Convergent degenerated regulatory elements associated with limb loss in limbless amphibians and reptiles.

IF 11 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular biology and evolution Pub Date : 2024-11-12 DOI:10.1093/molbev/msae239
Chenglong Zhu, Shengyou Li, Daizhen Zhang, Jinjin Zhang, Gang Wang, Botong Zhou, Jiangmin Zheng, Wenjie Xu, Zhengfei Wang, Xueli Gao, Qiuning Liu, Tingfeng Xue, Huabin Zhang, Chunhui Li, Baoming Ge, Yuxuan Liu, Qiang Qiu, Huixian Zhang, Jinghui Huang, Boping Tang, Kun Wang
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Abstract

Limbs are a defining characteristic of tetrapods, yet numerous taxa, primarily among amphibians and reptiles, have independently lost limbs as an adaptation to new ecological niches. To elucidate the genetic factors contributing to this convergent limb loss, we present a 12 Gb chromosome-level assembly of the Banna caecilian (Ichthyophis bannanicus), a limbless amphibian. Our comparative analysis, which includes the reconstruction of amphibian karyotype evolution, reveals constrained gene length evolution in a subset of developmental genes across three large genomes. Investigation of limb development genes uncovered the loss of Grem1 in caecilians and Tulp3 in snakes. Interestingly, caecilians and snakes share a significantly larger number of convergent degenerated conserved non-coding elements (dCNEs) than limbless lizards, which have a shorter evolutionary history of limb loss. These convergent dCNEs overlap significantly with active genomic regions during mouse limb development and are conserved in limbed species, suggesting their essential role in limb patterning in the tetrapod common ancestor. While most convergent dCNEs emerged in the jawed vertebrate ancestor, coinciding with the origin of paired appendage, more recent dCNEs also contribute to limb development, as demonstrated through functional experiments. Our study provides novel insights into the regulatory elements associated with limb development and loss, offering an evolutionary perspective on the genetic basis of morphological specialization.

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与无肢两栖类和爬行类动物肢体缺失有关的趋同退化调控元件。
肢体是四足动物的一个显著特征,然而许多类群,主要是两栖类和爬行类中的类群,为了适应新的生态位,都独立地失去了肢体。为了阐明导致这种趋同性肢体丧失的遗传因素,我们展示了一种无肢两栖动物--Banna caecilian(Ichthyophis bannanicus)的 12 Gb 染色体组。我们的比较分析包括两栖动物核型进化的重建,揭示了三个大型基因组中发育基因子集受限的基因长度进化。对肢体发育基因的研究发现,在无尾两栖动物中Grem1基因缺失,在蛇类中Tulp3基因缺失。有趣的是,与肢体缺失进化史较短的无肢蜥蜴相比,凯西利亚人和蛇类共享的趋同退化保守非编码元件(dCNEs)数量要多得多。这些收敛的dCNEs与小鼠肢体发育过程中的活跃基因组区域有明显重叠,并且在有肢物种中是保守的,这表明它们在四足动物共同祖先的肢体模式化过程中发挥着重要作用。虽然大多数会聚dCNE出现于有颌脊椎动物的祖先,与成对附肢的起源相吻合,但正如功能实验所证明的那样,较新的dCNE也有助于肢体的发育。我们的研究为了解与肢体发育和缺失相关的调控元件提供了新的视角,为形态特化的遗传基础提供了一个进化的视角。
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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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