玩家特定的白质包裹和缩放在冲击诱发应变反应中的作用。

IF 3 3区 医学 Q2 BIOPHYSICS
Véronique Bouvette, Samuel Guay, Louis De Beaumont, Yvan Petit, Sophie-Andrée Vinet, Eric Wagnac
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引用次数: 0

摘要

头部有限元模型(hfem)在理解头部碰撞损伤机制方面具有重要价值。个性化hfem对于捕获个性化的大脑反应非常重要,脑容量缩放被证明是有效的。然而,精细白质(WM)包裹在hfem中评估脑应变反应的作用,特别是在通常通过WM完整性变化评估的次震荡头部撞击(SHIs)的背景下,仍然没有得到充分的探索。本研究使用峰值最大主应变(95MPS)和应变率(95MPSr)作为损伤预测指标,评估了34个WM节段中细化的受试者特异性WM分割对脑容量变化引起的反应变异性的影响。利用21名加拿大大学橄榄球运动员的弥散加权成像数据对21例hfm进行个性化。模拟四种不同的头部碰撞,代表第50和99百分位的正面和倾斜右上角方向的加速度,与基线分组相比,改进的针对玩家的WM分组更好地捕获了应变响应的可变性。95MPS的75.71%和95MPSr的77.14%的回答被认为是不同的,而基线分组的回答最多为16.19%。这些结果表明,针对特定玩家的精细WM分割提高了捕捉特定玩家反应的能力。撞击方向和强度都会影响应变响应的变化,与低强度和正面撞击相比,高强度的头部角顶撞击显示出更大的球员特异性。这些发现强调了模型缩放以及玩家特定的精细WM分割在hfem中全面评估应变响应的潜在好处。hfem中WM的详细分布对于全面的损伤评估非常重要,可以增强hfem与评估跨节段WM完整性变化的成像研究的一致性。本文提出的简单直接的方法来实现玩家特定的应变响应,对于未来的SHI研究是有希望的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of player-specific white matter parcellation and scaling in impact-induced strain responses.

Head finite element models (hFEMs) are valuable in understanding injury mechanisms in head impacts. Personalizing hFEMs is important for capturing individualized brain responses, with brain volume scaling proving effective. However, the role of refined white matter (WM) parcellation in hFEMs for evaluating brain strain responses, particularly important in the context of subconcussive head impacts (SHIs) often assessed through changes in WM integrity, remains relatively underexplored. This study evaluated the effect of refined subject-specific WM parcellation in 34 WM segments on responses variability due to brain volume variations, using peak maximum principal strain (95MPS) and strain rate (95MPSr) as injury predictive metrics. Data from diffusion-weighted imaging of 21 Canadian varsity football players were utilized to personalize 21 hFEMs. Simulating four different head impacts, representing 50th and 99th percentile resultant accelerations in frontal and angled-top-right directions, refined player-specific WM parcellation better captured variability of strain responses compared to baseline parcellation. Up to 75.71% of 95MPS and 77.14% of 95MPSr responses were deemed different across refined WM segments for players, compared to a maximum of 16.19% of responses with baseline parcellation. These results suggest that player-specific refined WM parcellation improves the ability to capture player-specific responses. Both impact direction and intensity influenced variations in strain response, with angled-top head impacts combined with high intensity showing greater player-specificity compared to lower intensity and frontal head impacts. These findings highlight the potential benefit of model scaling along with player-specific refined WM parcellation in hFEMs for comprehensively evaluating strain responses. Detailed WM parcellation in hFEMs is important for comprehensive injury assessment, enhancing the alignment of hFEMs with imaging studies evaluating changes in WM integrity across segments. The simple and straightforward method presented herein to achieve player-specific strain response is promising for future SHI studies.

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来源期刊
Biomechanics and Modeling in Mechanobiology
Biomechanics and Modeling in Mechanobiology 工程技术-工程:生物医学
CiteScore
7.10
自引率
8.60%
发文量
119
审稿时长
6 months
期刊介绍: Mechanics regulates biological processes at the molecular, cellular, tissue, organ, and organism levels. A goal of this journal is to promote basic and applied research that integrates the expanding knowledge-bases in the allied fields of biomechanics and mechanobiology. Approaches may be experimental, theoretical, or computational; they may address phenomena at the nano, micro, or macrolevels. Of particular interest are investigations that (1) quantify the mechanical environment in which cells and matrix function in health, disease, or injury, (2) identify and quantify mechanosensitive responses and their mechanisms, (3) detail inter-relations between mechanics and biological processes such as growth, remodeling, adaptation, and repair, and (4) report discoveries that advance therapeutic and diagnostic procedures. Especially encouraged are analytical and computational models based on solid mechanics, fluid mechanics, or thermomechanics, and their interactions; also encouraged are reports of new experimental methods that expand measurement capabilities and new mathematical methods that facilitate analysis.
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