Ctenophores and parahoxozoans independently evolved functionally diverse voltage-gated K+ channels.

IF 2.9 2区 医学 Q1 PHYSIOLOGY Journal of General Physiology Pub Date : 2025-05-05 Epub Date: 2025-03-18 DOI:10.1085/jgp.202413740
Benjamin T Simonson, Zhaoyang Jiang, Joseph F Ryan, Timothy Jegla
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Abstract

The ctenophore species Mnemiopsis leidyi is known to have a large set of voltage-gated K+ channels, but little is known about the functional diversity of these channels or their evolutionary history in other ctenophore species. Here, we searched the genomes of two additional ctenophore species, Beroe ovata and Hormiphora californensis, for voltage-gated K+ channels and functionally expressed a subset of M. leidyi channels. We found that the last common ancestor of these three disparate ctenophore lineages probably had at least 33 voltage-gated K+ channels. Two of these genes belong to the EAG family, and the remaining 31 belong to the Shaker family and form a single clade within the animal/choanoflagellate Shaker phylogeny. We additionally found evidence for 10 of these Shaker channels in a transcriptome of the early branching ctenophore lineage Euplokamis dunlapae, suggesting that the diversification of these channels was already underway early in ctenophore evolution. We functionally expressed 16 Mnemiopsis Shakers and found that they encode a diverse array of voltage-gated K+ conductances with functional orthologs for many classic Shaker family subtypes found in cnidarians and bilaterians. Analysis of Mnemiopsis transcriptome data show these 16 Shaker channels are expressed in a wide variety of cell types, including neurons, muscle, comb cells, and colloblasts. Ctenophores therefore appear to have independently evolved much of the voltage-gated K+ channel diversity that is shared between cnidarians and bilaterians.

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栉水母和副嗜虫各自独立进化出功能多样的电压门控K+通道。
众所周知,卷毛水母具有大量的电压门控K+通道,但对这些通道的功能多样性及其在其他卷毛水母物种中的进化历史知之甚少。在这里,我们搜索了另外两种栉水母物种(Beroe ovata和Hormiphora californensis)的基因组,寻找电压门控的K+通道,并在功能上表达了M. leidyi通道的一个子集。我们发现,这三个不同栉水母谱系的最后一个共同祖先可能至少有33个电压门控K+通道。这些基因中有两个属于EAG家族,其余31个属于Shaker家族,并在动物/鞭虫Shaker系统发育中形成一个单一的分支。我们还在早期分支栉水母谱系Euplokamis dunlapae的转录组中发现了10个Shaker通道的证据,这表明这些通道的多样化在栉水母进化的早期就已经开始了。我们功能性地表达了16种记忆opsis Shakers,并发现它们编码了多种电压门控K+电导,具有在针孔动物和双边动物中发现的许多经典Shaker家族亚型的功能同源物。对记忆藓转录组数据的分析显示,这16个Shaker通道在多种细胞类型中表达,包括神经元、肌肉、梳状细胞和胶母细胞。因此,栉水母似乎独立地进化了许多电压门控的K+通道多样性,这种多样性在刺胞动物和双边动物之间共享。
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来源期刊
CiteScore
6.00
自引率
10.50%
发文量
88
审稿时长
6-12 weeks
期刊介绍: General physiology is the study of biological mechanisms through analytical investigations, which decipher the molecular and cellular mechanisms underlying biological function at all levels of organization. The mission of Journal of General Physiology (JGP) is to publish mechanistic and quantitative molecular and cellular physiology of the highest quality, to provide a best-in-class author experience, and to nurture future generations of independent researchers. The major emphasis is on physiological problems at the cellular and molecular level.
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