The SlHB8 acts as a negative regulator in tapetum development and pollen wall formation in Tomato

Caiyu Wu , Yang Yang , Deding Su , Canye Yu , Zhiqiang Xian , Zanlin Pan , Hongling Guan , Guojian Hu , Da Chen , Zhengguo Li , Riyuan Chen , Yanwei Hao

Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) : uhac185

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Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) :uhac185 DOI: 10.1093/hr/uhac185
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The SlHB8 acts as a negative regulator in tapetum development and pollen wall formation in Tomato
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Abstract

Pollen development is crucial for the fruit setting process of tomatoes, but the underlying regulatory mechanism remains to be elucidated. Here, we report the isolation of one HD-Zip III family transcription factor, SlHB8, whose expression levels decreased as pollen development progressed. SlHB8 knockout using CRISPR/Cas9 increased pollen activity, subsequently inducing fruit setting, whereas overexpression displayed opposite phenotypes. Overexpression lines under control of the 35 s and p2A11 promoters revealed that SlHB8 reduced pollen activity by affecting early pollen development. Transmission electron microscopy and TUNEL analyses showed that SlHB8 accelerated tapetum degradation, leading to collapsed and infertile pollen without an intine and an abnormal exine. RNA-seq analysis of tomato anthers at the tetrad stage showed that SlHB8 positively regulates SPL/NZZ expression and the tapetum programmed cell death conserved genetic pathway DYT1–TDF1–AMS–MYB80 as well as other genes related to tapetum and pollen wall development. In addition, DNA affinity purification sequencing, electrophoretic mobility shift assay, yeast one-hybrid assay and dual-luciferase assay revealed SlHB8 directly activated the expression of genes related to pollen wall development. The study findings demonstrate that SlHB8 is involved in tapetum development and degradation and plays an important role in anther development.

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Caiyu Wu, Yang Yang, Deding Su, Canye Yu, Zhiqiang Xian, Zanlin Pan, Hongling Guan, Guojian Hu, Da Chen, Zhengguo Li, Riyuan Chen, Yanwei Hao. The SlHB8 acts as a negative regulator in tapetum development and pollen wall formation in Tomato. Horticulture Research, 2022, 9 (1) : uhac185 DOI:10.1093/hr/uhac185

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References

[1]

Borg M, Brownfield L, Twell D . Male gametophyte development: a molecular perspective. J Exp Bot. 2009; 60: 1465-78.

[2]

Honys D, Twell D . Transcriptome analysis of haploid male gametophyte development in Arabidopsis. Genome Biol. 2004; 5: R85.

[3]

Parish RW, Li SF . Death of a tapetum: a programme of developmental altruism. Plant Sci. 2010; 178: 73-89.

[4]

Ni E, Zhou L, Li J et al. OsCER1 plays a pivotal role in very-long-chain alkane biosynthesis and affects plastid development and programmed cell death of Tapetum in Rice (Oryza sativa L.) . Front Plant Sci. 2018; 9: 1217.

[5]

Zheng S, Dong J, Lu J et al. A cytosolic pentatricopeptide repeat protein is essential for tapetal plastid development by regulating OsGLK1 transcript levels in rice. New Phytol. 2022; 234: 1678-95.

[6]

Pan XY, Yan W, Chang Z et al. OsMYB80 regulates anther development and pollen fertility by targeting multiple biological pathways. Plant Cell Physiol. 2020; 61: 988-1004.

[7]

Wang YK, Ye H, Bai JF et al. The regulatory framework of developmentally programmed cell death in floral organs: a review. Plant Physiol Biochem. 2021; 158: 103-12.

[8]

Phan HA, Iacuone S, Li SF et al. The MYB80 transcription factor is required for pollen development and the regulation of Tapetal programmed cell death in Arabidopsis thaliana. Plant Cell. 2011; 23: 2209-24.

[9]

Zhu J, Chen H, Li H et al. Defective in Tapetal development and function 1 is essential for anther development and tapetal function for microspore maturation in Arabidopsis. Plant J. 2008; 55: 266-77.

