Laparoscopic anatomical resection of liver segment II (S2 segmentectomy) using left lateral section-flip up method is introduced to safely and effectively encircle the Glissonean branch of segment II (G2) and to expose the left hepatic vein (LHV). The left lateral section is completely mobilized and then flipped up. After encircling and clamping the G2 root, indocyanine green is intravenously injected and the demarcation line is clearly confirmed by near infrared fluorescence imaging. After exposure of the LHV from the root to this intersegmental plane between segments II/III, residual parenchymal resection is performed using the clamp crushing method. There are two difficulties concerning S2 segmentectomy. The first is encirclement of the G2 root without interfering with the G3. Compared with the conventional front view of the umbilical portion, the view behind the left lateral section contribute to easy confirmation and direct encircle of the G2 root without dividing the G3 and injuring LHV on the same plane. The second difficulty is that the boundary of the visible liver surface between segments II/III does not match the direction of the LHV. This can cause confusion to the operator aiming to perform precise inner parenchymal resection. Our procedure allows easy access to the LHV root and exposure of the peripheral directing hepatic vein. Hepatic vein-guided approaches will likely be helpful in precise performance of inner parts of liver resection.
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Med Biol Eng Comput
January 2025
Biomedical Engineering, Bahçeşehir University, Çırağan Caddesi Osmanpaşa Mektebi Sokak No: 4-6 Beşiktaş, İstanbul, 34353, Turkey.
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College of Veterinary Medicine, Hixson- Lied Small Animal Hospital, Iowa State University, Ames, Iowa, USA.
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Department of Chemistry and Biochemistry, Florida International University, Miami, FL 33199, USA.
Two convex polyhedra that markedly resemble the head of the flatback sea turtle hatchling are identified. The first example is a zygomorphic tetragonal dodecahedron, while the other, an even better matching structure, is a related tetradecahedron, herein speculated to arise from this particular dodecahedron via known mechanisms gleaned from studies of the behavior of foams. A segmented, biomorphic, convex polyhedral model to address cephalic topology is thus presented stemming from solid geometry, anatomical observations, and a recently computed densest local packing arrangement of fifteen slightly oblate spheroids in which fourteen oblate spheroids surround a central such spheroid.
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Nat Commun
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Center for Mind/Brain Science, University of Trento, Rovereto, (TN), Italy.
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