Tetraketide α-pyrone reductases in sporopollenin synthesis pathway in Gerbera hybrida: diversification of the minor function

Lingping Zhu , Teng Zhang , Teemu H. Teeri

Horticulture Research ›› 2021, Vol. 8 ›› Issue (1) : 207

PDF (1710KB)
Horticulture Research ›› 2021, Vol. 8 ›› Issue (1) :207 DOI: 10.1038/s41438-021-00642-8
Article
research-article
Tetraketide α-pyrone reductases in sporopollenin synthesis pathway in Gerbera hybrida: diversification of the minor function
Author information +
History +
PDF (1710KB)

Abstract

The structurally robust biopolymer sporopollenin is the major constituent of the exine layer of pollen wall and plays a vital role in plant reproductive success. The sporopollenin precursors are synthesized through an ancient polyketide biosynthetic pathway consisting of a series of anther-specific enzymes that are widely present in all land plant lineages. Tetraketide α-pyrone reductase 1 (TKPR1) and TKPR2 are two reductases catalyzing the final reduction of the carbonyl group of the polyketide synthase-synthesized tetraketide intermediates to hydroxylated α-pyrone compounds, important precursors of sporopollenin. In contrast to the functional conservation of many sporopollenin biosynthesis associated genes confirmed in diverse plant species, TKPR2’s role has been addressed only in Arabidopsis, where it plays a minor role in sporopollenin biosynthesis. We identified in gerbera two non-anther-specific orthologues of AtTKPR2, Gerbera reductase 1 (GRED1) and GRED2. Their dramatically expanded expression pattern implies involvement in pathways outside of the sporopollenin pathway. In this study, we show that GRED1 and GRED2 are still involved in sporopollenin biosynthesis with a similar secondary role as AtTKPR2 in Arabidopsis. We further show that this secondary role does not relate to the promoter of the gene, AtTKPR2 cannot rescue pollen development in Arabidopsis even when controlled by the AtTKPR1 promoter. We also identified the gerbera orthologue of AtTKPR1, GTKPR1, and characterized its crucial role in gerbera pollen development. GTKPR1 is the predominant TKPR in gerbera pollen wall formation, in contrast to the minor roles GRED1 and GRED2. GTKPR1 is in fact an excellent target for engineering male-sterile gerbera cultivars in horticultural plant breeding.

Cite this article

Download citation ▾
Lingping Zhu, Teng Zhang, Teemu H. Teeri. Tetraketide α-pyrone reductases in sporopollenin synthesis pathway in Gerbera hybrida: diversification of the minor function. Horticulture Research, 2021, 8 (1) : 207 DOI:10.1038/s41438-021-00642-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Jiang, J., Zhang, Z. & Cao, J. Pollen wall development: the associated enzymes and metabolic pathways. Plant Biol. 15, 249-263 (2013).

[2]

Quilichini, T. D., Grienenberger, E. & Douglas, C. J. The biosynthesis, composition and assembly of the outer pollen wall: a tough case to crack. Phytochemistry 113, 170-182 (2015).

[3]

Wallace, S., Fleming, A., Wellman, C. H. & Beerling, D. J. Evolutionary development of the plant spore and pollen wall. AoB Plants 11, plr027 (2011).

[4]

Brooks, J. & Shaw, G. Sporopollenin: a review of its chemistry, palaeochemistry and geochemistry. Grana 17, 91-97 (1978).

[5]

Ariizumi, T. & Toriyama, K. Genetic regulation of sporopollenin synthesis and pollen exine development. Annu. Rev. Plant Biol. 62, 437-460 (2011).

[6]

Ahlers, F., Thom, I., Lambert, J., Kuckuk, R. & Wiermann, R. 1H NMR analysis of sporopollenin from Typha Angustifolia. Phytochemistry 50, 1095-1098 (1999).

[7]

Xue, J. S. et al. Phenylpropanoid derivatives are essential components of sporopollenin in vascular plants. Mol. Plant 13, 1644-1653 (2020).

[8]

Li, F. S., Phyo, P., Jacobowitz, J., Hong, M. & Weng, J. K. The molecular structure of plant sporopollenin. Nat. Plants 5, 41-46 (2019).

[9]

Dobritsa, A. A. et al. CYP704B1 is a long-chain fatty acid ω-Hydroxylase essential for sporopollenin synthesis in pollen of Arabidopsis. Plant Physiol. 151, 574-589 (2009).

[10]

De Azevedo Souza, C. et al. A novel fatty Acyl-CoA synthetase is required for pollen development and sporopollenin biosynthesis in Arabidopsis. Plant Cell 21, 507-525 (2009).

[11]

Kim, S. S. et al. LAP6/POLYKETIDE SYNTHASE A and LAP5/POLYKETIDE SYNTHASE B encode hydroxyalkyl α-pyrone synthases required for pollen development and sporopollenin biosynthesis in Arabidopsis thaliana. Plant Cell 22, 4045-4066 (2010).

[12]

Grienenberger, E. et al. Analysis of TETRAKETIDE α-PYRONE reductase function in Arabidopsis thaliana reveals a previously unknown, but conserved, biochemical pathway in sporopollenin monomer biosynthesis. Plant Cell 22, 4067-4083 (2010).

[13]

Tang, L. K., Chu, H., Yip, W. K., Yeung, E. C. & Lo, C. An anther-specific dihydroflavonol 4-reductase-like gene (DRL1) is essential for male fertility in Arabidopsis. N. Phytol. 181, 576-587 (2009).

[14]

Morant, M. et al. CYP703 is an ancient cytochrome P450 in land plants catalyzing in-chain hydroxylation of lauric acid to provide building blocks for sporopollenin synthesis in pollen. Plant Cell 19, 1473-1487 (2007).