[10]

Xu Y, Iacuone S, Li SF et al. MYB80 homologues in Arabidopsis, cotton and brassica: regulation and functional conservation in tapetal and pollen development. BMC Plant Biol. 2014; 14: 278.

[11]

Zhu J, Lou Y, Xu XF et al. A genetic pathway for Tapetum development and function in Arabidopsis. J Integr Plant Biol. 2011; 53: 892-900.

[12]

Liu XF, Ning K, Che G et al. CsSPL functions as an adaptor between HD-ZIPIII and CsWUS transcription factors regulating anther and ovule development in Cucumis sativus (cucumber). Plant J. 2018; 94: 535-47.

[13]

Li XR, Lian H, Zhao QX et al. MicroRNA166 monitors SPOROCYTELESS/NOZZLE for building of the anther internal boundary. Plant Physiol. 2019; 181: 208-20.

[14]

Yang WC, Ye D, Xu J et al. The SPOROCYTELESS gene of Arabidopsis is required for initiation of sporogenesis and encodes a novel nuclear protein. Genes Dev. 1999; 13: 2108-17.

[15]

Jia GX, Liu XD, Owen HA et al. Signaling of cell fate determination by the TPD1 small protein and EMS1 receptor kinase. Proc Natl Acad Sci U S A. 2008; 105: 2220-5.

[16]

Gu JN, Zhu J, Yu Y et al. DYT1 directly regulates the expression of TDF1 for tapetum development and pollen wall formation in Arabidopsis. Plant J. 2014; 80: 1005-13.

[17]

Jeong HJ, Kang JH, Zhao M et al. Tomato male sterile 10(35) is essential for pollen development and meiosis in anthers. J Exp Bot. 2014; 65: 6693-709.

[18]

Xu J, Yang C, Yuan Z et al. The ABORTED MICROSPORES regulatory network is required for Postmeiotic male reproductive development in Arabidopsis thaliana. Plant Cell. 2010; 22: 91-107.

[19]

Zhang ZB, Zhu J, Gao JF et al. Transcription factor AtMYB103 is required for anther development by regulating tapetum development, callose dissolution and exine formation in Arabidopsis. Plant J. 2007; 52: 528-38.

[20]

Vizcay-Barrena G, Wilson ZA . Altered tapetal PCD and pollen wall development in the Arabidopsis ms1 mutant. J Exp Bot. 2006; 57: 2709-17.

[21]

Ma XF, Wu Y, Zhang GF . Formation pattern and regulatory mechanisms of pollen wall in Arabidopsis. J Plant Physiol. 2021; 260: 153388.

[22]

Lou Y, Xu XF, Zhu J et al. The tapetal AHL family protein TEK determines nexine formation in the pollen wall. Nat Commun. 2014; 5: 3855.

[23]

Xiong SX, Lu JY, Lou Y et al. The transcription factors MS188 and AMS form a complex to activate the expression of CYP703A2 for sporopollenin biosynthesis in Arabidopsis thaliana. Plant J. 2016; 88: 936-46.

[24]

Lu JY, Xiong SX, Yin W et al. MS1, a direct target of MS188, regulates the expression of key sporophytic pollen coat protein genes in Arabidopsis. J Exp Bot. 2020; 71: 4877-89.

[25]

Pan CT, Yang D, Zhao X et al. PIF4 negatively modulates cold tolerance in tomato anthers via temperature-dependent regulation of tapetal cell death. Plant Cell. 2021; 33: 2320-39.

[26]

Liu XY, Yang M, Liu X et al. A putative bHLH transcription factor is a candidate gene for male sterile 32, a locus affecting pollen and tapetum development in tomato. Hortic Res. 2019; 6: 88.

[27]

Zhang Y, Zhang B, Yang T et al. The GAMYB-like gene SlMYB33 mediates flowering and pollen development in tomato. Hortic Res. 2020; 7: 133.

