 2021; 105: 307-21

[14]

Ma S, Zhou X, Jahan MS et al. Putrescine regulates stomatal opening of cucumber leaves under salt stress via the H2O2-mediated signaling pathway. Plant Physiol Biochem. 2022; 170: 87-97

[15]

Lu KK, Song RF, Guo JX et al. CycC1; 1-WRKY75 complex-mediated transcriptional regulation of SOS1 controls salt stress tolerance in Arabidopsis. Plant Cell. 2023; 35: 2570-91

[16]

Ma L, Han R, Yang Y et al. Phytochromes enhance SOS2-mediated PIF1 and PIF3 phosphorylation and degradation to promote Arabidopsis salt tolerance. Plant Cell. 2023; 35: 2997-3020

[17]

Shen C, Yuan J, Li X et al. Genome-wide identification of NHX (Na+/H+ antiporter) gene family in Cucurbita L. and functional analysis of CmoNHX1 under salt stress. Front Plant Sci. 2023; 14: 1136810

[18]

Wu Y, Liu N, Hu L et al. 5-Aminolevulinic acid improves morphogenesis and Na+ subcellular distribution in the apical cells of Cucumis sativus L. under salinity stress. Front Plant Sci. 2021; 12: 636121

[19]

Zhang M, Li Y, Liang X et al. A teosinte-derived allele of an HKT1 family sodium transporter improves salt tolerance in maize. Plant Biotechnol J. 2023; 21: 97-108

[20]

Peng Y, Cao H, Peng Z et al. Transcriptomic and functional characterization reveals CsHAK5;3 as a key player in K+ homeostasis in grafted cucumbers under saline conditions. Plant Sci. 2023; 326: 111509

[21]

Peng Y, Chen L, Zhu L et al. CsAKT1 is a key gene for the CeO2 nanoparticle’s improved cucumber salt tolerance: a validation from CRISPR-Cas9 lines. Environ Sci Nano. 2022; 9: 4367-81

[22]

Han F, Wang P, Chen X et al. An ethylene-induced NAC transcription factor acts as a multiple abiotic stress responsor in conifer. Hortic Res. 2023; 2023: uhad130

[23]

Niu X, Lu H, Fan Y et al. Manipulation of the transcription factor SlNAC1 for improved tolerance to abiotic stress in tomato. Plant Cell Environ. 2022; 45: 3537-50

[24]

Tu M, Wang X, Yin W et al. Grapevine VlbZIP30 improves drought resistance by directly activating VvNAC17 and promoting lignin biosynthesis through the regulation of three peroxidase genes. Hortic Res. 2020; 7: 150

[25]

Zhang XM, Yu HJ, Sun C et al. Genome-wide characterization and expression profiling of the NAC genes under abiotic stresses in Cucumis sativus. Plant Physiol Biochem. 2017; 113: 98-109

[26]

Chun I, Kim HJ, Hong S et al. Structural basis of DNA binding by the NAC transcription factor ORE1, a master regulator of plant senescence. Plant Commun. 2023; 4: 100510

[27]

Mao H, Li S, Chen B et al. Variation in cis-regulation of a NAC transcription factor contributes to drought tolerance in wheat. Mol Plant. 2022; 15: 276-92

[28]

Xiang Y, Sun X, Bian X et al. The transcription factor ZmNAC49 reduces stomatal density and improves drought tolerance in maize. J Exp Bot. 2021; 72: 1399-410

[29]

Cao X, Wei C, Duan W et al. Transcriptional and epigenetic analysis reveals that NAC transcription factors regulate fruit flavor ester biosynthesis. Plant J. 2021; 106: 785-800

[30]

Hu P, Zhang K, Yang C . BpNAC012 positively regulates abiotic stress responses and secondary wall biosynthesis. Plant Physiol. 2019; 179: 700-17

[31]

Chen K, Guo Y, Song M et al. Dual role of MdSND1 in the biosynthesis of lignin and in signal transduction in response to salt and osmotic stress in apple. Hortic Res. 2020; 7: 204

[32]

Li S, Wang N, Ji D et al. A GmSIN1/GmNCED3s/GmRbohBs feedforward loop acts as a signal amplifier that regulates root growth in soybean exposed to salt stress. Plant Cell. 2019; 31: 2107-30

[33]

Li M, Chen R, Jiang Q et al. GmNAC06, a NAC domain transcription factor enhances salt stress tolerance in soybean. Plant Mol Biol. 2021; 105: 333-45

[34]

Li X, Wang Q, Guo C et al. NtNAC053, a novel NAC transcription factor, confers drought and salt tolerances in tobacco. Front Plant Sci. 2022; 13: 817106

[35]

Srivastava R, Kobayashi Y, Koyama H et al. Cowpea NAC1/NAC2 transcription factors improve growth and tolerance to drought and heat in transgenic cowpea through combined activation of photosynthetic and antioxidant mechanisms. J Integr Plant Biol. 2023; 65: 25-44

[36]

Niu M, Lanxing W, Yuquan P et al. Mechanisms of increasing salt resistance of vegetables by grafting. Vegetable Res. 2022; 2: 1-9

[37]

Cao H, Wang L, Nawaz MA et al. Ectopic expression of pumpkin NAC transcription factor CmNAC1 improves multiple abiotic stress tolerance in Arabidopsis. Front Plant Sci. 2017; 8: 2052

[38]

Davoudi M, Song M, Zhang M et al. Long-distance control of pumpkin rootstock over cucumber scion under drought stress as revealed by transcriptome sequencing and mobile mRNAs identifications. Hortic Res. 2022; 9: uhab033

[39]