[15]

Kim, S. S. & Douglas, C. J. Sporopollenin monomer biosynthesis in Arabidopsis. J. Plant Biol. 56, 1-6 (2013).

[16]

Wang, Y., Lin, Y.-C., So, J., Du, Y. & Lo, C. Conserved metabolic steps for sporopollenin precursor formation in tobacco and rice. Physiol. Plant 149, 13-24 (2013).

[17]

Qin, M. et al. Heterodimer formation of BnPKSA or BnPKSB with BnACOS5 constitutes a multienzyme complex in tapetal cells and is involved in male reproductive development in Brassica napus. Plant Cell Physiol. 57, 1643-1656 (2016).

[18]

Lallemand, B., Erhardt, M., Heitz, T. & Legrand, M. Sporopollenin biosynthetic enzymes interact and constitute a metabolon localized to the endoplasmic reticulum of tapetum cells. Plant Physiol. 162, 616-625 (2013).

[19]

Teeri, T. H., Elomaa, P., Kotilainen, M. & Albert, V. A. Mining plant diversity: Gerbera as a model system for plant developmental and biosynthetic research. Bioessays 28, 756-767 (2006).

[20]

Helariutta, Y. et al. Chalcone synthase-like genes active during corolla development are differentially expressed and encode enzymes with different catalytic properties in Gerbera hybrida (Asteraceae). Plant Mol. Biol. 28, 47-60 (1995).

[21]

Deng, X. et al. Functional diversification of duplicated chalcone synthase genes in anthocyanin biosynthesis of Gerbera hybrida. N. Phytol. 201, 1469-1483 (2014).

[22]

Eckermann, S. et al. New pathway to polyketides in plants. Nature 396, 387-390 (1998).

[23]

Pietiäinen, M. et al. Two polyketide synthases are necessary for 4-hydroxy-5-methylcoumarin biosynthesis in Gerbera hybrida. Plant J. 87, 548-558 (2016).

[24]

Kontturi, J. et al. Functional characterization and expression of GASCL1 and GASCL2, two anther-specific chalcone synthase like enzymes from Gerbera hybrida. Phytochemistry 134, 38-45 (2017).

[25]

Altschul, S. F., Gish, W., Miller, W., Myers, E. W. & Lipman, D. J. Basic local alignment search tool. J. Mol. Biol. 215, 403-410 (1990).

[26]

Wang, K. et al. The regulation of sporopollenin biosynthesis genes for rapid pollen wall formation. Plant Physiol. 178, 283-294 (2018).

[27]

Mitsuda, N. et al. Efficient production of male and female sterile plants by expression of a chimeric repressor in Arabidopsis and rice. Plant Biotechnol. J. 4, 325-332 (2006).

[28]

Ran, F. A. et al. Genome engineering using the CRISPR-Cas9 system. Nat. Protoc. 8, 2281-2308 (2013).

[29]

Ruokolainen, S. et al. Characterization of SQUAMOSA-like genes in Gerbera hybrida, including one involved in reproductive transition. BMC Plant Biol. 10, 1-11 (2010).

[30]

Zhang, X., Henriques, R., Lin, S. S., Niu, Q. W. & Chua, N. H. Agrobacterium-mediated transformation of Arabidopsis thaliana using the floral dip method. Nat. Protoc. 1, 641-646 (2006).

[31]

Helariutta, Y., Elomaa, P., Kotilainen, M., Seppänen, P. & Teeri, T. H. Cloning of cDNA coding for dihydroflavonol-4-reductase (DFR) and characterization of dfr expression in the corollas of Gerbera hybrida var. Regina (Compositae). Plant Mol. Biol. 22, 183-193 (1993).

[32]

Smyth, D. R., Bowman, J. L. & Meyerowitz, E. M. Early flower development in Arabidopsis. Plant Cell 2, 755-767 (1990).

[33]

Sievers, F. et al. Fast, scalable generation of high-quality protein multiple sequence alignments using Clustal Omega. Mol. Syst. Biol. 7, 539 (2011).

[34]

Kumar, S., Stecher, G., Li, M., Knyaz, C. & Tamura, K. MEGA X: molecular evolutionary genetics analysis across computing platforms. Mol. Biol. Evol. 35, 1547-1549 (2018).

[35]

Katzen, F. Gateway® recombinational cloning: a biological operating system. Expert Opin. Drug Discov. 2, 571-589 (2007).

[36]

Karimi, M., Inzé, D. & Depicker, A. GATEWAY™ vectors for Agrobacterium-mediated plant transformation. Trends Plant Sci. 7, 193-195 (2002).

[37]

Deblaere, R. et al. Efficient octopine Ti plasmid-derived vectors for Agrobacterium-mediated gene transfer to plants. Nucleic Acids Res. 13, 4777-4788 (1985).

[38]

Elomaa, P. & Teeri, T. H. Biotechnology in Agriculture and Forestry, 48 (ed Bajaj, Y. P. S.) (Springer, 2001).

[39]

Koncz, C. & Schell, J. The promoter of TL-DNA gene 5 controls the tissue-specific expression of chimaeric genes carried by a novel type of Agrobacterium binary vector. Mol. Gen. Genet. 204, 383-396 (1986).

[40]

Pfaffl, M. W. A new mathematical model for relative quantification in real-time RT-PCR. Nucleic Acids Res. 29, e45 (2001).

[41]

Peterson, R., Slovin, J. P. & Chen, C. A simplified method for differential staining of aborted and non-aborted pollen grains. Int. J. Plant Biol. 1, 66-69 (2010).

PDF (1710KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/