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LAFL 转录调控因子的分子和表观遗传调控及功能,这些因子控制种子发育。

Molecular and epigenetic regulations and functions of the LAFL transcriptional regulators that control seed development.

机构信息

IJPB (Institut Jean-Pierre Bourgin), INRA, AgroParisTech, CNRS, Université Paris-Saclay, RD10, 78026, Versailles, France.

Régulations Epigénétiques et Développement de la Graine, ERL 5300 CNRS-IRD UMR DIADE, IRD centre de Montpellier, 911 Avenue Agropolis, BP 64501, 34394, Montpellier, France.

出版信息

Plant Reprod. 2018 Sep;31(3):291-307. doi: 10.1007/s00497-018-0337-2. Epub 2018 May 24.

DOI:10.1007/s00497-018-0337-2
PMID:29797091
Abstract

The LAFL (i.e. LEC1, ABI3, FUS3, and LEC2) master transcriptional regulators interact to form different complexes that induce embryo development and maturation, and inhibit seed germination and vegetative growth in Arabidopsis. Orthologous genes involved in similar regulatory processes have been described in various angiosperms including important crop species. Consistent with a prominent role of the LAFL regulators in triggering and maintaining embryonic cell fate, their expression appears finely tuned in different tissues during seed development and tightly repressed in vegetative tissues by a surprisingly high number of genetic and epigenetic factors. Partial functional redundancies and intricate feedback regulations of the LAFL have hampered the elucidation of the underpinning molecular mechanisms. Nevertheless, genetic, genomic, cellular, molecular, and biochemical analyses implemented during the last years have greatly improved our knowledge of the LALF network. Here we summarize and discuss recent progress, together with current issues required to gain a comprehensive insight into the network, including the emerging function of LEC1 and possibly LEC2 as pioneer transcription factors.

摘要

LAFL(即 LEC1、ABI3、FUS3 和 LEC2)主转录调控因子相互作用形成不同的复合物,诱导拟南芥胚胎发育和成熟,并抑制种子萌发和营养生长。在包括重要作物物种在内的各种被子植物中,已经描述了涉及类似调控过程的同源基因。与 LAFL 调控因子在触发和维持胚胎细胞命运中的突出作用一致,它们的表达在种子发育的不同组织中被精细调节,并被大量遗传和表观遗传因子在营养组织中强烈抑制。LAFL 的部分功能冗余和复杂的反馈调节阻碍了对基础分子机制的阐明。然而,近年来实施的遗传、基因组、细胞、分子和生化分析极大地提高了我们对 LAFL 网络的认识。在这里,我们总结和讨论了最近的进展,以及获得对该网络全面了解所需的当前问题,包括 LEC1 和可能的 LEC2 作为先驱转录因子的新兴功能。

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