化学信息学中开放科学的演变:从封闭系统到协同创新的旅程

IF 5.7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Christoph Steinbeck
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引用次数: 0

摘要

化学信息学在过去的四十年中发生了显著的变化,从一个由专有系统主导的领域发展到一个越来越接受开放科学原则的领域。在早期,化学信息学的特点是商业软件和有限的数据访问,限制了协作和可重复性。20世纪90年代末和21世纪初,开源软件的出现,包括化学开发工具包(CDK)和RDKit等工具,在计算化学的民主化中发挥了至关重要的作用。开放数据计划,如PubChem和NMRShiftDB,通过提供免费获取的化学信息,促进透明度和互操作性,并引入关键标准,如国际化学标识符(InChI),进一步提高了可访问性,彻底改变了不同平台的数据集成和检索。社区驱动的努力,包括蓝色方尖碑运动和开放笔记本科学,促进了开放方法和合作研究。最近,NFDI4Chem等国家数据基础设施项目旨在标准化化学信息学的研究数据管理,确保开放科学实践的长期可持续性。FAIR(可查找、可访问、可互操作、可重用)原则的日益普及进一步加强了计算化学中的数据共享和重用。挑战依然存在,特别是在克服对数据共享的抵制和确保开放项目的可持续供资方面。然而,化学信息学的发展轨迹表明,拥抱开放可以增强科学诚信,加速发现和创新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The evolution of open science in cheminformatics: a journey from closed systems to collaborative innovation

Cheminformatics has significantly transformed over the past four decades, evolving from a field dominated by proprietary systems to one increasingly embracing open science principles. In its early years, cheminformatics was characterised by commercial software and restricted data access, limiting collaboration and reproducibility. The advent of open-source software in the late 1990s and early 2000s, including tools such as the Chemistry Development Kit (CDK) and RDKit, played a crucial role in democratising computational chemistry. Open data initiatives, such as PubChem and NMRShiftDB, further enhanced accessibility by providing freely available chemical information, fostering transparency and interoperability and introducing key standards, such as the International Chemical Identifier (InChI), revolutionised data integration and retrieval across diverse platforms. Community-driven efforts, including the Blue Obelisk movement and Open Notebook Science, have promoted open methodologies and collaborative research. More recently, national data infrastructure projects like NFDI4Chem have aimed to standardise research data management in cheminformatics, ensuring the long-term sustainability of open science practices. The increasing adoption of the FAIR (Findable, Accessible, Interoperable, Reusable) principles has further reinforced data sharing and reuse in computational chemistry. Challenges remain, particularly in overcoming resistance to data sharing and ensuring sustainable funding for open projects. However, the trajectory of cheminformatics demonstrates that embracing openness enhances scientific integrity and accelerates discovery and innovation.

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来源期刊
Journal of Cheminformatics
Journal of Cheminformatics CHEMISTRY, MULTIDISCIPLINARY-COMPUTER SCIENCE, INFORMATION SYSTEMS
CiteScore
14.10
自引率
7.00%
发文量
82
审稿时长
3 months
期刊介绍: Journal of Cheminformatics is an open access journal publishing original peer-reviewed research in all aspects of cheminformatics and molecular modelling. Coverage includes, but is not limited to: chemical information systems, software and databases, and molecular modelling, chemical structure representations and their use in structure, substructure, and similarity searching of chemical substance and chemical reaction databases, computer and molecular graphics, computer-aided molecular design, expert systems, QSAR, and data mining techniques.
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