通过计算和物理建模了解形式-功能关系。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-08-16 DOI:10.1093/icb/icae136
M Janneke Schwaner, S Tonia Hsieh
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引用次数: 0

摘要

长期以来,形态-性能-适配性范式一直是一项指导原则,激励着大量的实验室和野外研究,这些研究对于理解生命树的功能-形态关系至关重要。尽管实验方法很强大,但它们也有与设备和动物成本相关的固有限制,以及对可实施的操作类型的伦理考虑。与动物实验相比,建模在操作变量和探索更广阔的参数空间方面具有更大的灵活性,因此有机会克服其中的一些挑战。然而,要有效地使用这些工具,就必须认真考虑它们的局限性及其带来的益处,这就要求在教育发展的早期阶段就加强跨学科培训,并加强来自传统上独立学科的科学家之间的合作和协同作用。随着越来越多的机构认识到普及计算和快速原型资源的必要性并为此进行投资,我们认为现在正是优先加强协同合作以加速跨领域发现和创新的大好时机。
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Computational and Physical Modeling to Understand Form-Function Relationships.

The morphology-performance-fitness paradigm has long been a guiding principle inspiring a great deal of laboratory and field studies fundamental to understanding functional-morphology relationships across the tree of life. Despite the power of experimental approaches they also come with inherent limitations associated with equipment and animal costs, as well as ethical considerations for the types of manipulations that can be implemented. Modeling can provide an opportunity to surmount some of these challenges by offering greater flexibility in manipulating variables and exploring a wider parameter space than is tractable during animal experimentation. However, effective implementation of these tools requires careful consideration of the limitations and benefits they convey, requiring both greater interdisciplinary training from early stages of educational development and increased collaboration and synergies among scientists from traditionally separate disciplines. With institutions increasingly recognizing the need for and investing in providing universal access to computational and rapid prototyping resources, we believe that it is an opportune moment to prioritize greater synergy to accelerate discovery and innovation across fields.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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