Literature DB >> 28685881

Central metabolite and sterol profiling divides tobacco male gametophyte development and pollen tube growth into eight metabolic phases.

Alexander H Rotsch1, Joachim Kopka2, Ivo Feussner1,3, Till Ischebeck1.   

Abstract

While changes in the transcriptome and proteome of developing pollen have been investigated in tobacco and other species, the metabolic consequences remain rather unclear. Here, a broad range of metabolites was investigated in close succession of developmental stages. Thirteen stages of tobacco male gametophyte development were collected, ranging from tetrads to pollen tubes. Subsequently, the central metabolome and sterol composition were analyzed by GC-mass spectrometry (MS), monitoring 77 metabolites and 29 non-identified analytes. The overall results showed that development and tube growth could be divided into eight metabolic phases with the phase including mitosis I being most distinct. During maturation, compounds such as sucrose and proline accumulated. These were degraded after rehydration, while γ-aminobutyrate transiently increased, possibly deriving from proline breakdown. Sterol analysis revealed that tetrads harbor similar sterols as leaves, but throughout maturation unusual sterols increased. Lastly, two further sterols exclusively accumulated in pollen tubes. This study allows a deeper look into metabolic changes during the development of a quasi-single cell type. Metabolites accumulating during maturation might accelerate pollen germination and tube growth, protect from desiccation, and feed pollinators. Future studies of the underlying processes orchestrating the changes in metabolite levels might give valuable insights into cellular regulation of plant metabolism.
© 2017 The Authors The Plant Journal © 2017 John Wiley & Sons Ltd.

Entities:  

Keywords:  GABA; Nicotiana tabacum; central metabolite profiling; mitosis I; pollen; pollen development; pollen tube; sterols; tobacco; γ-aminobutyrate

Mesh:

Substances:

Year:  2017        PMID: 28685881     DOI: 10.1111/tpj.13633

Source DB:  PubMed          Journal:  Plant J        ISSN: 0960-7412            Impact factor:   6.417


  15 in total

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Journal:  Plant Physiol       Date:  2019-12-11       Impact factor: 8.340

2.  Amino acids profiling and transcriptomic data integration demonstrates the dynamic regulation of amino acids synthesis in the leaves of Cyclocarya paliurus.

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Journal:  PeerJ       Date:  2022-07-05       Impact factor: 3.061

3.  Isolation of Lipid Droplets for Protein and Lipid Analysis.

Authors:  Patrick J Horn; Kent D Chapman; Till Ischebeck
Journal:  Methods Mol Biol       Date:  2021

4.  SEIPIN Isoforms Interact with the Membrane-Tethering Protein VAP27-1 for Lipid Droplet Formation.

Authors:  Michael Scott Greer; Yingqi Cai; Satinder K Gidda; Nicolas Esnay; Franziska K Kretzschmar; Damien Seay; Elizabeth McClinchie; Till Ischebeck; Robert T Mullen; John M Dyer; Kent D Chapman
Journal:  Plant Cell       Date:  2020-07-20       Impact factor: 11.277

5.  PUX10 Is a Lipid Droplet-Localized Scaffold Protein That Interacts with CELL DIVISION CYCLE48 and Is Involved in the Degradation of Lipid Droplet Proteins.

Authors:  Franziska K Kretzschmar; Laura A Mengel; Anna O Müller; Kerstin Schmitt; Katharina F Blersch; Oliver Valerius; Gerhard H Braus; Till Ischebeck
Journal:  Plant Cell       Date:  2018-08-07       Impact factor: 11.277

6.  SEED LIPID DROPLET PROTEIN1, SEED LIPID DROPLET PROTEIN2, and LIPID DROPLET PLASMA MEMBRANE ADAPTOR mediate lipid droplet-plasma membrane tethering.

Authors:  Hannah Elisa Krawczyk; Siqi Sun; Nathan M Doner; Qiqi Yan; Magdiel Sheng Satha Lim; Patricia Scholz; Philipp William Niemeyer; Kerstin Schmitt; Oliver Valerius; Roman Pleskot; Stefan Hillmer; Gerhard H Braus; Marcel Wiermer; Robert T Mullen; Till Ischebeck
Journal:  Plant Cell       Date:  2022-05-24       Impact factor: 12.085

7.  Integrating transcriptome and metabolome reveals molecular networks involved in genetic and environmental variation in tobacco.

Authors:  Pingping Liu; Jie Luo; Qingxia Zheng; Qiansi Chen; Niu Zhai; Shengchun Xu; Yalong Xu; Lifeng Jin; Guoyun Xu; Xin Lu; Guowang Xu; Gangjun Wang; Jianfeng Shao; Hai-Ming Xu; Peijian Cao; Huina Zhou; Xusheng Wang
Journal:  DNA Res       Date:  2020-04-01       Impact factor: 4.458

8.  Lipid Composition and Associated Gene Expression Patterns during Pollen Germination and Pollen Tube Growth in Olive (Olea europaea L.).

Authors:  M Luisa Hernández; Elena Lima-Cabello; Juan de D Alché; José M Martínez-Rivas; Antonio J Castro
Journal:  Plant Cell Physiol       Date:  2020-07-01       Impact factor: 4.927

9.  The effect of isolation methods of tomato pollen on the results of metabolic profiling.

Authors:  Marine J Paupière; Yury M Tikunov; Nurit Firon; Ric C H de Vos; Chris Maliepaard; Richard G F Visser; Arnaud G Bovy
Journal:  Metabolomics       Date:  2019-01-08       Impact factor: 4.290

Review 10.  Pollen Developmental Arrest: Maintaining Pollen Fertility in a World With a Changing Climate.

Authors:  Ettore Pacini; Rudy Dolferus
Journal:  Front Plant Sci       Date:  2019-05-24       Impact factor: 5.753

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