Arabidopsis AN3 and OLIGOCELLULA genes link telomere maintenance mechanisms with cell division and expansion control.

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Molecular Biology Pub Date : 2024-05-30 DOI:10.1007/s11103-024-01457-6
Inna A Agabekian, Liliia R Abdulkina, Alina Y Lushnenko, Pierce G Young, Lia R Valeeva, Olivia Boskovic, Ethan G Lilly, Margarita R Sharipova, Dorothy E Shippen, Thomas E Juenger, Eugene V Shakirov
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Abstract

Telomeres are conserved chromosomal structures necessary for continued cell division and proliferation. In addition to the classical telomerase pathway, multiple other genes including those involved in ribosome metabolism and chromatin modification contribute to telomere length maintenance. We previously reported that Arabidopsis thaliana ribosome biogenesis genes OLI2/NOP2A, OLI5/RPL5A and OLI7/RPL5B have critical roles in telomere length regulation. These three OLIGOCELLULA genes were also shown to function in cell proliferation and expansion control and to genetically interact with the transcriptional co-activator ANGUSTIFOLIA3 (AN3). Here we show that AN3-deficient plants progressively lose telomeric DNA in early homozygous mutant generations, but ultimately establish a new shorter telomere length setpoint by the fifth mutant generation with a telomere length similar to oli2/nop2a -deficient plants. Analysis of double an3 oli2 mutants indicates that the two genes are epistatic for telomere length control. Telomere shortening in an3 and oli mutants is not caused by telomerase inhibition; wild type levels of telomerase activity are detected in all analyzed mutants in vitro. Late generations of an3 and oli mutants are prone to stem cell damage in the root apical meristem, implying that genes regulating telomere length may have conserved functional roles in stem cell maintenance mechanisms. Multiple instances of anaphase fusions in late generations of oli5 and oli7 mutants were observed, highlighting an unexpected effect of ribosome biogenesis factors on chromosome integrity. Overall, our data implicate AN3 transcription coactivator and OLIGOCELLULA proteins in the establishment of telomere length set point in plants and further suggest that multiple regulators with pleiotropic functions can connect telomere biology with cell proliferation and cell expansion pathways.

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拟南芥 AN3 和 OLIGOCELLULA 基因将端粒维持机制与细胞分裂和扩展控制联系起来。
端粒是细胞持续分裂和增殖所必需的染色体结构。除了经典的端粒酶途径外,其他多个基因(包括参与核糖体代谢和染色质修饰的基因)也有助于端粒长度的维持。我们曾报道拟南芥核糖体生物发生基因 OLI2/NOP2A、OLI5/RPL5A 和 OLI7/RPL5B 在端粒长度调控中起着关键作用。这三个 OLIGOCELLULA 基因还被证明在细胞增殖和扩张控制中发挥作用,并与转录共激活因子 ANGUSTIFOLIA3(AN3)发生基因相互作用。在这里,我们发现 AN3 基因缺陷植株在早期同源突变世代中会逐渐失去端粒 DNA,但最终会在第五代突变体中建立一个新的较短端粒长度设定点,其端粒长度与 oli2/nop2a 基因缺陷植株相似。对双 an3 oli2 突变体的分析表明,这两个基因对端粒长度的控制具有表观作用。an3和oli突变体的端粒缩短不是由端粒酶抑制引起的;在体外所有分析的突变体中都能检测到野生型水平的端粒酶活性。an3和oli突变体的晚代在根尖分生组织中容易发生干细胞损伤,这意味着调节端粒长度的基因在干细胞维持机制中可能具有保守的功能作用。在 oli5 和 oli7 突变体的晚期世代中观察到了多个无丝分裂融合的实例,突显了核糖体生物发生因子对染色体完整性的意外影响。总之,我们的数据表明,AN3转录辅激活因子和OLIGOCELLULA蛋白与植物端粒长度设定点的建立有关,并进一步表明,具有多重功能的多种调节因子可将端粒生物学与细胞增殖和细胞扩增途径联系起来。
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来源期刊
Plant Molecular Biology
Plant Molecular Biology 生物-生化与分子生物学
自引率
2.00%
发文量
95
审稿时长
1.4 months
期刊介绍: Plant Molecular Biology is an international journal dedicated to rapid publication of original research articles in all areas of plant biology.The Editorial Board welcomes full-length manuscripts that address important biological problems of broad interest, including research in comparative genomics, functional genomics, proteomics, bioinformatics, computational biology, biochemical and regulatory networks, and biotechnology. Because space in the journal is limited, however, preference is given to publication of results that provide significant new insights into biological problems and that advance the understanding of structure, function, mechanisms, or regulation. Authors must ensure that results are of high quality and that manuscripts are written for a broad plant science audience.
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