Ariizumi, T., Toriyama, K., 2011. Genetic regulation of sporopollenin synthesis and pollen exine development. Annu. Rev. Plant Biol. 62, 437-460
|
Boutrot F, Chantret N, Gautier MF (2008) Genome-wide analysis of the rice and Arabidopsis non-specific lipid transfer protein (nsLtp) gene families and identification of wheat nsLtp genes by EST data mining. BMC Genomics 9, 86
|
Bubert, H., Lambert, J., Steuernagel, S., Ahlers, F., and Wiermann, R. 2002. Continuous decomposition of sporopollenin from pollen of Typha angustifolia L. by acidic methanolysis. Z. Naturforsch. C J Biosci. 57, 1035-1041
|
Chen, W.W., Yu, X.H., Zhang, K.S., Shi, J.X., De Oliveira, S., Schreiber, L., Shanklin, J., Zhang, D.B., 2011. Male Sterile2 encodes a plastid-localized fatty acyl carrier protein reductase required for pollen exine development in Arabidopsis. Plant Physiol. 157, 842-853
|
Choi, H., Jin, J.Y., Choi, S., Hwang, J.U., Kim, Y.Y., Suh, M.C., Lee, Y., 2011. An ABCG/WBC-type ABC transporter is essential for transport of sporopollenin precursors for exine formation in developing pollen. Plant J. 65, 181-193
|
de Azevedo Souza, C., Kim, S.S., Koch, S., Kienow, L., Schneider, K., McKim, S.M., Haughn, G.W., Kombrink, E., Douglas, C.J., 2009. A novel fatty Acyl-CoA Synthetase is required for pollen development and sporopollenin biosynthesis in Arabidopsis. Plant Cell 21, 507–525
|
Dobritsa, A.A., Shrestha, J., Morant, M., Pinot, F., Matsuno, M., Swanson, R., Moller, B.L., Preuss, D., 2009. CYP704B1 is a long-chain fatty acid ω-hydroxylase essential for sporopollenin synthesis in pollen of Arabidopsis. Plant Physiol. 151, 574-589
|
Domi´nguez, E., Mercado, J.A., Quesada, M.A., and Heredia, A. 1999. Pollen sporopollenin: degradation and structural elucidation. Sex. Plant Reprod. 12, 171-178
|
Edlund, A.F., Swanson, R., Preuss, D., 2004. Pollen and stigma structure and function: the role of diversity in pollination. Plant Cell 16, S84-S97
|
Edstam, M.M., Edqvist, J., 2014. Involvement of GPI-anchored lipid transfer proteins in the development of seed coats and pollen in Arabidopsis thaliana. Physiol. Plant. 152, 32-42
|
Ge, X.C., Chen, J.C., Li, N., Lin, Y., Sun, C.R., Cao, K.M., 2003. Resistance function of rice lipid transfer protein LTP110. J. Biochem. Mol. Biol. 36, 603-607
|
Hu, L.F., Tan, H.X., Liang, W.Q., Zhang, D.B., 2010. The Post-meiotic Deficicent Anther1 (PDA1) gene is required for post-meiotic anther development in rice. J. Genet. Genomics 37, 37-46
|
Huang, M.D., Chen, T.L., Huang, A.H., 2013. Abundant type III lipid transfer proteins in Arabidopsis tapetum are secreted to the locule and become a constituent of the pollen exine. Plant Physiol. 163, 1218-1229
|
Huang, M.D., Wei, F.J., Wu, C.C., Hsing, Y.I., Huang, A.H., 2009. Analyses of advanced rice anther transcriptomes reveal global tapetum secretory functions and potential proteins for lipid exine formation. Plant Physiol. 149, 694-707
|
Jiang, J., Zhang, Z., Cao, J., 2013. Pollen wall development: the associated enzymes and metabolic pathways. Plant Biol. 15, 249-263
|
Kader, J.C., 1996. Lipid-transfer proteins in plants. Annu. Rev. Plant Physiol. Plant Mol. Biol. 47, 627-654
|
Kawahara, Y., et al., 2013. Improvement of the Oryza sativa Nipponbare reference genome using next generation sequence and optical map data. Rice 6, 4
|
Li, F.S., Phyo, P., Jacobowitz, J., Hong, M., and Weng, J.K. 2019. The molecular structure of plant sporopollenin. Nat. Plants 5, 41-46
|
Li, H., Kim, Y.J., Yang, L., Liu, Z., Zhang, J., Shi, H., Huang, G., Persson, S., Zhang, D., Liang, W., 2020. Grass-specific EPAD1 is essential for pollen exine patterning in rice. Plant Cell 32, 3961-3977
|
Li, H., Pinot, F., Sauveplane, V., Werck-Reichhart, D., Diehl, P., Schreiber, L., Franke, R., Zhang, P., Chen, L., Gao, Y.W., 2010. Cytochrome P450 family member CYP704B2 catalyzes the ω-hydroxylation of fatty acids and is required for anther cutin biosynthesis and pollen exine formation in rice. Plant Cell 22, 173-190
|
Li, Y.L., Li, D.D., Guo, Z.L., Shi, Q.S., Xiong, S.X., Zhang, C., Zhu, J., Yang, Z.N., 2016. OsACOS12, an orthologue of Arabidopsis acyl-CoA synthetase5, plays an important role in pollen exine formation and anther development in rice. BMC Plant Biol. 16, 256
