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Published on: August 13, 2019
Long-term peroral administration of bitter apricot seeds influences cortical bone microstructure of rabbits
Veronika Kovacova1, Anna Sarocka1, Jana Blahova2
1Department of Zoology and Anthropology, Constantine the Philosopher University, Nitra, Slovak Republic.
Abstract:
Apricot seeds due to the presence of cyanogenic glycoside amygdalin belong to the popular "alternative cancer cures", although anticancer effect of amygdalin remains controversial. This in vivo study points to the effect of long-term peroral administration of bitter apricot seeds on bone microstructure of rabbits since chronic amygdalin toxicity in relation to bone parameters has not been investigated yet. Rabbits (n = 16) were randomly divided into four experimental groups of 4 animals each. Three experimental groups S1, S2 and S3 received commercial feed for rabbits mixed with crushed bitter apricot seeds at doses 60, 300 and 420 mg/kg bw during five months, respectively. The control (C) group received no apricot seeds. The long-term consumption of apricot seeds had no impact on total body weight, femoral weight and femoral length of rabbits. Also, microcomputed tomography (3D analysis) of cortical and trabecular bone tissues did not reveal any significant impact of amygdalin toxicity on relative bone volume, BMD, cortical bone thickness, bone surface, trabecular number, thickness, and their separation. On the other hand, histological (2D) analysis demonstrated evident changes in cortical bone microstructure consistent with a decreased density of secondary osteons in the middle part of substantia compacta due to a replacement of Haversian bone tissue by plexiform bone tissue, vasoconstriction in the primary osteons' vascular canals, Haversian canals, and decreased sizes of secondary osteons in rabbits from S1, S2 and S3 groups. These negative changes are associated with different vascularization and biomechanical properties of cortical bones.
Insights
Long-term consumption of apricot seeds did not affect rabbit body or bone size. However, histological analysis revealed negative changes in cortical bone microstructure, impacting vascularization and biomechanical properties.
Area of Science:
- Biomedical Science
- Toxicology
- Orthopedics
Background:
- Apricot seeds, containing amygdalin, are explored as alternative cancer treatments, though their efficacy is debated.
- Chronic toxicity of amygdalin from apricot seeds on bone health remains uninvestigated.
Purpose of the Study:
- To evaluate the long-term effects of bitter apricot seed consumption on rabbit bone microstructure.
- To assess chronic amygdalin toxicity concerning bone parameters in an in vivo model.
Main Methods:
- Sixteen rabbits were divided into four groups, with three receiving varying doses (60, 300, 420 mg/kg bw) of crushed bitter apricot seeds for five months.
- Bone parameters were analyzed using microcomputed tomography (3D) and histological (2D) examination.
Main Results:
- No significant impact on total body weight, femoral weight, or length was observed.
- 3D analysis showed no changes in bone volume, BMD, cortical thickness, or trabecular properties.
- 2D analysis revealed decreased secondary osteon density, replacement of Haversian bone with plexiform bone, vasoconstriction, and smaller secondary osteons in apricot seed-fed groups.
Conclusions:
- While overall bone size and density were unaffected, long-term apricot seed intake induced detrimental changes in cortical bone microstructure.
- These microstructural alterations suggest potential negative impacts on bone vascularization and biomechanical properties, warranting further investigation.
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