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解决冗余问题:植物中基因家族成员补偿的遗传机制。

Tackling redundancy: genetic mechanisms underlying paralog compensation in plants.

机构信息

School of Biological Sciences, Cold Spring Harbor Laboratory, Cold Spring Harbor, 11724, NY, USA.

Cold Spring Harbor Laboratory, Cold Spring Harbor, 11724, NY, USA.

出版信息

New Phytol. 2023 Nov;240(4):1381-1389. doi: 10.1111/nph.19267. Epub 2023 Sep 19.

Abstract

Gene duplication is a powerful source of biological innovation giving rise to paralogous genes that undergo diverse fates. Redundancy between paralogous genes is an intriguing outcome of duplicate gene evolution, and its maintenance over evolutionary time has long been considered a paradox. Redundancy can also be dubbed 'a geneticist's nightmare': It hinders the predictability of genome editing outcomes and limits our ability to link genotypes to phenotypes. Genetic studies in yeast and plants have suggested that the ability of ancient redundant duplicates to compensate for dosage perturbations resulting from a loss of function depends on the reprogramming of gene expression, a phenomenon known as active compensation. Starting from considerations on the stoichiometric constraints that drive the evolutionary stability of redundancy, this review aims to provide insights into the mechanisms of active compensation between duplicates that could be targeted for breaking paralog dependencies - the next frontier in plant functional studies.

摘要

基因复制是生物创新的强大源泉,产生了具有不同命运的同源基因。同源基因之间的冗余是复制基因进化的一个有趣结果,其在进化时间上的维持一直被认为是一个悖论。冗余也可以被称为“遗传学家的噩梦”:它阻碍了基因组编辑结果的可预测性,并限制了我们将基因型与表型联系起来的能力。酵母和植物的遗传研究表明,古老的冗余副本补偿功能丧失导致的剂量扰动的能力取决于基因表达的重新编程,这种现象被称为主动补偿。从驱动冗余进化稳定性的化学计量约束的考虑出发,本综述旨在深入了解同源基因之间主动补偿的机制,这可能成为打破同源依赖性的目标——这是植物功能研究的下一个前沿。

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