Inhibition of histone deacetylase in Arabidopsis root calli promotes de novo shoot organogenesis.

IF 4.1 2区 生物学 Q1 PLANT SCIENCES Frontiers in Plant Science Pub Date : 2025-01-27 eCollection Date: 2024-01-01 DOI:10.3389/fpls.2024.1500573
Qinwei Pan, Ruirui Huang, Qiong Xiao, Xuting Wu, Baoxia Jian, Yanan Xiang, Lijun Gan, Zongrang Liu, Yi Li, Tingting Gu, Huawei Liu
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Abstract

De novo organogenesis from somatic cells to the entire plant represents a remarkable biological phenomenon, but the underlying regulatory mechanism, particularly at the epigenetic level, remains obscure. In this work, we demonstrate the important role of histone deacetylases (HDACs) in shoot organogenesis. HDAC inhibition by trichostatin A (an HDAC inhibitor) at the callus induction stage promotes shoot formation in wounded roots and circumvents tissue wounding to initiate shoot regeneration in unwounded roots. This HDAC inhibition-mediated promotion of shoot organogenesis in wounded roots is associated with the concomitant upregulation of the wound signaling pathway (WOUND INDUCED DEDIFFERENTIATION 4, ENHANCER OF SHOOT REGENERATION1, ISOPENTENYLTRANSFERASE 5, CUP-SHAPED COTYLEDON 2 etc.) and the ARF-LBD pathway (AUXIN RESPONSE FACTOR 19, LATERAL ORGAN BOUNDARIES-DOMAIN 29, etc.) and the downregulation of auxin biosynthesis and reduced auxin content. Furthermore, inhibiting HDACs enhances the local enrichment of histone 3 lysine 9/lysine 14 acetylation at ISOPENTENYLTRANSFERASE 5, supporting the role of histone acetylation in its transcriptional regulation. On the other hand, the HDAC inhibition-associated activation of shoot organogenesis from unwounded roots is coupled with increased expression of the ARF-LBD pathway gene LATERAL ORGAN BOUNDARIES-DOMAIN 29 while bypassing the wound signaling or auxin biosynthetic genes. These findings provide novel insights into the regulatory mechanisms underlying de novo shoot organogenesis and lay a foundation for the improvement of plant transformation technologies.

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抑制拟南芥根愈伤组织组蛋白去乙酰化酶促进新生芽器官发生。
从体细胞到整个植物的从头器官发生是一种显著的生物学现象,但其潜在的调控机制,特别是在表观遗传水平上,仍然不清楚。在这项工作中,我们证明了组蛋白去乙酰化酶(HDACs)在茎器官发生中的重要作用。trichostatin A(一种HDAC抑制剂)在愈伤组织诱导阶段抑制HDAC,促进受伤根的新梢形成,并绕过组织损伤,启动未受伤根的新梢再生。这种HDAC抑制介导的损伤根茎器官发生的促进与损伤信号通路(wound INDUCED DEDIFFERENTIATION 4, ENHANCER of shoot REGENERATION1, isoopentenyltransferase 5, CUP-SHAPED cotydon 2等)和ARF-LBD通路(生长素反应因子19,侧壁器官边界域29等)的上调以及生长素生物合成的下调和生长素含量的降低有关。此外,抑制hdac可增强ISOPENTENYLTRANSFERASE 5上组蛋白3赖氨酸9/赖氨酸14乙酰化的局部富集,支持组蛋白乙酰化在其转录调控中的作用。另一方面,HDAC抑制相关的非损伤根茎器官发生的激活与ARF-LBD途径基因LATERAL ORGAN BOUNDARIES-DOMAIN 29的表达增加相结合,而绕过损伤信号或生长素生物合成基因。这些发现为研究植物新生芽器官发生的调控机制提供了新的思路,并为植物转化技术的改进奠定了基础。
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来源期刊
Frontiers in Plant Science
Frontiers in Plant Science PLANT SCIENCES-
CiteScore
7.30
自引率
14.30%
发文量
4844
审稿时长
14 weeks
期刊介绍: In an ever changing world, plant science is of the utmost importance for securing the future well-being of humankind. Plants provide oxygen, food, feed, fibers, and building materials. In addition, they are a diverse source of industrial and pharmaceutical chemicals. Plants are centrally important to the health of ecosystems, and their understanding is critical for learning how to manage and maintain a sustainable biosphere. Plant science is extremely interdisciplinary, reaching from agricultural science to paleobotany, and molecular physiology to ecology. It uses the latest developments in computer science, optics, molecular biology and genomics to address challenges in model systems, agricultural crops, and ecosystems. Plant science research inquires into the form, function, development, diversity, reproduction, evolution and uses of both higher and lower plants and their interactions with other organisms throughout the biosphere. Frontiers in Plant Science welcomes outstanding contributions in any field of plant science from basic to applied research, from organismal to molecular studies, from single plant analysis to studies of populations and whole ecosystems, and from molecular to biophysical to computational approaches. Frontiers in Plant Science publishes articles on the most outstanding discoveries across a wide research spectrum of Plant Science. The mission of Frontiers in Plant Science is to bring all relevant Plant Science areas together on a single platform.
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