近赤外線装置を用いた副甲状腺の自家蛍光観察pde-neo®とFLUOBEAM 800®の比較
近赤外線装置を用いた副甲状腺の自家蛍光観察は,無侵襲で簡便に副甲状腺の探索や確認ができ,甲状腺手術あるいは副甲状腺手術に有用である。今回われわれは,副甲状腺の自家蛍光が観察可能な既製の2種類の近赤外線装置pde-neo®(浜松ホトニクス)/FLUOBEAM 800®(FLUOPTICS)を同一症例で使用し,性能の比較を行った。両機器ともに副甲状腺の自家蛍光は甲状腺より高く,両者の間で副甲状腺/甲状腺の蛍光輝度比に差はなかった。機器の特徴を比較した結果,切除組織からの自家移植目的での副甲状腺の探索にはpde-neo®が,術野における副甲状腺の探索にはFLUOBEAM 800®が優れていると思われ...
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Published in | 頭頸部外科 Vol. 30; no. 3; pp. 277 - 283 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | Japanese |
Published |
特定非営利活動法人 日本頭頸部外科学会
2020
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Subjects | |
Online Access | Get full text |
ISSN | 1349-581X 1884-474X |
DOI | 10.5106/jjshns.30.277 |
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Abstract | 近赤外線装置を用いた副甲状腺の自家蛍光観察は,無侵襲で簡便に副甲状腺の探索や確認ができ,甲状腺手術あるいは副甲状腺手術に有用である。今回われわれは,副甲状腺の自家蛍光が観察可能な既製の2種類の近赤外線装置pde-neo®(浜松ホトニクス)/FLUOBEAM 800®(FLUOPTICS)を同一症例で使用し,性能の比較を行った。両機器ともに副甲状腺の自家蛍光は甲状腺より高く,両者の間で副甲状腺/甲状腺の蛍光輝度比に差はなかった。機器の特徴を比較した結果,切除組織からの自家移植目的での副甲状腺の探索にはpde-neo®が,術野における副甲状腺の探索にはFLUOBEAM 800®が優れていると思われた。 |
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AbstractList | 近赤外線装置を用いた副甲状腺の自家蛍光観察は,無侵襲で簡便に副甲状腺の探索や確認ができ,甲状腺手術あるいは副甲状腺手術に有用である。今回われわれは,副甲状腺の自家蛍光が観察可能な既製の2種類の近赤外線装置pde-neo®(浜松ホトニクス)/FLUOBEAM 800®(FLUOPTICS)を同一症例で使用し,性能の比較を行った。両機器ともに副甲状腺の自家蛍光は甲状腺より高く,両者の間で副甲状腺/甲状腺の蛍光輝度比に差はなかった。機器の特徴を比較した結果,切除組織からの自家移植目的での副甲状腺の探索にはpde-neo®が,術野における副甲状腺の探索にはFLUOBEAM 800®が優れていると思われた。 |
Author | 竹内, 美香 正道, 隆介 植木, 雄志 太田, 久幸 堀井, 新 山崎, 恵介 高橋, 剛史 |
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References | 5) Shinden Y, Nakajo A, Arima H, et al: Intraoperative identification of the parathyroid gland with a fluorescence detection system. World J Surg 41:1506-1512, 2017. 11) Patel HP, Chadwick DR, Harrison BJ, et al: Systematic Review of Intravenous Methylene Blue in Parathyroid Surgery. Br J Surg 99:1345-1351, 2012. 16) McWade MA, Sanders ME, Broome JT, et al: Establishing the clinical utility of autofluorescence spectroscopy for parathyroid detection. Surgery 159:193-203, 2016. 4) Paras C, Keller M, White L, et al: Near-infrared autofluorescence for the detection of parathyroid glands. J Biomed Opt 16:67012-67014, 2011. 15) Kahramangil B, Dip F, Benmiloud F, et al: Detection of parathyroid autofluorescence using near-infrared imaging: a multicenter analysis of concordance between different surgeons. Ann Surg Oncol 1-6, 2018. 3) Zarebczan B, Chen H: Influence of surgical volume on operative failures for hyperparathyroidism. Adv Surg 45:237-248, 2011. 14) Kim SW, Song SH, Lee HS, et al: Intraoperative real-time localization of normal parathyroid glands with autofluorescence imaging. J Clin Endocrinol Metab 101:4646-4652, 2016. 8) Kose E, Rudin AV, Kaharamangil B, et al: Autofluorescence Imaging of Parathyroid Glands: An Assessment of Potential Indications. Surgery 167:173-179, 2020. 9) De Leeuw F, Breuskin I, Abbaci M, et al: Intraoperative Near-infrared Imaging for Parathyroid Gland Identification by Auto-fluorescence: A Feasibility Study. World J Surg 40:2131-2138, 2016. 13) McWade MA, Paras C, White LM, et al: Label-free intraoperative parathyroid localization with near-infrared autofluorescence imaging. J Clin Endocrinol Metab 99:4574-4580, 2014. 6) Squires MH, Jarvis R, Shirley LA, et al: Intraoperative Parathyroid Autofluorescence Detection in Patients with Primary Hyperparathyroidism. Ann Surg Oncol 26:1142-1148, 2019. 7) Idogawa H, Sakashita T, Homma A: A novel study for fluorescence patterns of the parathyroid glands during surgery using a fluorescence spectroscopy system [published online ahead of print, 2020 Feb 20]. Eur Arch Otorhinolaryngol. 1) Sosa JA, Bowman HM, Tielsch JM, et al: The importance of surgeon experience for clinical and economic outcomes from thyroidectomy. Ann Surg 228:320-330, 1998. 