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Varying widths of bandage, e.g., 8 cm, 10 cm and 12 cm, were used according to the width of the limb.
In their model, the width of the limb is constrained by elastic fibers connecting between the anterior and posterior boundaries to maintain the realistic limb shape.
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Figure 9 Speed and width distributions of the limb CMEs from cycle 23 (left) and 24 (right).
Line Width box: Set the width of the line.
25 To ensure an accurate reading, the cuff was selected so that its width was 40% of the limb diameter.
Limb volume was determined by calculating the product of the measured length, width, and height of the limb (average ± SD, 8 rats/group).
Non-invasive arterial pressure was assessed through oscillometric method with a Veterinary Digital Blood Pressure Device and a cuff with a width of 40%% limb circumference, positioned on the middle third of the right radius.
The following parameters were analyzed: the number of capillary loops per millimeter, the vascular deletion score, the number of enlarged loops (over four times the normal afferent, transition, and efferent limbs width), and the number of giant capillary loops (10 or more times the normal width of capillary limbs).
The results can be summarized as the following three points: First, the aspect ratio of the limb morphology, i.e., the ratio of limb bud length to limb bud width, is determined by the spatial pattern of volume source realized by cell proliferation in the mesenchyme.
Arrow indicates stenosis of the limb.
Arrows indicate stenosis of the limb.
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