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This study seeks to identify the ability of shorter osteochondral allografts (OCAs) to resist displacement/failure. Additionally, this study seeks to evaluate the effect of pulsatile lavage (PL) on the biomechanical stability of the OCA. Fifteen-millimeter diameter, human cadaveric, OCAs of 4, 7, and 10 mm in depth were harvested for comparison of resistance to compressive and tensile loads. For each group, seven specimens were subjected to tensile loads and three specimens subjected to compressive loads until failure (pullout or subsidence). An additional study group of 10 pulsatile-lavaged OCAs of 15 mm in diameter and 7 mm in depth were introduced for comparison to the original 7 mm depth OCA group. The average tensile forces for failure for the 4, 7, and 10 mm plugs were 23.74, 199.57, and 197.69 N, respectively ( = 1.5 × 10). After post hoc analysis of the tensile groups, significant differences in the mean tensile force to failure were appreciated between the 4 and 7 mm groups ( = 4.12 × 10) and the 4 and 10 mm groups ( = 1.78 × 10) but not between the 7 and 10 mm groups ( = 0.9601). There were no significant differences between the average tensile forces resulting in failure for the 7 mm and 7 mm PL groups (199.57 and 205.2 N, = 0.90) or compressive forces to failure, respectively (733.6 and 656 N, = 0.7062). For OCAs of 15 mm in diameter, a commonly used size in practice, plugs of 7 mm in depth showed comparable resistance to pull out and subsidence as 10 mm plugs and significantly better resistance to pull out than 4 mm grafts. PL of allografts prior to insertion did not take away from the structural integrity and stability of the plug.
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http://dx.doi.org/10.1055/s-0038-1676501 | DOI Listing |
Mol Biol Rep
September 2025
College of Animal Science and Technology, Shihezi University, Shihezi, 832003, China.
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School of Pharmacy, Heilongjiang University of Chinese Medicine, NO 24 Heping Road, 150040, Harbin, P. R. China.
Lysosome-dependent cell death (LDCD) is a regulated form of cell death initiated by increased lysosomal membrane permeability, leading to the cytoplasmic release of lysosomal enzymes and subsequent cellular damage. Molecular mechanisms controlling LDCD include lysosomal membrane instability and lysosomal enzyme release, which together lead to cell damage. A more profound comprehension of these underlying mechanisms may reveal new therapeutic targets for diseases associated with lysosomal dysfunction.
View Article and Find Full Text PDFClin Oral Investig
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Department of Innovative Technologies in Medicine & Dentistry, "G. D'Annunzio" University, Via Dei Vestini 31, Chieti, Italy.
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Key Laboratory of Tea Science of Ministry of Education and Key Laboratory for Evaluation and Utilization of Gene Resources of Horticultural Crops, Hunan Agricultural University, Changsha, China.
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View Article and Find Full Text PDFDeath Stud
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College of Education, Psychology and Social Work, Flinders University, Australia.
Although there was a rapidly growing body of literature on human-animal relationships during the COVID-19 pandemic, little attention was given to accounts of animal death through and beyond COVID-19. This paper reports on two connected studies undertaken after the end of COVID-19 restrictions in the United Kingdom, here focusing specifically on animal companion loss. From an online survey of 667 participants, 354 responded to an open-ended question about the loss of an animal.
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