四倍体化促进杨树茎的径向生长。

IF 1.4 4区 生物学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Plant Biotechnology Pub Date : 2022-09-25 DOI:10.5511/plantbiotechnology.22.0716a
Chikage Umeda-Hara, Hidekazu Iwakawa, Misato Ohtani, Taku Demura, Tomoko Matsumoto, Jun Kikuchi, Koji Murata, Masaaki Umeda
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引用次数: 0

摘要

体细胞多倍体化通常会增加细胞和器官的大小,从而促进植物生物量的生产。然而,由于大多数木本植物不经历多倍体化,解释多倍体化对树木器官生长的影响仍然很困难。本研究通过秋水仙碱处理杨树侧芽,建立了一种获得四倍体细胞系的新方法。我们发现四倍体化诱导了茎部细胞的增大,这表明在正常发育中不能诱导多倍体化的木本植物,多倍体化可以增加细胞的大小。温室生长分析表明,四倍体基茎的径向生长增强,而纵向生长受阻,产生的茎生物量与二倍体相当。木质生物量特征在木材物质密度、糖化效率和细胞壁谱方面也具有可比性。我们的研究结果表明,当四倍体化与通过提高代谢物生产和/或运输来促进纵向茎生长的技术相结合时,四倍体化是提高木材生物量产量的有效策略。
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Tetraploidization promotes radial stem growth in poplars.

Somatic polyploidization often increases cell and organ size, thereby contributing to plant biomass production. However, as most woody plants do not undergo polyploidization, explaining the polyploidization effect on organ growth in trees remains difficult. Here we developed a new method to generate tetraploid lines in poplars through colchicine treatment of lateral buds. We found that tetraploidization induced cell enlargement in the stem, suggesting that polyploidization can increase cell size in woody plants that cannot induce polyploidization in normal development. Greenhouse growth analysis revealed that radial growth was enhanced in the basal stem of tetraploids, whereas longitudinal growth was retarded, producing the same amount of stem biomass as diploids. Woody biomass characteristics were also comparable in terms of wood substance density, saccharification efficiency, and cell wall profiling. Our results reveal tetraploidization as an effective strategy for improving woody biomass production when combined with technologies that promote longitudinal stem growth by enhancing metabolite production and/or transport.

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来源期刊
Plant Biotechnology
Plant Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-PLANT SCIENCES
CiteScore
2.90
自引率
18.80%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Plant Biotechnology is an international, open-access, and online journal, published every three months by the Japanese Society for Plant Biotechnology. The journal, first published in 1984 as the predecessor journal, “Plant Tissue Culture Letters” and became its present form in 1997 when the society name was renamed to Japanese Society for Plant Cell and Molecular Biology, publishes findings in the areas from basic- to application research of plant biotechnology. The aim of Plant Biotechnology is to publish original and high-impact papers, in the most rapid turnaround time for reviewing, on the plant biotechnology including tissue culture, production of specialized metabolites, transgenic technology, and genome editing technology, and also on the related research fields including molecular biology, cell biology, genetics, plant breeding, plant physiology and biochemistry, metabolic engineering, synthetic biology, and bioinformatics.
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