[28]

Perez-Martin F, Pineda B, Garcia-Sogo B et al. Developmental role of the tomato mediator complex subunit MED18 in pollen ontogeny. Plant J. 2018; 96: 300-15.

[29]

Yan MY, Xie DL, Cao JJ et al. Brassinosteroid-mediated reactive oxygen species are essential for tapetum degradation and pollen fertility in tomato. Plant J. 2020; 102: 931-47.

[30]

Chen LF, Yang D, Zhang Y et al. Evidence for a specific and critical role of mitogen-activated protein kinase 20 in uni-to-binucleate transition of microgametogenesis in tomato. New Phytol. 2018; 219: 176-94.

[31]

Gan ZY, Feng Y, Wu T et al. Downregulation of the auxin transporter gene SlPIN8 results in pollen abortion in tomato. Plant Mol Biol. 2019; 99: 561-73.

[32]

Wang R, Shi CL, Wang X et al. Tomato SlIDA has a critical role in tomato fertilization by modifying reactive oxygen species homeostasis. Plant J. 2020; 103: 2100-18.

[33]

Ohashi-Ito K, Kubo M, Demura T et al. Class III homeodomain leucine-zipper proteins regulate xylem cell differentiation. Plant Cell Physiol. 2005; 46: 1646-56.

[34]

Kim J, Jung JH, Reyes JL et al. microRNA-directed cleavage of ATHB15 mRNA regulates vascular development in Arabidopsis inflorescence stems. Plant J. 2005; 42: 84-94.

[35]

Rong FX, Chen F, Huang L et al. A mutation in class III homeodomain-leucine zipper (HD-ZIP III) transcription factor results in curly leaf (cul) in cucumber (Cucumis sativus L.). Theor Appl Genet. 2019; 132: 113-23.

[36]

Byrne ME . Shoot meristem function and leaf polarity: the role of class III HD-ZIP genes. PLoS Genet. 2006; 2: e89-790 e89.

[37]

Smith ZR, Long JA . Control of Arabidopsis apical-basal embryo polarity by antagonistic transcription factors. Nature. 2010; 464: 423-6.

[38]

Emery JF, Floyd SK, Alvarez J et al. Radial patterning of Arabidopsis shoots by class III HD-ZIP and KANADI genes. Curr Biol. 2003; 13: 1768-74.

[39]

Prigge MJ, Otsuga D, Alonso JM et al. Class III homeodomain-leucine zipper gene family members have overlapping, antagonistic, and distinct roles in Arabidopsis development. Plant Cell. 2005; 17: 61-76.

[40]

Zhong R, Ye ZH . Regulation of HD-ZIP III genes by MicroRNA 165. Plant Signal Behav. 2007; 2: 351-3.

[41]

McConnell JR, Emery J, Eshed Y et al. Role of PHABULOSA and PHAVOLUTA in determining radial patterning in shoots. Nature (London). 2001; 411: 709-13.

[42]

Carlsbecker A, Lee JY, Roberts CJ et al. Cell signalling by microRNA165/6 directs gene dose-dependent root cell fate. Nature. 2010;465:316-21.

[43]

Clepet C, Devani RS, Boumlik R et al. The miR166-SlHB15A regulatory module controls ovule development and parthenocarpic fruit set under adverse temperatures in tomato. Mol Plant. 2021; 14: 1185-98.

[44]

Hu GJ, Fan J, Xian Z et al. Overexpression of SlREV alters the development of the flower pedicel abscission zone and fruit formation in tomato. Plant Sci. 2014; 229: 86-95.

[45]

Yang Yang XZ, Riyuan C, Yanwei H . Cloning of SlHB8 gene from tomato and its response to abiotic stress. Northern Horticulture. 2019; 18: 10-8.

[46]

Liu X, Wu C, Su D et al. The SlHB8 acts as a negative regulator in stem development and lignin biosynthesis. Int J Mol Sci. 2021; 22: 13343.

