Small Animal Laparoscopy and Thoracoscopy. Группа авторов

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Small Animal Laparoscopy and Thoracoscopy - Группа авторов


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      118 118 Hamza, M.A., Schneider, B.E., White, P.F. et al. (2005). Heated and humidified insufflation during laparoscopic gastric bypass surgery: effect on temperature, postoperative pain, and recovery outcomes. J. Laparoendosc. Adv. Surg. Tech. 15: 6–12.

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      122 122 Farley, D.R., Greenlee, S.M., Larson, D.R. et al. (2004). Double‐blind, prospective, randomized study of warmed, humidified carbon dioxide insufflation vs standard carbon dioxide for patients undergoing laparoscopic cholecystectomy. Arch. Surg. 139: 739–744.

      123 123 Sammour, T., Kahokehr, A., and Hill, A.G. (2008). Meta‐analysis of the effect of warm humidified insufflation on pain after laparoscopy. Br. J. Surg. 95: 950–956.

      124 124 Nguyen, N.T., Furdui, G., Fleming, N.W. et al. (2002). Effect of heated and humidified carbon dioxide gas on core temperature and postoperative pain: a randomized trial. Surg. Endosc. 16: 1050–1054.

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      126 126 Scott, J.E., Singh, A., Valverde, A. et al. (2018). Effect of pneumoperitoneum with warmed humidified or standard‐temperature carbon dioxide during laparoscopy on core body temperature, cardiorespiratory and thromboelastography variables, systemic inflammation, peritoneal response, and signs of postoperative pain in healthy mature dogs. Am. J. Vet. Res. 79: 1321–1334.

      127 127 Birch, D.W., Manouchehri, N., Shi, X. et al. (2011). Heated CO2 with or without humidification for minimally invasive abdominal surgery. Cochrane Database Syst. Rev. 1: CD007821.

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      130 130 Wilson, D.V., Evans, A.T., Carpenter, R.A. et al. (2004). The effect of four anesthetic protocols on splenic size in dogs. Vet. Anaesth. Analg. 31: 102–108.

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      135 135 Hutchins, J.L., Kesha, R., Blanco, F. et al. (2016). Ultrasound‐guided subcostal transversus abdominis plane blocks with liposomal bupivacaine vs non‐liposomal bupivacaine for postoperative pain control after laparoscopic hand‐assisted donor nephrectomy: a prospective randomized observer‐blinded study. Anaesthesia 71: 930–937.

      136 136 Stokes, A.L., Adhikary, S.D., Quintili, A. et al. (2017). Liposomal bupivacaine use in transversus abdominis plane blocks reduces pain and postoperative intravenous opioid requirement after colorectal surgery. Dis. Colon Rectum 60: 170–177.

      137 137 Guerra, L., Philip, S., Lax, E.A. et al. (2019). Transversus abdominis plane blocks in laparoscopic colorectal surgery: better pain control and patient outcomes with liposomal bupivacaine than bupivacaine. Am. Surg. 85: 1013–1016.

      138 138 Vegfors, M., Engborg, L., and Gupta, A. (1994). Changes in end‐tidal carbon dioxide during gynecologic laparoscopy: spontaneous versus controlled ventilation. J. Clin. Anesth. 6: 199–203.

      139 139 Di Bella, C., Lacitignola, L., Grasso, S. et al. (2018). An alveolar recruitment maneuver followed by positive end‐expiratory pressure improves lung function in healthy dogs undergoing laparoscopy. Vet. Anaesth. Analg. 45: 618–629.

      140 140 Atashkhoei, S., Yavari, N., Zarrintan, M. et al. (2020). Effect of different levels of positive end‐expiratory pressure (PEEP) on respiratory status during gynecologic laparoscopy. Anesth. Pain Med. 10: e100075.

      141 141 Choi, E.‐S., Oh, A.‐Y., In, C.‐B. et al. (2017). Effects of recruitment manoeuvre on perioperative pulmonary complications in patients undergoing robotic assisted radical prostatectomy: a randomized single‐blinded trial. PLoS One 12: e0183311.

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