Fulcrum to Generate Maximum Extension of the Spine and Hip – Proposing A New Strategy using EOS® Imaging for Patient-Specific Assessment of Degenerated Lumbar Spines

Spine ◽  
2021 ◽  
Vol Publish Ahead of Print ◽  
Author(s):  
Hwee Weng Dennis Hey ◽  
Hui Wen Tay ◽  
Gordon Chengyuan Wong ◽  
Kimberly-Anne Tan ◽  
Eugene Tze-Chun Lau ◽  
...  
2013 ◽  
Vol 81 (2) ◽  
pp. 212-215 ◽  
Author(s):  
Nikolaos Kontopodis ◽  
Efstratios Georgakarakos ◽  
Eleni Metaxa ◽  
Konstantinos Pagonidis ◽  
Yannis Papaharilaou ◽  
...  

2018 ◽  
Vol 15 (138) ◽  
pp. 20170829 ◽  
Author(s):  
C. E. Lavecchia ◽  
D. M. Espino ◽  
K. M. Moerman ◽  
K. M. Tse ◽  
D. Robinson ◽  
...  

Low back pain is a major cause of disability and requires the development of new devices to treat pathologies and improve prognosis following surgery. Understanding the effects of new devices on the biomechanics of the spine is crucial in the development of new effective and functional devices. The aim of this study was to develop a preliminary parametric, scalable and anatomically accurate finite-element model of the lumbar spine allowing for the evaluation of the performance of spinal devices. The principal anatomical surfaces of the lumbar spine were first identified, and then accurately fitted from a previous model supplied by S14 Implants (Bordeaux, France). Finally, the reconstructed model was defined according to 17 parameters which are used to scale the model according to patient dimensions. The developed model, available as a toolbox named the lumbar model generator, enables generating a population of models using subject-specific dimensions obtained from data scans or averaged dimensions evaluated from the correlation analysis. This toolbox allows patient-specific assessment, taking into account individual morphological variation. The models have applications in the design process of new devices, evaluating the biomechanics of the spine and helping clinicians when deciding on treatment strategies.


2018 ◽  
Vol 123 (Suppl_1) ◽  
Author(s):  
Huidan (Whitney) Yu ◽  
Anurag Deb ◽  
Monsurul Khan ◽  
Rou Chen ◽  
Yang Yang ◽  
...  

2018 ◽  
Vol 68 (3) ◽  
pp. e64-e65
Author(s):  
Alan P. Sawchuk ◽  
Monsurul Khan ◽  
Anurag Deb ◽  
Raghu L. Motaganahalli ◽  
Xin Fang ◽  
...  

2017 ◽  
Vol 153 (4) ◽  
pp. S52-S62.e3 ◽  
Author(s):  
Naoyuki Kimura ◽  
Masanori Nakamura ◽  
Kenji Komiya ◽  
Satoshi Nishi ◽  
Atsushi Yamaguchi ◽  
...  

Author(s):  
Maximilian J. Grill ◽  
Jonas F. Eichinger ◽  
Jonas Koban ◽  
Christoph Meier ◽  
Oliver Lieleg ◽  
...  

This article presents a novel computational model to study the selective filtering of biological hydrogels due to the surface charge and size of diffusing particles. It is the first model that includes the random three-dimensional fibre orientation and connectivity of the biopolymer network and that accounts for elastic deformations of the fibres by means of beam theory. As a key component of the model, novel formulations are proposed both for the electrostatic and repulsive steric interactions between a spherical particle and a beam. In addition to providing a thorough validation of the model, the presented computational studies yield new insights into the underlying mechanisms of hindered particle mobility, especially regarding the influence of the aforementioned aspects that are unique to this model. It is found that the precise distribution of fibre and thus charge agglomerations in the network have a crucial influence on the mobility of oppositely charged particles and gives rise to distinct motion patterns. Considering the high practical significance for instance with respect to targeted drug release or infection defence, the provided proof of concept motivates further advances of the model towards a truly predictive computational tool that allows a case- and patient-specific assessment for real (biological) systems.


2010 ◽  
Vol 123-125 ◽  
pp. 315-318 ◽  
Author(s):  
Sriram Tammareddi ◽  
Qing Li

Coronary stents have been more and more widely used in clinic over the past decade. There have been a large number of stents made of different biocompatible materials available commercially in the market. It is however unclear which is more suitable to specific patients. This raises a major concern whether the choice of stents could be assessed before a delivery surgery. This paper aims to provide a computational approach for evaluating the effect of stent materials on biomechanical outcomes of the deployments of stents in different patient. It will review the typical biomaterials being used for coronary stents, seeking to qualitatively assess them for use as coronary stents. Non-linear explicit finite element (FE) procedure is carried out using the Palmaz-Schatz stent geometry to quantitatively predict the effect of mechanical properties of these biomaterials on stent and coronary artery behavior during stent deployment. A quantitative comparison is made for exploring the effect of different materials on the deployment of stents. The study is considered significant in understanding the role how stent materials affect biomechanical responses to the coronary stenting. It provides a new methodology to promote a patient-specific assessment before surgery.


Heart ◽  
2016 ◽  
Vol 102 (Suppl 6) ◽  
pp. A126-A127
Author(s):  
Pouya Youssefi ◽  
Alberto Gomez ◽  
Taigang He ◽  
Lisa Anderson ◽  
Nick Bunce ◽  
...  

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