Genomic studies in Linum shed light on the evolution of the distyly supergene and the molecular basis of convergent floral evolution.

IF 9.4 1区 生物学 Q1 Agricultural and Biological Sciences
New Phytologist Pub Date : 2025-07-18 DOI:10.1111/nph.70392
Panagiotis-Ioannis Zervakis, Zoé Postel, Aleksandra Losvik, Marco Fracassetti, Lucile Solér, Estelle Proux-Wéra, Ignas Bunikis, Allison Churcher, Tanja Slotte
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Abstract

Distyly, an example of convergent evolution, is governed by a supergene, the S-locus, in several species. Recent studies highlight similar genomic architectures of independently evolved S-loci, but its mode of origin and whether similar regulatory pathways underlie the convergent evolution of distyly remains unclear. We examined the evolution of supergenes and mechanisms underlying distyly in Linum species that diverged c. 33 million years ago (Ma). Using haplotype-resolved genomes and population genomics, we identified and characterized the S-loci of Linum perenne (distylous) and Linum grandiflorum (style length dimorphic), and compared them to that of Linum tenue (distylous). We then tested for a conserved hormonal mechanism regulating style length polymorphism in Linum. The S-locus supergene was consistently hemizygous in short-styled individuals across all three species, although it showed variation in size, gene content, repeat elements and extent of recombination suppression. Two S-linked candidate genes, TSS1 (style length) and WDR-44 (anther height/pollen self-incompatibility), were conserved. Consistent with a brassinosteroid-dependent role of TSS1, epibrassinolide treatment revealed a conserved, morph-specific effect on style length. S-locus structural polymorphism, candidate distyly genes and mechanisms regulating style length remain conserved > 30 Ma in Linum. In combination with findings from other systems, our results suggest that the brassinosteroid pathway frequently contributes to style length polymorphism.

通过对亚麻属植物的基因组研究,揭示了亚麻属植物近缘表基因的进化和趋同花进化的分子基础。
disyly是趋同进化的一个例子,在一些物种中,它是由一个超基因s位点控制的。最近的研究强调了独立进化的s位点的相似基因组结构,但其起源模式以及相似的调控途径是否构成了disyly趋同进化的基础尚不清楚。我们研究了大约3300万年前分化的亚麻属物种的超基因进化及其机制。利用单倍型解析基因组和群体基因组学技术,对花柱长度二型的大花亚麻(Linum perenne)和花柱长度二型的大花亚麻(Linum grandflorum)的s位点进行了鉴定和鉴定,并与二花亚麻(Linum tenue)进行了比较。然后,我们测试了一个保守的激素机制调节柱头长度多态性。尽管在大小、基因含量、重复元件和重组抑制程度上存在差异,但s位点的超基因在3个物种的短株个体中始终是半合子的。2个s连锁候选基因TSS1(花柱长度)和WDR-44(花药高度/花粉自交不亲和)保守。与油菜素内酯对TSS1的依赖作用一致,表油菜素内酯对花柱长度有保守的、形态特异性的影响。s座结构多态性、候选花柱基因和花柱长度调控机制在亚麻属中保持保守。结合其他系统的研究结果,我们的结果表明油菜素内酯途径经常导致花柱长度多态性。
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来源期刊
New Phytologist
New Phytologist PLANT SCIENCES-
CiteScore
17.60
自引率
5.30%
发文量
728
审稿时长
1 months
期刊介绍: New Phytologist is a leading publication that showcases exceptional and groundbreaking research in plant science and its practical applications. With a focus on five distinct sections - Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology - the journal covers a wide array of topics ranging from cellular processes to the impact of global environmental changes. We encourage the use of interdisciplinary approaches, and our content is structured to reflect this. Our journal acknowledges the diverse techniques employed in plant science, including molecular and cell biology, functional genomics, modeling, and system-based approaches, across various subfields.
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