The long road to bloom in conifers.

Progress of Theoretical Physics Pub Date : 2022-11-25 eCollection Date: 2022-01-01 DOI:10.48130/FR-2022-0016
Jingjing Ma, Xi Chen, Fangxu Han, Yitong Song, Biao Zhou, Yumeng Nie, Yue Li, Shihui Niu
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Abstract

More than 600 species of conifers (phylum Pinophyta) serve as the backbone of the Earth's terrestrial plant community and play key roles in global carbon and water cycles. Although coniferous forests account for a large fraction of global wood production, their productivity relies largely on the use of genetically improved seeds. However, acquisition of such seeds requires recurrent selection and testing of genetically superior parent trees, eventually followed by the establishment of a seed orchard to produce the improved seeds. The breeding cycle for obtaining the next generation of genetically improved seeds can be significantly lengthened when a target species has a long juvenile period. Therefore, development of methods for diminishing the juvenile phase is a cost-effective strategy for shortening breeding cycle in conifers. The molecular regulatory programs associated with the reproductive transition and annual reproductive cycle of conifers are modulated by environmental cues and endogenous developmental signals. Mounting evidence indicates that an increase in global average temperature seriously threatens plant productivity, but how conifers respond to the ever-changing natural environment has yet to be fully characterized. With the breakthrough of assembling and annotating the giant genome of conifers, identification of key components in the regulatory cascades that control the vegetative to reproductive transition is imminent. However, comparison of the signaling pathways that control the reproductive transition in conifers and the floral transition in Arabidopsis has revealed many differences. Therefore, a more complete understanding of the underlying regulatory mechanisms that control the conifer reproductive transition is of paramount importance. Here, we review our current understanding of the molecular basis for reproductive regulation, highlight recent discoveries, and review new approaches for molecular research on conifers.

针叶树开花的漫长之路
针叶树(松科)有 600 多种,是地球陆地植物群落的支柱,在全球碳循环和水循环中发挥着关键作用。虽然针叶林占全球木材产量的很大一部分,但其生产力在很大程度上依赖于基因改良种子的使用。然而,要获得这类种子,就必须对基因优良的母树进行反复筛选和测试,最终建立种子园来生产改良种子。如果目标物种的幼苗期较长,获得下一代基因改良种子的育种周期就会大大延长。因此,开发缩短幼树期的方法是缩短针叶树育种周期的一项具有成本效益的策略。与针叶树繁殖过渡和年繁殖周期相关的分子调控程序受环境线索和内源发育信号的调节。越来越多的证据表明,全球平均气温的升高严重威胁着植物的生产力,但针叶树如何应对不断变化的自然环境还没有完全定性。随着针叶树巨型基因组的组装和注释工作取得突破性进展,控制无性繁殖向有性生殖过渡的调控级联中关键成分的鉴定工作也迫在眉睫。然而,对控制针叶树生殖转换的信号通路和拟南芥花转换的信号通路进行比较后发现,两者存在许多差异。因此,更全面地了解控制针叶树生殖转变的潜在调控机制至关重要。在此,我们回顾了我们目前对生殖调控分子基础的理解,重点介绍了最近的发现,并综述了针叶树分子研究的新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Progress of Theoretical Physics
Progress of Theoretical Physics 物理-物理:综合
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