|
Liu, W.Z., Xie, X.R., Ma, X.L., Li, J., Chen, J.H., Liu, Y.G., 2015. DSDecode: A web-based tool for decoding of sequencing chromatograms for genotyping of targeted mutations. Mol. Plant 8, 1431-1433
|
Ma, H., 2005. Molecular genetic analyses of microsporogenesis and microgametogenesis in flowering plants. Annu. Rev. Plant Biol. 56, 393-434
|
Ma, X.L., Zhang, Q.Y., Zhu, Q.L., Liu, W., Chen, Y., Qiu, R., Wang, B., Yang, Z.F., Li, H.Y., Lin, Y.R., 2015. A robust CRISPR/Cas9 system for convenient, high-efficiency multiplex genome editing in monocot and dicot plants. Mol. Plant 8, 1274-1284
|
McCormick, S., 1993. Male gametophyte development. Plant Cell 5, 1265-1275
|
Morant, M., Jorgensen, K., Schaller, H., Pinot, F., Moller, B.L., Werck-Reichhart, D., Bak, S., 2007. 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
|
Quilichini, T.D., Douglas, C.J., Samuels, A.L., 2014a. New views of tapetum ultrastructure and pollen exine development in Arabidopsis thaliana. Ann. Bot. 114, 1189-1201
|
Quilichini, T.D., Samuels, A.L., Douglas, C.J., 2014b. ABCG26-mediated polyketide trafficking and hydroxycinnamoyl spermidines contribute to pollen wall exine formation in Arabidopsis. Plant Cell 26, 4483-4498
|
Quilichini, T.D., Grienenberger, E., and Douglas, C.J. 2015. The biosynthesis, composition and assembly of the outer pollen wall: a tough case to crack. Phytochemistry 113, 170-182
|
Shi, J.X., Cui, M.H., Yang, L., Kim, Y.J., Zhang, D.B., 2015. Genetic and biochemical mechanisms of pollen wall development. Trends Plant Sci. 20, 741-753
|
Shi, J., Tan, H.X., Yu, X.H., Liu, Y.Y., Liang, W.Q., Ranathunge, K., Franke, R.B., Schreiber, L., Wang, Y.J., Kai, G.Y., 2011. Defective pollen wall is required for anther and microspore development in rice and encodes a fatty acyl carrier protein reductase. Plant Cell 23, 2225-2246
|
Tao, Y., Zou, T., Zhang, X., Liu, R., Chen, H., Yuan, G.Q., Zhou, D., Xiong, P.P., He, Z.Y., Li, G.W., 2021. Secretory lipid transfer protein OsLTPL94 acts as a target of EAT1 and is required for rice pollen wall development. Plant J. 108, 358-377
|
Tsirigos K.D., Peters C., Shu N., Kall L., Elofsson A., 2015. The TOPCONS web server for combined membrane protein topology and signal peptide prediction. Nucleic Acids Res. 43, W401-W407
|
Tsou, C.H., Cheng, P.C., Tseng, C.M., Yen, H.J., Fu, Y.L., You, T.R., Walden, D.B., 2015. Anther development of maize (Zea mays) and longstamen rice (Oryza longistaminata) revealed by cryo-SEM, with foci on locular dehydration and pollen arrangement. Plant Reprod. 28, 47-60
|
Xie, X.R., Ma, X.L., Zhu, Q.L., Zeng, D.C., Li, G.S., Liu, Y.G., 2017. CRISPR-GE: A convenient software toolkit for CRISPR-based genome editing. Mol. Plant 10, 1246-1249
|
Xie, X.R., Zhang, Z.X., Zhao, Z., Xie, Y.Y., Li, H.Y., Ma, X.L., Liu, Y.G., and Chen, L.T., 2020. The mitochondrial aldehyde dehydrogenase OsALDH2b negatively regulates tapetum degeneration in rice. J. Exp. Bot. 71, 2551-2560
|
Xu, J., Ding, Z.W., Vizcay-Barrena, G., Shi, J.X., Liang, W.Q., Yuan, Z., Werck-Reichhart, D., Schreiber, L., Wilson, Z.A., Zhang, D.B., 2014. ABORTED MICROSPORES acts as a master regulator of pollen wall formation in Arabidopsis. Plant Cell 26, 1544-1556
|
Xue, J.-S., Zhang, B., Zhan, H., Lv, Y.-L., Jia, X.-L., Wang, T., Yang, N.-Y., Lou, Y.-X., Zhang, Z.-B., Hu, W.-J., et al. 2020. Phenylpropanoid derivatives are essential components of sporopollenin in vascular plants. Mol. Plant 13, 1644-1653
|
Yang, X.J., Wu, D., Shi, J.X., He, Y., Pinot, F., Grausem, B., Yin, C.S., Zhu, L., Chen, M.J., Luo, Z.J., 2014. Rice CYP703A3, a cytochrome P450 hydroxylase, is essential for development of anther cuticle and pollen exine. J. Integr. Plant Biol. 56, 979-994
|
Zhang, D.S., Liang, W.Q., Yin, C.S., Zong, J., Gu, F.W., Zhang, D.B., 2010. OsC6, encoding a lipid transfer protein, is required for postmeiotic anther development in rice. Plant Physiol. 154, 149-162
|
Zhang, D.B., Shi, J.X., Yang, X.J., 2016. Role of lipid metabolism in plant pollen exine development. Subcell. Biochem. 86, 315-337
|