Sharp Andrew A, Ortega Alicia M, Restrepo Diego, Curran-Everett Douglas, Gall Ken
Department of Anatomy, Southern Illinois University School of Medicine, Carbondale, IL 62901, USA.
IEEE Trans Biomed Eng. 2009 Jan;56(1):45-53. doi: 10.1109/TBME.2008.2003261.
Substantial advancement in the understanding of the neuronal basis of behavior and the treatment of neurological disorders has been achieved via the implantation of various devices into the brain. To design and optimize the next generation of neuronal implants while striving to minimize tissue damage, it is necessary to understand the mechanics of probe insertion at relevant length scales. Unfortunately, a broad-based understanding of brain-implant interactions at the necessary micrometer scales is largely missing. This paper presents a generalizable description of the micrometer-scale penetration mechanics and material properties of mouse brain tissue in vivo. Cylindrical stainless steel probes were inserted into the cerebral cortex and olfactory bulb of mice. The effects of probe size, probe geometry, insertion rate, insertion location, animal age, and the presence of the dura and pia on the resulting forces were measured continuously throughout probe insertion and removal. Material properties (modulus, cutting force, and frictional force) were extracted using mechanical analysis. The use of rigid, incompressible, cylindrical probes allows for a general understanding of how probe design and insertion methods influence the penetration mechanics of brain tissue in vivo that can be applied to the quantitative design of most future implantable devices.
通过将各种装置植入大脑,在行为的神经元基础理解和神经疾病治疗方面取得了重大进展。为了设计和优化下一代神经元植入物,同时努力将组织损伤降至最低,有必要了解在相关长度尺度下探针插入的力学原理。不幸的是,在必要的微米尺度上对脑-植入物相互作用的广泛理解在很大程度上仍然缺失。本文给出了对小鼠脑组织在体内微米尺度穿透力学和材料特性的可推广描述。将圆柱形不锈钢探针插入小鼠的大脑皮层和嗅球。在探针插入和拔出的整个过程中,持续测量探针尺寸、探针几何形状、插入速率、插入位置、动物年龄以及硬脑膜和软脑膜的存在对所产生力的影响。使用力学分析提取材料特性(模量、切割力和摩擦力)。使用刚性、不可压缩的圆柱形探针能够对探针设计和插入方法如何影响脑组织在体内的穿透力学有一个总体认识,这可应用于大多数未来可植入装置的定量设计。