形式化无脊椎动物形态数据:基于角质层的骨骼-肌肉系统描述模型,昆虫解剖本体及其在生物多样性研究和信息学中的潜在应用。

IF 6.1 1区 生物学 Q1 EVOLUTIONARY BIOLOGY Systematic Biology Pub Date : 2023-11-01 DOI:10.1093/sysbio/syad025
Jennifer C Girón, Sergei Tarasov, Luis Antonio González Montaña, Nicolas Matentzoglu, Aaron D Smith, Markus Koch, Brendon E Boudinot, Patrice Bouchard, Roger Burks, Lars Vogt, Matthew Yoder, David Osumi-Sutherland, Frank Friedrich, Rolf G Beutel, István Mikó
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引用次数: 0

摘要

昆虫的惊人辐射产生了惊人的表型多样性。在过去的250年里,昆虫系统学的研究已经产生了数百个术语来命名和比较它们。在目前的形式中,这种术语的多样性是以自然语言呈现的,缺乏形式化,这禁止了使用语义网络技术的计算机辅助比较。在这里,我们提出了一个描述角质解剖结构的模型(MoDCAS),该模型结合了结构特性和位置关系,用于标准化、一致性和可重复性的节肢动物表型描述。我们将MoDCAS框架应用于创建昆虫骨骼肌系统解剖本体(AISM)。AISM是第一个通用昆虫本体论,旨在通过为每个术语提供广义、完全逻辑和可查询的定义来覆盖所有分类群。它是使用本体开发工具包(ODK)构建的,该工具包最大限度地提高了与Uberon(Uberon多物种解剖本体)和其他基本本体的互操作性,增强了昆虫解剖与更广泛的生物科学的集成。还引入了一个模板系统,用于添加新术语、扩展AISM并将其连接到额外的解剖学、表型、遗传学和化学本体。AISM被认为是分类单元特定昆虫本体论的主干,具有跨越系统生物学和生物多样性信息学的潜在应用,允许用户:1)使用受控词汇表并创建半自动计算机可解析的昆虫形态描述;2) 将昆虫形态学纳入更广泛的研究领域,包括基于本体的系统发育方法、逻辑同源性假设测试、进化-进化研究和基因型-表型映射;以及3)通过促进能够提取、链接、注释和处理形态数据的信息学工具的生产和测试,自动化从文献中提取形态数据,从而能够生成大规模的表型数据。这种描述性模型及其本体论应用将允许在生物多样性研究中对节肢动物表型进行清晰和语义互操作的整合。
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Formalizing Invertebrate Morphological Data: A Descriptive Model for Cuticle-Based Skeleto-Muscular Systems, an Ontology for Insect Anatomy, and their Potential Applications in Biodiversity Research and Informatics.

The spectacular radiation of insects has produced a stunning diversity of phenotypes. During the past 250 years, research on insect systematics has generated hundreds of terms for naming and comparing them. In its current form, this terminological diversity is presented in natural language and lacks formalization, which prohibits computer-assisted comparison using semantic web technologies. Here we propose a Model for Describing Cuticular Anatomical Structures (MoDCAS) which incorporates structural properties and positional relationships for standardized, consistent, and reproducible descriptions of arthropod phenotypes. We applied the MoDCAS framework in creating the ontology for the Anatomy of the Insect Skeleto-Muscular system (AISM). The AISM is the first general insect ontology that aims to cover all taxa by providing generalized, fully logical, and queryable, definitions for each term. It was built using the Ontology Development Kit (ODK), which maximizes interoperability with Uberon (Uberon multispecies anatomy ontology) and other basic ontologies, enhancing the integration of insect anatomy into the broader biological sciences. A template system for adding new terms, extending, and linking the AISM to additional anatomical, phenotypic, genetic, and chemical ontologies is also introduced. The AISM is proposed as the backbone for taxon-specific insect ontologies and has potential applications spanning systematic biology and biodiversity informatics, allowing users to: 1) use controlled vocabularies and create semiautomated computer-parsable insect morphological descriptions; 2) integrate insect morphology into broader fields of research, including ontology-informed phylogenetic methods, logical homology hypothesis testing, evo-devo studies, and genotype to phenotype mapping; and 3) automate the extraction of morphological data from the literature, enabling the generation of large-scale phenomic data, by facilitating the production and testing of informatic tools able to extract, link, annotate, and process morphological data. This descriptive model and its ontological applications will allow for clear and semantically interoperable integration of arthropod phenotypes in biodiversity studies.

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来源期刊
Systematic Biology
Systematic Biology 生物-进化生物学
CiteScore
13.00
自引率
7.70%
发文量
70
审稿时长
6-12 weeks
期刊介绍: Systematic Biology is the bimonthly journal of the Society of Systematic Biologists. Papers for the journal are original contributions to the theory, principles, and methods of systematics as well as phylogeny, evolution, morphology, biogeography, paleontology, genetics, and the classification of all living things. A Points of View section offers a forum for discussion, while book reviews and announcements of general interest are also featured.
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