Experimental and histological evaluation of different clamp technique for pulmonary artery

Author:

Chiba Yoshiki1ORCID,Takahashi Yuki1,Takase Yoshiaki1,Tsuruta Kodai1,Maki Ryunosuke1,Miyajima Masahiro1,Ohnishi Hirofumi2,Watanabe Atsushi1ORCID

Affiliation:

1. Department of Thoracic Surgery, Sapporo Medical University School of Medicine and Hospital , Sapporo, Japan

2. Department of Basic Medical Science and Department of Public Health, Sapporo Medical University , Sapporo, Japan

Abstract

Abstract OBJECTIVES The double-loop technique has been used in our clinical settings for pulmonary arterioplasty and/or injured artery repair during thoracoscopic anatomical lung resection. We evaluated the pressure resistance capacity and intimal load to determine the effectiveness and safety of the double-loop technique. METHODS The double-loop technique, DeBakey clamp, Fogarty clamp, endovascular clips and vessel loop technique were evaluated. During an experimental study, a polyvinyl alcohol main pulmonary artery model, manometer and in-deflation device were used to measure the burst pressure. The maximum clamp pressure was measured using a pressure-measuring film. Each measurement was performed 10 times. During the histological study, we measured the burst pressure and evaluated the intimal damage of the human pulmonary artery associated with the double-loop technique and DeBakey clamp. RESULTS The experimental burst pressure (mmHg) and maximum clamp pressure (MPa) between the double-loop technique and DeBakey at the third notch were not significantly different (24.6 ± 2.8 and 21.8 ± 2.8, P = 0.094; 1.54 ± 0.12 and 1.49 ± 0.12, P = 0.954). During the histological study, the burst pressures of the double-loop technique and DeBakey at the third notch were also not significantly different (P = 0.754). Furthermore, the double-loop technique resulted in only intimal deformation in each five samples. CONCLUSIONS The double-loop technique is feasible for thoracoscopic anatomical lung resection because it has similar pressure resistance capacity and intimal load as DeBakey at the 3rd notch.

Publisher

Oxford University Press (OUP)

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