Arabinogalactan protein profiles and distribution patterns during microspore embryogenesis and pollen development in Brassica napus
详细信息    查看全文
  • 作者:Ahmed-Abdalla El-Tantawy (1)
    María-Teresa Solís (1)
    Mario L. Da Costa (2)
    Silvia Coimbra (2)
    María-Carmen Risue?o (1)
    Pilar S. Testillano (1)
  • 关键词:Microspore culture ; Cell wall ; Sta39 ; 4 gene ; Brassica napus ; AGP epitopes
  • 刊名:Plant Reproduction
  • 出版年:2013
  • 出版时间:September 2013
  • 年:2013
  • 卷:26
  • 期:3
  • 页码:231-243
  • 全文大小:3002KB
  • 参考文献:1. Bárány I, González-Melendi P, Fadón B, Mityko J, Risue?o MC, Testillano PS (2005) Microspore-derived embryogenesis in pepper ( / Capsicum annuum L.): subcellular rearrangements through development. Biol Cell 97:709-22 CrossRef
    2. Bárány I, Fadón B, Risue?o MC, Testillano PS (2010) Cell wall components and pectin esterification levels as markers of proliferation and differentiation events during pollen development and pollen embryogenesis in / Capsicum annuum L. J Exp Bot 61:1159-175 CrossRef
    3. Borges F, Gomes G, Gardner R, Moreno N, McCormick S, Feijó JA, Becker JD (2008) Comparative transcriptomics of / Arabidopsis sperm cells. Plant Physiol 148:1168-181 CrossRef
    4. Bradford MM (1976) Rapid and sensitive method for quantitation of microgram quantities of protein utilizing principle of protein-dye binding. Anal Biochem 72:248-54 CrossRef
    5. Chapman A, Blervacq AS, Vasseur J, Hilbert JL (2000) Arabinogalactan-proteins in Cichorium somatic embryogenesis: effect of β-glucosyl Yariv reagent and epitope localisation during embryo development. Planta 211:305-14 CrossRef
    6. Cheung AY, Wang H, Wu HM (1995) A floral transmitting tissue-specific glycoprotein attracts pollen tubes and stimulates their growth. Cell 82:383-93 CrossRef
    7. Coimbra S, Pereira G (2012) Arabinogalactan proteins in / Arabidopsis thaliana pollen development. In:Transgenic plants—Advances and limitations. Yelda Ozden Ciftci (Ed) ISBN: 978-953-51-0181-9, InTech, Available from m/books/transgenic-plants-advances-and-limitations/arabinogalactan-proteins-in-arabidopsis-thaliana-pollen-development" class="a-plus-plus">http://www.intechopen.com/books/transgenic-plants-advances-and-limitations/arabinogalactan-proteins-in-arabidopsis-thaliana-pollen-development pp 329-52
    8. Coimbra S, Costa M, Jones B, Mendes MA, Pereira LG (2009) Pollen grain development is compromised in Arabidopsis agp6 agp11 null mutants. J Exp Bot 60:3133-142 CrossRef
    9. Coimbra S, Costa M, Mendes MA, Pereira AM, Pinto J, Pereira LG (2010) Early germination of Arabidopsis pollen in a double null mutant for the arabinogalactan protein genes AGP6 and AGP11. Sex Plant Reprod 23:199-05 CrossRef
    10. Costa M, Nobre MS, Becker JD, Masiero S, Amorim MI, Pereira LG, Coimbra S (2013) Expression-based and co-localization detection of arabinogalactan protein 6 and arabinogalactan protein 11 interactors in Arabidopsis pollen and pollen tubes. BMC Plant Biol 13:7 CrossRef
    11. Ellis M, Egelund J, Schultz CJ, Bacic A (2010) Arabinogalactan-proteins: key regulators at the cell surface? Plant Physiol 153:403-19 CrossRef
    12. Gerster J, Allard S, Robert LS (1996) Molecular characterization of two / Brassica napus pollen-expressed genes encoding putative arabinogalactan proteins. Plant Physiol 110:1231-237 CrossRef
    13. Johnson KL, Jones BJ, Bacic A, Schultz CJ (2003) The fasciclin-like arabinogalactan proteins of / Arabidopsis. A multigene family of putative cell adhesion molecules. Plant Physiol 133:1911-925 CrossRef
    14. Knox JP (1997) The use of antibodies to study the architecture and developmental regulation of plant cell walls. Int Rev Cytol 171:79-20 CrossRef
    15. Levitin B, Richter D, Markovich I, Zik M (2008) Arabinogalactan proteins 6 and 11 are required for stamen and pollen function in / Arabidopsis. Plant J 56:351-63 CrossRef
    16. Livak KJ, Schmittgen TD (2001) Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) method. Methods 25:402-08 meth.2001.1262">CrossRef
    17. Maluszynski M, Kasha K, Forster B, Szarejko I (eds) (2003) Doubled haploid production in crop plants: a manual. Kluwer, Dordrecht
