Literature DB >> 27600813

Primary Metabolism during Biosynthesis of Secondary Wall Polymers of Protoxylem Vessel Elements.

Misato Ohtani1,2,3,4,5,6, Keiko Morisaki1,2,3,4,5,6, Yuji Sawada1,2,3,4,5,6, Ryosuke Sano1,2,3,4,5,6, Abigail Loren Tung Uy1,2,3,4,5,6, Atsushi Yamamoto1,2,3,4,5,6, Tetsuya Kurata1,2,3,4,5,6, Yoshimi Nakano1,2,3,4,5,6, Shiro Suzuki1,2,3,4,5,6, Mami Matsuda1,2,3,4,5,6, Tomohisa Hasunuma1,2,3,4,5,6, Masami Yokota Hirai1,2,3,4,5,6, Taku Demura7,8,9,10,11,12.   

Abstract

Xylem vessels, the water-conducting cells in vascular plants, undergo characteristic secondary wall deposition and programmed cell death. These processes are regulated by the VASCULAR-RELATED NAC-DOMAIN (VND) transcription factors. Here, to identify changes in metabolism that occur during protoxylem vessel element differentiation, we subjected tobacco (Nicotiana tabacum) BY-2 suspension culture cells carrying an inducible VND7 system to liquid chromatography-mass spectrometry-based wide-target metabolome analysis and transcriptome analysis. Time-course data for 128 metabolites showed dynamic changes in metabolites related to amino acid biosynthesis. The concentration of glyceraldehyde 3-phosphate, an important intermediate of the glycolysis pathway, immediately decreased in the initial stages of cell differentiation. As cell differentiation progressed, specific amino acids accumulated, including the shikimate-related amino acids and the translocatable nitrogen-rich amino acid arginine. Transcriptome data indicated that cell differentiation involved the active up-regulation of genes encoding the enzymes catalyzing fructose 6-phosphate biosynthesis from glyceraldehyde 3-phosphate, phosphoenolpyruvate biosynthesis from oxaloacetate, and phenylalanine biosynthesis, which includes shikimate pathway enzymes. Concomitantly, active changes in the amount of fructose 6-phosphate and phosphoenolpyruvate were detected during cell differentiation. Taken together, our results show that protoxylem vessel element differentiation is associated with changes in primary metabolism, which could facilitate the production of polysaccharides and lignin monomers and, thus, promote the formation of the secondary cell wall. Also, these metabolic shifts correlate with the active transcriptional regulation of specific enzyme genes. Therefore, our observations indicate that primary metabolism is actively regulated during protoxylem vessel element differentiation to alter the cell's metabolic activity for the biosynthesis of secondary wall polymers.
© 2016 American Society of Plant Biologists. All Rights Reserved.

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Year:  2016        PMID: 27600813      PMCID: PMC5100780          DOI: 10.1104/pp.16.01230

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  45 in total

1.  Visualization by comprehensive microarray analysis of gene expression programs during transdifferentiation of mesophyll cells into xylem cells.

Authors:  Taku Demura; Gen Tashiro; Gorou Horiguchi; Naoki Kishimoto; Minoru Kubo; Naoko Matsuoka; Atsushi Minami; Miyo Nagata-Hiwatashi; Keiko Nakamura; Yoshimichi Okamura; Naomi Sassa; Shinsuke Suzuki; Junshi Yazaki; Shoshi Kikuchi; Hiroo Fukuda
Journal:  Proc Natl Acad Sci U S A       Date:  2002-11-18       Impact factor: 11.205

2.  Establishment of an Experimental System for the Study of Tracheary Element Differentiation from Single Cells Isolated from the Mesophyll of Zinnia elegans.

Authors:  H Fukuda; A Komamine
Journal:  Plant Physiol       Date:  1980-01       Impact factor: 8.340

Review 3.  The shikimate pathway and aromatic amino Acid biosynthesis in plants.

Authors:  Hiroshi Maeda; Natalia Dudareva
Journal:  Annu Rev Plant Biol       Date:  2012       Impact factor: 26.379

4.  NAC transcription factors, NST1 and NST3, are key regulators of the formation of secondary walls in woody tissues of Arabidopsis.

Authors:  Nobutaka Mitsuda; Akira Iwase; Hiroyuki Yamamoto; Masato Yoshida; Motoaki Seki; Kazuo Shinozaki; Masaru Ohme-Takagi
Journal:  Plant Cell       Date:  2007-01-19       Impact factor: 11.277

5.  LeFRK2 is required for phloem and xylem differentiation and the transport of both sugar and water.

Authors:  Hila Damari-Weissler; Shimon Rachamilevitch; Roni Aloni; Marcelo A German; Shabtai Cohen; Maciej A Zwieniecki; N Michele Holbrook; David Granot
Journal:  Planta       Date:  2009-07-25       Impact factor: 4.116

6.  Mfuzz: a software package for soft clustering of microarray data.

Authors:  Lokesh Kumar; Matthias E Futschik
Journal:  Bioinformation       Date:  2007-05-20

7.  Widely targeted metabolomics based on large-scale MS/MS data for elucidating metabolite accumulation patterns in plants.

