印度尼西亚爪哇岛小短鼻果蝠Cynopterus brachyotis (m ller 1838)的系统发育和遗传变异分析(线粒体D-loop推断)。

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Husni Mubarok, Niken Satuti Nur Handayani, Ibnu Maryanto, Tuty Arisuryanti
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引用次数: 0

摘要

背景:短尾袋蝠(Cynopterus brachyotis, m ller 1838)是一种广泛分布于东南亚不同生境的果蝠。该物种作为种子传播者和传粉者起着重要的作用。利用mtDNA标记(cyt-b和D-loop)进行形态学研究和系统发育分析,发现该物种在马来西亚半岛和婆罗洲有两种不同的形态,在东南亚有6个谱系,导致了新种的形成。此外,根据D-loop序列,该物种在马来西亚和泰国也有较高的遗传多样性。然而,目前尚未对印度尼西亚的短支囊菌进行系统发育和遗传变异研究。这两项研究为该物种的分类学和种群遗传学研究提供了重要的补充资料。因此,我们利用mtDNA D-loop标记对爪哇岛7个生境(开放破碎化生境(城市、咖啡和橡胶种植园、松林、次生林、红树林)和封闭生境(天然林)收集的短尾草(C. brachyotis)种群进行了系统发育和遗传多样性分析。结果:基于贝叶斯推断(BI)的系统发育树和基于Kimura-2参数的遗传距离(K-2P)结果表明,爪哇岛7个生境的33个短爪草个体在生境之间存在重叠,无法根据生境和谱系进行区分。种群内和种内分析表明,该物种在爪哇岛具有较高的单倍型多样性(Hd = 0.933-1.000)。单倍型网络被分成两个单倍群,显示了不同生境间的单倍型共享。爪哇岛短爪蝠的系统发育和遗传变异分析表明,该物种分布广泛,能适应不同的生境。结论:爪哇岛7个不同生境中收集的短爪草具有重叠、遗传接近、遗传变异高的特点。本研究结果首次报道了爪哇岛上的短爪草(C. brachyotis),为了解该物种在印度尼西亚的系统发育和遗传多样性提供了数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Phylogenetic and genetic variation analysis of lesser short-nosed fruit bat Cynopterus brachyotis (Müller 1838) on Java island, Indonesia, inferred from mitochondrial D-loop.

Phylogenetic and genetic variation analysis of lesser short-nosed fruit bat Cynopterus brachyotis (Müller 1838) on Java island, Indonesia, inferred from mitochondrial D-loop.

Phylogenetic and genetic variation analysis of lesser short-nosed fruit bat Cynopterus brachyotis (Müller 1838) on Java island, Indonesia, inferred from mitochondrial D-loop.

Phylogenetic and genetic variation analysis of lesser short-nosed fruit bat Cynopterus brachyotis (Müller 1838) on Java island, Indonesia, inferred from mitochondrial D-loop.

Background: Cynopterus brachyotis (Müller 1838) is a generalist and widespread fruit bat species which inhabits different types of habitats in Southeast Asia. This species plays an essential role as a seed disperser and pollinator. Morphological study and phylogenetic analysis using mtDNA markers (cyt-b and D-loop) revealed that this species had two different forms in peninsular Malaysia and Borneo and six lineages in Southeast Asia that lead to new species formation. In addition, this species is also reported to have high genetic diversity in Malaysia and Thailand based on the D-loop sequence. However, a phylogenetic and genetic variation study of C. brachyotis in Indonesia has not been conducted yet. These two studies are important as additional information for taxonomic and population genetic studies of this species. Thus, we performed the phylogenetic and genetic diversity analysis of the C. brachyotis population collected from seven habitats on Java island, including open-fragmented habitats (urban, coffee and rubber plantations, pine forest, secondary forest, mangrove forest) and closed habitats (natural forest) using the mtDNA D-loop marker.

Results: The phylogenetic tree using the Bayesian inference (BI) and genetic distance using the Kimura-2 parameter (K-2P) demonstrated that 33 individuals of C. brachyotis from seven habitats on Java island overlapped between habitats and could not be distinguished according to their habitats and lineage. Intrapopulation and intraspecies analysis revealed high haplotype diversity of this species on Java island (Hd = 0.933-1.000). The haplotype network was split into two haplogroups, showing haplotype sharing between habitats. These phylogenetic and genetic variations analysis of C. brachyotis bats on Java island indicated that this species is widespread and adapt to different habitats.

Conclusions: This study of C. brachyotis on Java island collected from seven different habitats has overlapped and genetically close and has high genetic variation. Our results provide the first reported study of C. brachyotis on Java island and provide data to understand the phylogenetic and genetic diversity of this species in Indonesia.

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