“不仅仅是形状,还有更多”:学生通过沉浸式虚拟现实学习酶-底物相互作用

IF 2.6 2区 教育学 Q1 EDUCATION & EDUCATIONAL RESEARCH
Henry Matovu, Mihye Won, Roy Tasker, Mauro Mocerino, David Franklin Treagust, Dewi Ayu Kencana Ungu and Chin-Chung Tsai
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引用次数: 0

摘要

沉浸式虚拟现实(iVR)可以帮助学生可视化和探索复杂的化学概念,如蛋白质酶结构和相互作用。我们设计了一套基于协作性ivr的学习任务,用于研究蛋白质酶与其底物之间的相互作用。我们调查了18对(36名学生)本科化学课程如何通过iVR学习任务改变他们对酶-底物相互作用的理解。分析了访谈前后的视频和学生生成的图表。在iVR之前,学生们有一个蛋白质酶的结构或它与底物分子相互作用的抽象模型。超过90%的学生(33/36)使用简单的锁与钥匙图解释酶与底物的相互作用,只关注形状。尽管许多学生在解释时使用了活化能等关键科学术语,但他们不确定酶是如何降低活化能的,也不确定催化反应是如何发生的。在iVR之后,所有学生都讨论了2D图在表示复杂的酶-底物相互作用方面的不足。大约90%的学生(32/36)使用具体的概念,如活性位点的电子密度和反应物的方向,来解释酶和底物之间成功相互作用的可能性。我们的研究结果提供了交互式iVR学习任务如何帮助学生探索复杂的分子结构,整合思想,并对具有挑战性的科学概念建立具体理解的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
“It is not just the shape, there is more”: students’ learning of enzyme–substrate interactions with immersive Virtual Reality

Immersive Virtual Reality (iVR) can help students visualise and explore complex chemical concepts, such as protein enzyme structures and interactions. We designed a set of collaborative iVR-based learning tasks on the interaction between a protein enzyme and its substrate. We investigated how 18 pairs (36 students) in undergraduate chemistry courses changed their understanding of enzyme–substrate interactions through iVR learning tasks. Videos of pre- and post-interviews and student-generated diagrams were analysed. Before iVR, students had abstract models of the structure of a protein enzyme or its interaction with a substrate molecule. Over 90 per cent of the students (33/36) explained enzyme–substrate interactions using simplistic lock-and-key diagrams, exclusively focusing on the shape. Although many students employed key scientific terms like activation energy in their explanations, they were unsure how enzymes lowered activation energy or how catalytic reactions occurred. After iVR, all students discussed the inadequacy of 2D diagrams for representing complex enzyme–substrate interactions. About 90 per cent of students (32/36) used concrete ideas such as electron density and orientation of reactants in the active site to explain the probability of successful interactions between the enzyme and its substrate. Our findings provide evidence of how interactive iVR learning tasks can help students explore complex molecular structures, integrate ideas, and build a concrete understanding of challenging science concepts.

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来源期刊
CiteScore
4.80
自引率
26.70%
发文量
64
审稿时长
6-12 weeks
期刊介绍: The journal for teachers, researchers and other practitioners in chemistry education.
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