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菟丝子(旋花科)的线粒体系统发育基因组学揭示了一种可能从宿主发生的功能性水平基因转移。

Mitochondrial phylogenomics of Cuscuta (Convolvulaceae) reveals a potentially functional horizontal gene transfer from the host.

作者信息

Lin Qianshi, Banerjee Arjan, Stefanović Saša

机构信息

Department of Biology, University of Toronto Mississauga,  Mississauga, ON L5L 1C6,  Canada.

Ecology and Evolutionary Biology, University of Toronto,  Toronto, ON M5S 2Z9,  Canada.

出版信息

Genome Biol Evol. 2022 Jun 14;14(6). doi: 10.1093/gbe/evac091.

DOI:10.1093/gbe/evac091
PMID:35700229
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9234195/
Abstract

Horizontal gene transfers (HGTs) from host or other organisms have been reported in mitochondrial genomes of parasitic plants. Genes transferred in this fashion have usually been found non-functional. Several examples of HGT from the mitochondrial genome of parasitic Cuscuta (Convolvulaceae) to its hosts have been reported, but not vice versa. Here we used 31 protein-coding mitochondrial genes to infer the phylogeny of Cuscuta, and compared it with previous nuclear and plastid phylogenetic estimates. We also investigated the presence of HGTs within these lineages. Unlike in plastid genomes, we did not find extensive gene loss in their mitochondrial counterparts. Our results reveal the first example of organellar HGT from host to Cuscuta. Mitochondrial atp1 genes of South African subgenus Pachystigma were inferred to be transferred from Lamiales, with high support. Moreover, the horizontally transferred atp1 gene has functionally replaced the native, vertically transmitted copy, has an intact open reading frame, and is under strong purifying selection, all of which suggests that this xenolog remains functional. The mitochondrial phylogeny of Cuscuta is generally consistent with previous plastid and nuclear phylogenies, except for the misplacement of Pachystigma when atp1 is included. This incongruence may be caused by the HGT mentioned above. No example of HGT was found within mitochondrial genes of three other, independently evolved parasitic lineages we sampled: Cassytha/Laurales, Krameria/Zygophyllales, and Lennooideae/Boraginales.

摘要

寄生植物线粒体基因组中已报道存在来自宿主或其他生物体的水平基因转移(HGTs)。以这种方式转移的基因通常被发现无功能。已报道了几个从寄生菟丝子(旋花科)线粒体基因组向其宿主水平基因转移的例子,但反之则未发现。在这里,我们使用31个线粒体蛋白编码基因来推断菟丝子的系统发育,并将其与先前的核基因和质体系统发育估计进行比较。我们还研究了这些谱系中水平基因转移的存在情况。与质体基因组不同,我们在其线粒体对应物中未发现广泛的基因丢失。我们的结果揭示了从宿主到菟丝子的细胞器水平基因转移的首个例子。南非厚柱亚属的线粒体atp1基因被推断是从唇形目转移而来,支持率很高。此外,水平转移的atp1基因在功能上取代了天然的、垂直传递的拷贝,具有完整的开放阅读框,并且处于强烈的纯化选择之下,所有这些都表明这个异源基因仍然具有功能。菟丝子的线粒体系统发育总体上与先前的质体和核系统发育一致,但当包含atp1时厚柱亚属的位置有误。这种不一致可能是由上述水平基因转移引起的。在我们采样的其他三个独立进化的寄生谱系(无根藤/樟目、刺球果属/蒺藜目和列当属/紫草目)的线粒体基因中未发现水平基因转移的例子。

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