Authors:  Yuji Sawada; Kenji Akiyama; Akane Sakata; Ayuko Kuwahara; Hitomi Otsuki; Tetsuya Sakurai; Kazuki Saito; Masami Yokota Hirai
Journal:  Plant Cell Physiol       Date:  2008-12-02       Impact factor: 4.927

8.  A conifer genomics resource of 200,000 spruce (Picea spp.) ESTs and 6,464 high-quality, sequence-finished full-length cDNAs for Sitka spruce (Picea sitchensis).

Authors:  Steven G Ralph; Hye Jung E Chun; Natalia Kolosova; Dawn Cooper; Claire Oddy; Carol E Ritland; Robert Kirkpatrick; Richard Moore; Sarah Barber; Robert A Holt; Steven J M Jones; Marco A Marra; Carl J Douglas; Kermit Ritland; Jörg Bohlmann
Journal:  BMC Genomics       Date:  2008-10-14       Impact factor: 3.969

9.  The tobacco genome sequence and its comparison with those of tomato and potato.

Authors:  Nicolas Sierro; James N D Battey; Sonia Ouadi; Nicolas Bakaher; Lucien Bovet; Adrian Willig; Simon Goepfert; Manuel C Peitsch; Nikolai V Ivanov
Journal:  Nat Commun       Date:  2014-05-08       Impact factor: 14.919

10.  TopHat2: accurate alignment of transcriptomes in the presence of insertions, deletions and gene fusions.

Authors:  Daehwan Kim; Geo Pertea; Cole Trapnell; Harold Pimentel; Ryan Kelley; Steven L Salzberg
Journal:  Genome Biol       Date:  2013-04-25       Impact factor: 13.583

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  7 in total

1.  MYB20, MYB42, MYB43, and MYB85 Regulate Phenylalanine and Lignin Biosynthesis during Secondary Cell Wall Formation.

Authors:  Pan Geng; Su Zhang; Jinyue Liu; Cuihuan Zhao; Jie Wu; Yingping Cao; Chunxiang Fu; Xue Han; Hang He; Qiao Zhao
Journal:  Plant Physiol       Date:  2019-12-23       Impact factor: 8.340

2.  Patterned Deposition of Xylan and Lignin is Independent from that of the Secondary Wall Cellulose of Arabidopsis Xylem Vessels.

Authors:  Yuto Takenaka; Yoichiro Watanabe; Mathias Schuetz; Faride Unda; Joseph L Hill; Pawittra Phookaew; Arata Yoneda; Shawn D Mansfield; Lacey Samuels; Misato Ohtani; Taku Demura
Journal:  Plant Cell       Date:  2018-10-18       Impact factor: 11.277

Review 3.  Xylan in the Middle: Understanding Xylan Biosynthesis and Its Metabolic Dependencies Toward Improving Wood Fiber for Industrial Processing.

Authors:  Martin P Wierzbicki; Victoria Maloney; Eshchar Mizrachi; Alexander A Myburg
Journal:  Front Plant Sci       Date:  2019-02-25       Impact factor: 5.753

4.  Secondary cell wall patterning-connecting the dots, pits and helices.

Authors:  Huizhen Xu; Alessandro Giannetti; Yuki Sugiyama; Wenna Zheng; René Schneider; Yoichiro Watanabe; Yoshihisa Oda; Staffan Persson
Journal:  Open Biol       Date:  2022-05-04       Impact factor: 7.124

Review 5.  Xylogenesis in zinnia (Zinnia elegans) cell cultures: unravelling the regulatory steps in a complex developmental programmed cell death event.

Authors:  Elena T Iakimova; Ernst J Woltering
Journal:  Planta       Date:  2017-02-13       Impact factor: 4.116

6.  Hechtian Strands Transmit Cell Wall Integrity Signals in Plant Cells.

Authors:  Arata Yoneda; Misato Ohtani; Daisuke Katagiri; Yoichiroh Hosokawa; Taku Demura
Journal:  Plants (Basel)       Date:  2020-05-09

7.  Integrative omics of Lonicera japonica Thunb. Flower development unravels molecular changes regulating secondary metabolites.

Authors:  Bingxian Yang; Zhuoheng Zhong; Tantan Wang; Yuting Ou; Jingkui Tian; Setsuko Komatsu; Lin Zhang
Journal:  J Proteomics       Date:  2019-07-30       Impact factor: 4.044

  7 in total

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