ALTERED MERISTEM PROGRAM1 通过限制 HD-ZIP III 转录因子基因的表达来维持细胞分化。

IF 6.5 1区 生物学 Q1 PLANT SCIENCES Plant Physiology Pub Date : 2024-09-02 DOI:10.1093/plphys/kiae300
Saiqi Yang, Olena Poretska, Brigitte Poppenberger, Tobias Sieberer
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引用次数: 0

摘要

植物通过分生组织中干细胞的持续活动,表现出惊人的发育和再生可塑性。在某些条件下,已经进入分化的细胞甚至可以重建多能性。拟南芥(Arabidopsis thaliana)中的推定羧肽酶 ALTERED MERISTEM PROGRAM1(AMP1)发生突变会导致一系列肥大表型,表明在抑制多能性方面存在缺陷。以前曾报道过 AMP1 在 miRNA 介导的翻译抑制中的作用,但这种活性与其发育功能的关系尚不清楚。在这里,我们研究了 AMP1 与第三类同源结构域-亮氨酸拉链(HD-ZIP III)转录因子之间的功能相互作用,后者是 miRNA 控制的芽分生组织规格化的决定因素。我们发现,在安培1突变体中,HD-ZIP III的转录输出增强,HD-ZIP III活性增强的植物品系不仅出现了类似安培1突变体的表型,而且还表现出与突变体的协同遗传相互作用。相反,HD-ZIP III 功能的降低抑制了 amp1 突变体的芽肥大缺陷。我们进一步提供了证据,证明在安培1突变体中,HD-ZIP III家族成员的表达域扩大了,而且这种表达失调发生在转录水平,不涉及miRNA165/166的功能。最后,amp1突变体的特异性表型无法通过抑制AMP1表达域中的miRNA功能来模拟。这些发现使我们建立了一个模型,在这个模型中,AMP1 限制了 HD-ZIP III 蛋白上游的细胞多能性,而这种控制似乎不是由典型的 miRNA 途径直接介导的。
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ALTERED MERISTEM PROGRAM1 sustains cellular differentiation by limiting HD-ZIP III transcription factor gene expression.

Plants show remarkable developmental and regenerative plasticity through the sustained activity of stem cells in meristems. Under certain conditions, pluripotency can even be reestablished in cells that have already entered differentiation. Mutation of the putative carboxypeptidase ALTERED MERISTEM PROGRAM1 (AMP1) in Arabidopsis (Arabidopsis thaliana) causes a set of hypertrophic phenotypes, indicating a defect in the suppression of pluripotency. A role of AMP1 in the miRNA-mediated inhibition of translation has previously been reported; however, how this activity is related to its developmental functions is unclear. Here, we examined the functional interaction between AMP1 and the Class III homeodomain-leucine zipper (HD-ZIP III) transcription factors, which are miRNA-controlled determinants of shoot meristem specification. We found that the HD-ZIP III transcriptional output is enhanced in the amp1 mutant and that plant lines with increased HD-ZIP III activity not only developed amp1 mutant-like phenotypes but also showed a synergistic genetic interaction with the mutant. Conversely, the reduction of HD-ZIP III function suppressed the shoot hypertrophy defects of the amp1 mutant. We further provide evidence that the expression domains of HD-ZIP III family members are expanded in the amp1 mutant and that this misexpression occurs at the transcriptional level and does not involve the function of miRNA165/166. Finally, amp1 mutant-specific phenotypes cannot be mimicked by a general inhibition of miRNA function in the AMP1 expression domain. These findings lead us to a model in which AMP1 restricts cellular pluripotency upstream of HD-ZIP III proteins, and this control appears to be not directly mediated by the canonical miRNA pathway.

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来源期刊
Plant Physiology
Plant Physiology 生物-植物科学
CiteScore
12.20
自引率
5.40%
发文量
535
审稿时长
2.3 months
期刊介绍: Plant Physiology® is a distinguished and highly respected journal with a rich history dating back to its establishment in 1926. It stands as a leading international publication in the field of plant biology, covering a comprehensive range of topics from the molecular and structural aspects of plant life to systems biology and ecophysiology. Recognized as the most highly cited journal in plant sciences, Plant Physiology® is a testament to its commitment to excellence and the dissemination of groundbreaking research. As the official publication of the American Society of Plant Biologists, Plant Physiology® upholds rigorous peer-review standards, ensuring that the scientific community receives the highest quality research. The journal releases 12 issues annually, providing a steady stream of new findings and insights to its readership.
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