[47]

Yang Yang XZ, Riyuan C, H. Construction of plant overexpression vector of SlHB8 gene in tomato and genetic transformation. Molecular Plant Breed. 2020; 18: 1513-9.

[48]

Ito T, Wellmer F, Yu H et al. The homeotic protein AGAMOUS controls microsporogenesis by regulation of SPOROCYTELESS. Nature. 2004; 430: 356-60.

[49]

Rojas-Gracia P, Roque E, Medina M et al. The parthenocarpic hydra mutant reveals a new function for a SPOROCYTELESS-like gene in the control of fruit set in tomato. New Phytol. 2017; 214: 1198-212.

[50]

Zhou GK, Kubo M, Zhong RQ et al. Overexpression of miR165 affects apical meristem formation, organ polarity establishment and vascular development in Arabidopsis. Plant Cell Physiol. 2007; 48: 391-404.

[51]

Zhang W, Sun Y, Timofejeva L et al. Regulation of Arabidopsis tapetum development and function by dysfunctional tapetum1 (dyt1) encoding a putative bHLH transcription factor. Development. 2006; 133: 3085-95.

[52]

Wang K, Guo ZL, Zhou WT et al. The regulation of Sporopollenin biosynthesis genes for rapid Pollen Wall formation. Plant Physiol. 2018; 178: 283-94.

[53]

Huang L, Ye Y, Zhang Y et al. BcMF9, a novel polygalacturonase gene, is required for both Brassica campestris intine and exine formation. Ann Bot. 2009; 104: 1339-51.

[54]

Xiong XP, Zhou D, Xu L et al. BcPME37c is involved in pollen intine formation in Brassica campestris. Biochem Biophys Res Commun. 2019; 517: 63-8.

[55]

Li J, Yu MA, Geng LL et al. The fasciclin-like arabinogalactan protein gene, FLA3, is involved in microspore development of Arabidopsis. Plant J. 2010; 64: 482-97.

[56]

Yue XY, Lin SE, Yu YJ et al. The putative pectin methylesterase gene, BcMF23a, is required for microspore development and pollen tube growth in Brassica campestris. Plant Cell Rep. 2018; 37: 1003-9.

[57]

Schnurr JA, Storey KK, Jung HJG et al. UDP-sugar pyrophosphorylase is essential for pollen development in Arabidopsis. Planta. 2006; 224: 520-32.

[58]

Lin S, Dong H, Zhang F et al. BcMF8, a putative arabinogalactan protein-encoding gene, contributes to pollen wall development, aperture formation and pollen tube growth in Brassica campestris. Ann Bot. 2014; 113: 777-88.

[59]

Leroux C, Bouton S, Kiefer-Meyer MC et al. PECTIN METHYLESTERASE48 is involved in Arabidopsis pollen grain germination. Plant Physiol. 2015; 167: 367-80.

[60]

Jiang JJ, Yao L, Yu Y et al. PECTATE LYASE-LIKE 9 from Brassica campestris is associated with intine formation. Plant Sci. 2014; 229: 66-75.

[61]

Jiang JJ, Yao L, Yu Y et al. PECTATE LYASE-LIKE10 is associated with pollen wall development in Brassica campestris. J Integr Plant Biol. 2014; 56: 1095-105.

[62]

Lin S, Yue X, Miao Y et al. The distinct functions of two classical arabinogalactan proteins BcMF8 and BcMF18 during pollen wall development in Brassica campestris. Plant J. 2018; 94: 60-76.

[63]

Van Haaren MJ, Houck CM . A functional map of the fruit-specific promoter of the tomato 2A11 gene. Plant Mol Biol. 1993; 21: 625-40.

[64]

Chen CJ, Chen H, Zhang Y et al. TBtools: an integrative toolkit developed for interactive analyses of big biological data. Mol Plant. 2020;13:1194-202.

[65]

Drakakaki G, Zabotina O, Delgado I et al. Arabidopsis reversibly glycosylated polypeptides 1 and 2 are essential for pollen development. Plant Physiol. 2006; 142: 1480-92.

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