    18. Massonneau A, Coronado MJ, Audran A, Bagniewska A, Mol R, Testillano PS, Goralski G, Dumas C, Risue?o MC, Matthys-Rochon E (2005) Multicellular structures developing during maize microspore culture express endosperm and embryo-specific genes and show different embryogenic potentialities. Eur J Cell Biol 84:663-75 CrossRef
    19. Pandey DK, Signgh AK, Chaudhary B (2012) Boron-mediated plant somatic embryogenesis: a provocative model. J. Botany vol Article ID 375829. doi:10.1155/2012/375829:9
    20. Pereira LG, Coimbra S, Oliveira H, Monteiro L, Sottomayor M (2006) Expression of arabinogalactan protein genes in pollen tubes of / Arabidopsis thaliana. Planta 223:374-80 CrossRef
    21. Portillo L, Olmedilla A, Santacruz-Ruvalcaba F (2012) Cellular and molecular changes associated with somatic embryogenesis induction in / Agave tequilana. Protoplasma 249:1101-107 CrossRef
    22. Prem D, Solís MT, Bárány I, Rodríguez-Sánz H, Risue?o MC, Testillano PS (2012) A new microspore embryogenesis system under low temperature which mimics zygotic embryogenesis initials, expresses auxin and efficiently regenerates doubled-haploid plants in / Brassica napus. BMC Plant Biol 12:127 CrossRef
    23. Qin Y, Chen D, Zhao J (2007) Localization of arabinogalactan proteins in anther, pollen, and pollen tube of / Nicotiana tabacum L. Protoplasma 231:43-3 CrossRef
    24. Samaj J, Samajová O, Peters M, Lichtscheidl I, Knox JP, Volkmann D (2000) Immunolocalization of LM2 arabinogalactan-protein epitope associated with endomembranes of plant cells. Protoplasma 212:186-96 CrossRef
    25. Schultz C, Gilson P, Oxley D, Youl JJ, Basic A (1998) GPI-anchors on arabinogalactan-proteins: implications for signalling in plants. Trends Plant Sci 3:426-31 CrossRef
    26. Seguí-Simarro JM, Bárány I, Suárez R, Fadón B, Testillano P, Risue?o MC (2006) Nuclear bodies domain changes with microspore reprogramming to embryogenesis. Eur J Histochem 50:35-4
    27. Seifert GJ, Roberts K (2007) The biology of arabinogalactan proteins. Annu Rev Plant Biol 58:137-61 CrossRef
    28. Smallwood M, Yates EA, Willats WGT, Martin H, Knox JP (1996) Immunochemical comparison of membrane-associated and secreted arabinogalactan-proteins in rice and carrot. Planta 198:452-59 CrossRef
    29. Solís MT (2012) Stress-induced pollen reprogramming to embryogenesis: cell identity, programmed cell death and DNA methylation. Ph.D. Doctoral Thesis. University Complutense of Madrid, Madrid
    30. Solís MT, Pintos B, Prado MJ, Bueno MA, Raska I, Risue?o MC, Testillano PS (2008) Early markers of in vitro microspore reprogramming to embryogenesis in olive ( / Olea europaea L.). Plant Sci 174:597-05 CrossRef
    31. Solís MT, Rodríguez-Serrano M, Meijón M, Ca?al MJ, Cifuentes A, Risue?o MC, Testillano PS (2012) DNA methylation dynamics and MET1a-like gene expression changes during stress-induced pollen reprogramming to embryogenesis. J Exp Bot 63:6431-444 CrossRef
    32. Tang XC, He YQ, Wang Y, Sun MX (2006) The role of arabinogalactan proteins binding to Yariv reagents in the initiation, cell developmental fate, and maintenance of microspore embryogenesis in / Brassica napus L. cv Topas. J Exp Bot 57:2639-650 CrossRef
    33. Testillano PS, González-Melendi P, Coronado MJ, Seguí-Simarro JM, Moreno-Risue?o MA, Risue?o MC (2005) Differentiating plant cells switched to proliferation remodel the functional organization of nuclear domains. Cytogenetic Genome Res 109:166-74 CrossRef
    34. Testillano PS, Coronado MJ, Thierry AM, Matthys-Rochon E, Risue?o MC (2010) In situ detection of Esr proteins secretion during maize microspore embryogenesis and their secretion blockage show effects on the culture progression. Funct Plant Biol 37:985-94 CrossRef
    35. Testillano PS, Solís MT, Risue?o MC (2013) The 5-methyl-deoxy-cytidine localization to reveal in situ the dynamics of DNA methylation chromatin pattern in a variety of plant organ and tissue cells during development. Physiologia Plantarum. doi:10.1111/ppl.12015 . First published on line Dec 21, 2012 (Early view)
