当前植物学和农业方面的植物和生理机制

Shahid Fareed, Azka Saleem, Hafsa Farooq, Sana Razzaq, Muzamil Shabir, Hakim Zamir, Zoima Tariq, Messum Ali, Ghulam Murtaza
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引用次数: 0

摘要

植物分子表观遗传学研究在植物基因调控中发挥着至关重要的作用,从早期对非孟德尔植物基因活动的描述,到对植物生长所必需的染色质修饰蛋白以及促进人类和真核生物基因沉默的 RNA 的关键检测,都是如此。不同的因子通过细胞信号通路在植物基因调控中发挥重要作用。由于环境胁迫,植物体内不同基因在不同条件下会出现过度表达和抑制。另一方面,植物的单倍体(配子体)发育阶段发生在减数分裂之后和受精之前。在模式植物拟南芥(Arabidopsis thaliana)中进行的基因组筛选主要是有价值的,迄今已发现 130 多种表观遗传调控因子。植物科学对可持续发展和气候变化等当前全球热点问题做出了重大贡献,因此扩大植物科学研究能力至关重要。我们的目标是突出反映在创造新生物技术工具(NBTs)和创造性使用植物基因工程方面的这些发展。研究的重点是为抗性物种或以前无法转化的物种创造新的生物技术工具(NBT),以揭示这些物种的生物学特性,这些研究与本文集密切相关。此外,基因组/基因编辑和特定蛋白质域技术(如 K-域技术)等尖端基因工程技术的使用也与本文集密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Current Botanical and Agriculture Aspects in Plants and Physiological Mechanism
The molecular epigenetics study in the plants plays a vital role in plant gene regulations, since the early descriptions of the non-Mendelians plant-based gene activities to pivotal detections of chromatin amending proteins necessary for plant growth and the RNAs which facilitates the silencing of genes in human and in the eukaryotes. Different factors playing important role in gene regulation in plants through cellular signaling pathways. Different genes show over expression and repression in response to different conditions in plants as a result of environmental stresses. While on the other hand, plants have haploid (gametophyte) development stage which occurs after meiosis and before fertilization. Genomic screening in Arabidopsis thaliana, the model plant, have been mainly worthwhile, yielding more than one hundred and thirty epigenetic regulators so far. The major contribution of plant science to current global hot problems like sustainability and climate change makes the expansion of plant science research capacity crucial. The objective is to highlight that reflect these developments in the creation of new biotechnological tools (NBTs) and the creative uses of plant genetic engineering. Studies that concentrate on the creation of NBT for resistant or previously non-transformable species to enable the unlocking of these species' biology are of great relevance to this collection. In addition, the use of cutting-edge genetic engineering techniques such as genome/gene editing and protein-domain specific technology (such as K-Domain technology).
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