Academic literature on the topic 'Scanning Soft Tissue Injuries Surface Properties Animalia'

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Journal articles on the topic "Scanning Soft Tissue Injuries Surface Properties Animalia"

1

Kim, Kihoon, Hyosung Kim, Sunhee Do, and Hwiyool Kim. "Potential of Aligned Electrospun PLGA/SIS Blended Nanofibrous Membrane for Tendon Tissue Engineering." Polymers 15, no. 10 (2023): 2313. http://dx.doi.org/10.3390/polym15102313.

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Tendons are responsible for transmitting mechanical forces from muscles to bones for body locomotion and joint stability. However, tendons are frequently damaged with high mechanical forces. Various methods have been utilized for repairing damaged tendons, including sutures, soft tissue anchors, and biological grafts. However, tendons experience a higher rate of retear post-surgery due to their low cellularity and vascularity. Surgically sutured tendons are vulnerable to reinjury due to their inferior functionality when compared with native tendons. Surgical treatment using biological grafts a
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2

Bilyakov, A. M., V. V. Franchuk, and O. Ya Vanchuliak. "THE USING OF VIRTOPSIA IN FORENSIC MEDICAL EXAMINATION OF HANGING (literature review)." Medical Science of Ukraine (MSU) 20, no. 4 (2024): 148–55. https://doi.org/10.32345/2664-4738.4.2024.16.

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Background. For the third decade in a row, forensic medical expertise in the world has been introducing and developing the use of virtopsia as a virtual alternative to traditional examination of corpse. It is believed that the combination of postmortem computed tomography (PMCT), postmortem magnetic resonance imaging (PMRI) 3D surface scanning and postmortem angiography is sufficient to replace the traditional autopsy with a virtual one. Yjwever, the practical experience of using virtopsia has revealed both its positive aspects and disadvantages that should be taken into account when using in
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Bilyakov, A. M., V. V. Franchuk, and O. Ya Vanchuliak. "THE USING OF VIRTOPSIA IN FORENSIC MEDICAL EXAMINATION OF HANGING (literature review)." Medical Science of Ukraine (MSU) 20, no. 3 (2024): 132–39. https://doi.org/10.32345/2664-4738.3.2024.15.

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Background. For the third decade in a row, forensic medical expertise in the world has been introducing and developing the use of virtopsia as a virtual alternative to traditional examination of corpse. It is believed that the combination of postmortem computed tomography (PMCT), postmortem magnetic resonance imaging (PMRI) 3D surface scanning and postmortem angiography is sufficient to replace the traditional autopsy with a virtual one. Yjwever, the practical experience of using virtopsia has revealed both its positive aspects and disadvantages that should be taken into account when using in
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4

Chai, W. L., K. Moharamzadeh, I. M. Brook, and R. VanNoort. "A review of histomorphometric analysis techniques for assessing implant-soft tissue interface." January 1, 2011. https://doi.org/10.5281/zenodo.811502.

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The success of dental implant treatment depends on the healing of both hard and soft tissues. While osseointegration provides initial success, the biological seal of the peri-implant soft tissue is crucial for maintaining the long term success of implants. Most studies of the biological seal of peri-implant tissues are based on animal or monolayer cell culture models. To understand the mechanisms of soft tissue attachment and the factors affecting the integrity of the soft tissue around the implants, it is essential to obtain good quality histological sections for microscopic examination. The
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5

Gan, Rong Z., and Shangyuan Jiang. "Surface Motion Changes of Tympanic Membrane Damaged by Blast Waves." Journal of Biomechanical Engineering 141, no. 9 (2019). http://dx.doi.org/10.1115/1.4044052.

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Eardrum or tympanic membrane (TM) is a multilayer soft tissue membrane located at the end of the ear canal to receive sound pressure and transport the sound into the middle ear and cochlea. Recent studies reported that the TM microstructure and mechanical properties varied after the ear was exposed to blast overpressure. However, the impact of such biomechanical changes of the TM on its movement for sound transmission has not been investigated. This paper reports the full-field surface motion of the human TM using the scanning laser Doppler vibrometry in human temporal bones under normal and p
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