Age-related skull fracture patterns in infants after low-height falls

被引:3
|
作者
Ruiz-Maldonado, Tagrid M. [1 ]
Alsanea, Yousef [2 ]
Coats, Brittany [2 ]
机构
[1] Univ Utah, Dept Pediat, Salt Lake City, UT 84112 USA
[2] Univ Utah, Dept Mech Engn, Salt Lake City, UT 84112 USA
关键词
FEET-1ST FREE FALLS; PEDIATRIC SKULL; YOUNG-CHILDREN; HEAD; INJURY; SUTURE; BIOMECHANICS; MECHANISMS; TRAUMA; IMPACT;
D O I
10.1038/s41390-022-02345-9
中图分类号
R72 [儿科学];
学科分类号
100202 ;
摘要
Background Prior research and experience has increased physician understanding of infant skull fracture prediction. However, patterns related to fracture length, nonlinearity, and features of complexity remain poorly understood, and differences across infant age groups have not been previously explored. Methods To determine how infant and low-height fall characteristics influence fracture patterns, we collected data from 231 head CT 3D reconstructions and quantified length and nonlinearity using a custom image processing code. Regression analysis was used to determine the effects of age and fall characteristics on nonlinearity, length, and features of fracture complexity. Results While impact surface had an important role in the number of cracks present in a fracture, younger infants and greater fall heights significantly affected most features of fracture complexity, including suture-to-suture spanning and biparietal involvement. In addition, increasing fracture length with increasing fall height supports trends identified by prior finite-element modeling. Finally, this study yielded results supporting the presence of soft tissue swelling as a function of fracture location rather than impact site. Conclusions Age-related properties of the infant skull confer unique fracture patterns following head impact. Further characterization of these properties, particularly in infants <4 months of age, will improve our understanding of the infant skull's response to trauma. Impact Younger infant age and greater fall heights have significant effects on many features of fracture complexity resulting from low-height falls. Incorporating multiple crack formation and multiple bone involvement into computational models of young infant skull fractures may result in increased biofidelity. Drivers of skull fracture complexity are not well understood, and skull fracture patterns in real-world data across infant age groups have not been previously described. Understanding fracture complexity relative to age in accidental falls will improve the understanding of accidental and abusive head trauma.
引用
收藏
页码:1990 / 1998
页数:9
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