Reprint

Musculoskeletal Research: Biomechanics and Biomaterials for the Treatment of Orthopedic Diseases

Edited by
February 2023
260 pages
  • ISBN978-3-0365-6844-7 (Hardback)
  • ISBN978-3-0365-6845-4 (PDF)

This book is a reprint of the Special Issue Musculoskeletal Research: Biomechanics and Biomaterials for the Treatment of Orthopedic Diseases that was published in

Biology & Life Sciences
Chemistry & Materials Science
Computer Science & Mathematics
Engineering
Environmental & Earth Sciences
Physical Sciences
Summary

Musculoskeletal research deals with the effects of the orthopedic treatment of pathologies on the biomechanics of the affected areas and on the musculoskeletal system. Biomechanical measurement methods enable the quantitative determination of these influences and allow for an assessment of their extent and size for the patient (in vivo). The range of examination methods is particularly wide in this field of musculoskeletal research. On the one hand, in vitro examinations under laboratory conditions on simplified models, such as artificial bones or specimens from donors, will be implemented. With the help of these models, for example, new biomaterials or implants for the treatment of fractures are often examined for their primary stability or the influence of a joint replacement on the kinematics. In contrast to experimental in vitro studies, numerical methods will be increasingly applied to analyze a large number of implant configurations and loading scenarios. With the method of clinical motion analysis, a comprehensive view of the musculoskeletal system is performed directly in vivo on the patient. For example, it allows for the monitoring and control of therapeutic interventions. These are just a few examples from the field of musculoskeletal research and its methods. They all have the common goal of increasing patient safety. This Special Issue intends to provide the reader with an exciting overview of current research in the field of biomechanical investigations for the treatment of musculoskeletal diseases.

Format
  • Hardback
License
© 2022 by the authors; CC BY-NC-ND license
Keywords
motion analysis; kinematics, repeatability; lower extremity; optical infrared camera motion capturing system; proximal femoral varization osteotomy; blade plate; screw side plate; cervical spine surgery; allograft spacer; subsidence; finite element model; knee osteoarthrosis; surgery; posturography; postural subsystems; pain; quality of life; glycogenosis type II; acid maltase deficiency; enzyme replacement therapy; posturography; balance; cervical spine surgery; allograft spacer; lateral mass; pedicle screws; finite element model; leg alignment; unilateral hip osteoarthritis; gait analysis; joint loading; external joint moments; reliability; model-based RSA; elementary geometrical shape models; accuracy; hip arthroplasty; migration; gonarthritis; meniscus; articular cartilage; biomechanical testing; mapping; indentation; instantaneous modulus; tissue biomechanics; pedicle screws; partial threading; fatigue life; biomechanical analysis; spinal fixation; knee joint kinematics; wear bearing; rolling-sliding mechanism; test bench; cement-in-cement; revision; aging cement; joint arthroplasty; cement; bending strength; joint replacement; hip joint; range of motion; impingement; TKA; wear simulator; ISO standard; FEM; finite element; supracondylar humeral fracture; biomechanical study; sagittal pinning; Kirschner wires; digital templating; short-stem; lateral view; femoral torsion; hip deformity; femoroacetabular impingement (FAI); gait analysis; range of motion; heel strike; toe off; carbon dioxide lavage; pulsatile lavage; joint arthroplasty; bone preparation; cement; total knee arthroplasty; total hip arthroplasty; polyethylene wear; roentgen stereophotogrammetric analysis; total hip arthroplasty; precision; accuracy; pelvic orientation; n/a