Song C, Acuna T, Adler-Agmon M et al. Leveraging a graft collection to develop metabolome-based trait prediction for the selection of tomato rootstocks with enhanced salt tolerance. Hortic Res. 2022; 9: uhac061

[40]

Rasool A, Mansoor S, Bhat KM et al. Mechanisms underlying graft union formation and rootstock scion interaction in horticultural plants. Front Plant Sci. 2020; 11: 590847

[41]

Lu X, Liu W, Wang T et al. Systemic long-distance signaling and communication between rootstock and scion in grafted vegetables. Front Plant Sci. 2020; 11: 460

[42]

Niu M, Huang Y, Sun S et al. Root respiratory burst oxidase homologue-dependent H2O2 production confers salt tolerance on a grafted cucumber by controlling Na+ exclusion and stomatal closure. J Exp Bot. 2018; 69: 3465-76

[43]

Niu M, Sun S, Nawaz MA et al. Grafting cucumber onto pumpkin induced early stomatal closure by increasing ABA sensitivity under salinity conditions. Front Plant Sci. 2019; 10: 1290

[44]

Wei L, Liu L, Chen Z et al. CmCNIH1 improves salt tolerance by influencing the trafficking of CmHKT1;1 in pumpkin. Plant J. 2023; 114: 1353-68

[45]

Yan Y, Wang S, Wei M et al. Effect of different rootstocks on the salt stress tolerance in watermelon seedlings. Hortic Plant J. 2018; 4: 239-49

[46]

Huang Y, Cao H, Yang L et al. Tissue-specific respiratory burst oxidase homolog-dependent H2O2 signaling to the plasma membrane H+-ATPase confers potassium uptake and salinity tolerance in Cucurbitaceae. J Exp Bot. 2019; 70: 5879-93

[47]

Devkar V, Thirumalaikumar VP, Xue GP et al. Multifaceted regulatory function of tomato SlTAF1 in the response to salinity stress. New Phytol. 2020; 225: 1681-98

[48]

Wang X, Chen K, Zhou M et al. GmNAC181 promotes symbiotic nodulation and salt tolerance of nodulation by directly regulating GmNINa expression in soybean. New Phytol. 2022; 236: 656-70

[49]

Zhang X, Long Y, Chen X et al. A NAC transcription factor OsNAC3 positively regulates ABA response and salt tolerance in rice. BMC Plant Biol. 2021; 21: 546

[50]

Zhang X, Long Y, Huang J et al. OsNAC45 is involved in ABA response and salt tolerance in rice. Rice. 2020; 13: 79

[51]

Meng X, Liu S, Zhang C et al. The unique sweet potato NAC transcription factor IbNAC3 modulates combined salt and drought stresses. Plant Physiol. 2023; 191: 747-71

[52]

Raziq A, Wang Y, Mohi Ud Din A et al. A comprehensive evaluation of salt tolerance in tomato (var. Ailsa Craig): responses of physiological and transcriptional changes in RBOH’s and ABA biosynthesis and signalling genes. Int J Mol Sci. 2022; 23: 1603

[53]

Martinez-Andujar C, Martinez-Perez A, Albacete A et al. Overproduction of ABA in rootstocks alleviates salinity stress in tomato shoots. Plant Cell Environ. 2021; 44: 2966-86

[54]

Lopez-Serrano L, Canet-Sanchis G, Selak GV et al. Physiological characterization of a pepper hybrid rootstock designed to cope with salinity stress. Plant Physiol Biochem. 2020; 148: 207-19

[55]

Kalladan R, Lasky JR, Sharma S et al. Natural variation in 9-cis-epoxycartenoid dioxygenase 3 and ABA accumulation. Plant Physiol. 2019; 179: 1620-31

[56]

Truong HA, Lee S, Trinh CS et al. Overexpression of the HDA15 gene confers resistance to salt stress by the induction of NCED3, an ABA biosynthesis enzyme. Front Plant Sci. 2021; 12: 640443

[57]

Niu M, Xie J, Chen C et al. An early ABA-induced stomatal closure, Na+ sequestration in leaf vein and K+ retention in mesophyll confer salt tissue tolerance in Cucurbita species. J Exp Bot. 2018; 69: 4945-60

[58]

Sun J, Cao H, Cheng J et al. Pumpkin CmHKT1;1 controls shoot Na+ accumulation via limiting Na+ transport from rootstock to scion in grafted cucumber. Int J Mol Sci. 2018; 19: 2648

[59]

Geng S, Sohail H, Cao H et al. An efficient root transformation system for CRISPRCas9-based analyses of shoot-root communication in cucurbit crops. Hortic Res. 2022; 9: uhab082

[60]

Chen L, Peng Y, Zhu L et al. CeO2 nanoparticles improved cucumber salt tolerance is associated with its induced early stimulation on antioxidant system. Chemosphere. 2022; 299: 134474

[61]

Love MI, Huber W, Anders S . Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. Genome Biol. 2014; 15: 550

[62]

Tilak P, Kotnik F, Nee G et al. Proteome-wide lysine acetylation profiling to investigate the involvement of histone deacetylase HDA5 in the salt stress response of Arabidopsis leaves. Plant J. 2023; 115: 275-92

[63]

Luo C, Wang S, Ning K et al. LsAP2 regulates leaf morphology by inhibiting CIN-like TCP transcription factors and repressing LsKAN2 in lettuce. Hortic Res. 2021; 8: 184

[64]

Yang X, Luo Y, Bai H et al. DgMYB2 improves cold resistance in chrysanthemum by directly targeting DgGPX1. Hortic Res. 2022; 9: uhab028

PDF (1537KB)

83

Accesses

0

Citation

Detail

Sections
Recommended

/