榕树(Ficus hispida)端粒到端粒参考基因组为性别决定提供了新的视角。

IF 7.6 Q1 GENETICS & HEREDITY 园艺研究(英文) Pub Date : 2023-12-13 eCollection Date: 2024-01-01 DOI:10.1093/hr/uhad257
Zhenyang Liao, Tianwen Zhang, Wenlong Lei, Yibin Wang, Jiaxin Yu, Yinghao Wang, Kun Chai, Gang Wang, Huahao Zhang, Xingtan Zhang
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引用次数: 0

摘要

高质量的参考基因组是解析生物重要性状所不可或缺的。榕树是一种雌雄异株植物。完整的榕树参考基因组对于了解它们的性别进化和重要的生物特征(如气生根、与榕树蜂的互惠共生以及从老茎结果)至关重要。在这里,我们利用 PacBio HiFi 和 Oxford Nanopore Ultra-long 测序技术生成了 F. hispida 的端粒到端粒(T2T)基因组。与之前发布的基因组相比,基因组的连续性和完整性都有所提高,注释了 6 个中心粒和 28 个端粒。我们将之前报告的 2-Mb 雄性特异性区域细化为一个 7.2-Mb 的基因组区域,其中包含 51 个新预测的基因和候选性别决定基因 AG2 和 AG3。其中许多基因的表达量极低,这可能是由于基因体和启动子区域的超甲基化造成的。基因调控网络(GRNs)显示,AG2 和 AG3 与雄花雄蕊的发育调控有关,而 AG1 基因则负责调控雌花的防御反应和次生代谢过程。基因调控网络的比较分析表明,NAC、WRKY 和 MYB 转录因子家族在雌花基因调控网络中占主导地位,而 MADS 和 MYB 转录因子家族在雄花基因调控网络中占主导地位。
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A telomere-to-telomere reference genome of ficus (Ficus hispida) provides new insights into sex determination.

A high-quality reference genome is indispensable for resolving biologically essential traits. Ficus hispida is a dioecious plant. A complete Ficus reference genome will be crucial for understanding their sex evolution and important biological characteristics, such as aerial roots, mutualistic symbiosis with ficus-wasps, and fruiting from old stems. Here, we generated a telomere-to-telomere (T2T) genome for F. hispida using PacBio HiFi and Oxford Nanopore Ultra-long sequencing technologies. The genome contiguity and completeness has shown improvement compared with the previously released genome, with the annotation of six centromeres and 28 telomeres. We have refined our previously reported 2-Mb male-specific region into a 7.2-Mb genomic region containing 51 newly predicted genes and candidate sex-determination genes AG2 and AG3. Many of these genes showed extremely low expression, likely attributed to hypermethylation in the gene body and promoter regions. Gene regulatory networks (GRNs) revealed that AG2 and AG3 are related to the regulation of stamen development in male flowers, while the AG1 gene is responsible for regulating female flowers' defense responses and secondary metabolite processes. Comparative analysis of GRNs showed that the NAC, WRKY, and MYB transcription factor families dominate the female GRN, whereas the MADS and MYB transcription factor families are prevalent in the male GRN.

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