    36. Thompson HJM, Knox JP (1998) Stage-specific responses of embryogenic carrot cell suspension cultures to arabinogalactan protein-binding β-glucosyl Yariv reagent. Planta 205:32-8 CrossRef
    37. van Hengel AJ, Tadesse Z, Immerzeel P, Schols H, van Kammen A, de Vries SC (2001) / N-acetylglucosamine and glucosamine-containing arabinogalactan proteins control somatic embryogenesis. Plant Physiol 125:1880-890 CrossRef
    38. Willats WG, Marcus SE, Knox JP (1998) Generation of monoclonal antibody specific to (1-gt;5)-α-mphasis type-small-caps">l -arabinan. Carbohydr Res 308:149-52 CrossRef
    39. Wu H, de Graaf B, Mariani C, Cheung AY (2001) Hydroxyproline-rich glycoproteins in plant reproductive tissues: structure, functions and regulation. Cell Mol Life Sci 58:1418-429 CrossRef
    40. Yariv J, Rapport MM, Graf L (1962) The interaction of glycosides and saccharides with antibody to the corresponding phenylazo glycosides. Biochem J 85:383-88
    41. Yu M, Zhao J (2012) The cytological changes of tobacco zygote and proembryo cells induced by β-glucosyl Yariv reagent suggest the involvement of arabinogalactan proteins in cell division and cell plate formation. BMC Plant Biol 12:126 CrossRef
    42. Yuan S, Su Y, Liu Y, Fang Z, Yang L, Zhuang M, Zhang Y, Sun P (2012) Effects of pH, MES, arabinogalactan-proteins on microspore cultures in white cabbage. Plant Cell Tissue Organ Culture 110:69-6 CrossRef
    43. Zhong J, Ren Y, Yu M, Ma T, Zhang X, Zhao J (2011) Roles of arabinogalactan proteins in cotyledon formation and cell wall deposition during embryo development of / Arabidopsis. Protoplasma 248:551-63 CrossRef
  • 作者单位:Ahmed-Abdalla El-Tantawy (1)
    María-Teresa Solís (1)
    Mario L. Da Costa (2)
    Silvia Coimbra (2)
    María-Carmen Risue?o (1)
    Pilar S. Testillano (1)

    1. Pollen Biotechnology of Crop Plants Group, Centro de Investigaciones Biológicas (CIB) CSIC, Ramiro de Maeztu 9, 28040, Madrid, Spain
    2. Departamento de Biologia, Faculdade de Ciencias, Universidade do Porto, Edif?cio FC4, Rua do Campo Alegre s/n, 4169-007, Porto, Portugal
文摘
Arabinogalactan proteins (AGPs), present in cell walls, plasma membranes and extracellular secretions, are massively glycosylated hydroxyproline-rich proteins that play a key role in several plant developmental processes. After stress treatment, microspores cultured in vitro can reprogramme and change their gametophytic developmental pathways towards embryogenesis, thereby producing embryos which can further give rise to haploid and double haploid plants, important biotechnological tools in plant breeding. Microspore embryogenesis constitutes a convenient system for studying the mechanisms underlying cell reprogramming and embryo formation. In this work, the dynamics of both AGP presence and distribution were studied during pollen development and microspore embryogenesis in Brassica napus, by employing a multidisciplinary approach using monoclonal antibodies for AGPs (LM2, LM6, JIM13, JIM14, MAC207) and analysing the expression pattern of the BnAGP Sta 39- gene. Results showed the developmental regulation and defined localization of the studied AGP epitopes during the two microspore developmental pathways, revealing different distribution patterns for AGPs with different antigenic reactivity. AGPs recognized by JIM13, JIM14 and MAC207 antibodies were related to pollen maturation, whereas AGPs labelled by LM2 and LM6 were associated with embryo development. Interestingly, the AGPs labelled by JIM13 and JIM14 were induced with the change of microspore fate. Increases in the expression of the Sta 39- gene, JIM13 and JIM14 epitopes found specifically in 2- cell stage embryo cell walls, suggested that AGPs are early molecular markers of microspore embryogenesis. Later, LM2 and LM6 antigens increased progressively with embryo development and localized on cell walls and cytoplasmic spots, suggesting an active production and secretion of AGPs during in vitro embryo formation. These results give new insights into the involvement of AGPs as potential regulating/signalling molecules in microspore reprogramming and embryogenesis.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700