2) Erbil Y, Barbaros U, Ozbey N, et al: Risk factors of incidental parathyroidectomy after thyroidectomy for benign thyroid disorders. Int J Surg 7:58-61, 2009. 12) Suzuki T, Numata T, Shibuya M: Intraoperative photodynamic detection of normal parathyroid glands using 5-aminolevulinic acid. Laryngoscope 121:1462-1466, 2011. 10) Dip F, Falco J, Verna S, et al: Randomized Controlled Trial Comparing White Light with Near-Infrared Autofluorescence for Parathyroid Gland Identification During Total Thyroidectomy. J Am Coll Surg 228:744-751, 2019. |
References_xml | – reference: 11) Patel HP, Chadwick DR, Harrison BJ, et al: Systematic Review of Intravenous Methylene Blue in Parathyroid Surgery. Br J Surg 99:1345-1351, 2012. – reference: 8) Kose E, Rudin AV, Kaharamangil B, et al: Autofluorescence Imaging of Parathyroid Glands: An Assessment of Potential Indications. Surgery 167:173-179, 2020. – reference: 10) Dip F, Falco J, Verna S, et al: Randomized Controlled Trial Comparing White Light with Near-Infrared Autofluorescence for Parathyroid Gland Identification During Total Thyroidectomy. J Am Coll Surg 228:744-751, 2019. – reference: 13) McWade MA, Paras C, White LM, et al: Label-free intraoperative parathyroid localization with near-infrared autofluorescence imaging. J Clin Endocrinol Metab 99:4574-4580, 2014. – reference: 14) Kim SW, Song SH, Lee HS, et al: Intraoperative real-time localization of normal parathyroid glands with autofluorescence imaging. J Clin Endocrinol Metab 101:4646-4652, 2016. – reference: 1) Sosa JA, Bowman HM, Tielsch JM, et al: The importance of surgeon experience for clinical and economic outcomes from thyroidectomy. Ann Surg 228:320-330, 1998. – reference: 3) Zarebczan B, Chen H: Influence of surgical volume on operative failures for hyperparathyroidism. Adv Surg 45:237-248, 2011. – reference: 15) Kahramangil B, Dip F, Benmiloud F, et al: Detection of parathyroid autofluorescence using near-infrared imaging: a multicenter analysis of concordance between different surgeons. Ann Surg Oncol 1-6, 2018. – reference: 7) Idogawa H, Sakashita T, Homma A: A novel study for fluorescence patterns of the parathyroid glands during surgery using a fluorescence spectroscopy system [published online ahead of print, 2020 Feb 20]. Eur Arch Otorhinolaryngol. – reference: 6) Squires MH, Jarvis R, Shirley LA, et al: Intraoperative Parathyroid Autofluorescence Detection in Patients with Primary Hyperparathyroidism. Ann Surg Oncol 26:1142-1148, 2019. – reference: 9) De Leeuw F, Breuskin I, Abbaci M, et al: Intraoperative Near-infrared Imaging for Parathyroid Gland Identification by Auto-fluorescence: A Feasibility Study. World J Surg 40:2131-2138, 2016. – reference: 4) Paras C, Keller M, White L, et al: Near-infrared autofluorescence for the detection of parathyroid glands. J Biomed Opt 16:67012-67014, 2011. – reference: 2) Erbil Y, Barbaros U, Ozbey N, et al: Risk factors of incidental parathyroidectomy after thyroidectomy for benign thyroid disorders. Int J Surg 7:58-61, 2009. – reference: 5) Shinden Y, Nakajo A, Arima H, et al: Intraoperative identification of the parathyroid gland with a fluorescence detection system. World J Surg 41:1506-1512, 2017. – reference: 12) Suzuki T, Numata T, Shibuya M: Intraoperative photodynamic detection of normal parathyroid glands using 5-aminolevulinic acid. Laryngoscope 121:1462-1466, 2011. – reference: 16) McWade MA, Sanders ME, Broome JT, et al: Establishing the clinical utility of autofluorescence spectroscopy for parathyroid detection. Surgery 159:193-203, 2016. |
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SubjectTerms | 副甲状腺 自家蛍光 近赤外線 |
Title | 近赤外線装置を用いた副甲状腺の自家蛍光観察pde-neo®とFLUOBEAM 800®の比較 |
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