Assessment of glomerular filtration rate with dynamic computed tomography in normal Beagle dogs
The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior...
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Published in | Journal of veterinary science (Suwŏn-si, Korea) Vol. 12; no. 4; pp. 393 - 399 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Korea (South)
대한수의학회
01.12.2011
The Korean Society of Veterinary Science |
Subjects | |
Online Access | Get full text |
ISSN | 1229-845X 1976-555X 1976-555X |
DOI | 10.4142/jvs.2011.12.4.393 |
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Abstract | The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 ± 0.04 and 0.57 ± 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 ± 0.25 mL/min/kg and the whole kidney GFR was 33.43 ± 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes. |
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AbstractList | The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 +/- 0.04 and 0.57 +/- 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 +/- 0.25 mL/min/kg and the whole kidney GFR was 33.43 +/- 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes. The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 ± 0.04 and 0.57 ± 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 ± 0.25 mL/min/kg and the whole kidney GFR was 33.43 ± 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes. The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 ± 0.04 and 0.57 ± 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 ± 0.25 mL/min/kg and the whole kidney GFR was 33.43 ± 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes. KCI Citation Count: 9 The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 ± 0.04 and 0.57 ± 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 ± 0.25 mL/min/kg and the whole kidney GFR was 33.43 ± 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes.The objective of our study was to determine individual and global glomerular filtration rates (GFRs) using dynamic renal computed tomography (CT) in Beagle dogs. Twenty-four healthy Beagle dogs were included in the experiment. Anesthesia was induced in all dogs by using propofol and isoflurane prior to CT examination. A single slice of the kidney was sequentially scanned after a bolus intravenous injection of contrast material (iohexol, 1 mL/kg, 300 mgI/mL). Time attenuation curves were created and contrast clearance per unit volume was calculated using a Patlak plot analysis. The CT-GFR was then determined based on the conversion of contrast clearance per unit volume to contrast clearance per body weight. At the renal hilum, CT-GFR values per unit renal volume (mL/min/mL) of the right and left kidneys were 0.69 ± 0.04 and 0.57 ± 0.05, respectively. No significant differences were found between the weight-adjusted CT-GFRs in either kidney at the same renal hilum (p = 0.747). The average global GFR was 4.21 ± 0.25 mL/min/kg and the whole kidney GFR was 33.43 ± 9.20 mL/min. CT-GFR techniques could be a practical way to separately measure GFR in each kidney for clinical and research purposes. |
Author | Chang, J.H., Seoul National University, Seoul, Republic of Korea Yoon, J.H., Seoul National University, Seoul, Republic of Korea Chang, D.W., Chungbuk National University, Cheongju, Republic of Korea Lee, H.C., Gyeongsang National University, Jinju, Republic of Korea Lee, Y.W., Chungnam National University, Daejeon, Republic of Korea Jung, J.H., Seoul National University, Seoul, Republic of Korea Choi, M.C., Seoul National University, Seoul, Republic of Korea Choi, H.J., Chungnam National University, Daejeon, Republic of Korea Kim, S.J., Seoul National University, Seoul, Republic of Korea |
AuthorAffiliation | 2 Department of Nuclear Medicine, College of Medicine and Institute of Radiation Medicine, Medical Research Center, Seoul National University, Seoul 110-460, Korea 4 Department of Medical Imaging, College of Veterinary Medicine, Chungbuk National University, Cheongju 361-763, Korea 5 Department of Diagnostic Imaging, College of Veterinary Medicine, Chungnam National University, Daejeon 305-764, Korea 1 Department of Medical Imaging, College of Veterinary Medicine, and Research Institute for Veterinary Science, Seoul National University, Seoul 151-742, Korea 3 Department of Medical Imaging, College of Veterinary Medicine, Gyeongsang National University, Jinju 600-701, Korea |
AuthorAffiliation_xml | – name: 1 Department of Medical Imaging, College of Veterinary Medicine, and Research Institute for Veterinary Science, Seoul National University, Seoul 151-742, Korea – name: 4 Department of Medical Imaging, College of Veterinary Medicine, Chungbuk National University, Cheongju 361-763, Korea – name: 5 Department of Diagnostic Imaging, College of Veterinary Medicine, Chungnam National University, Daejeon 305-764, Korea – name: 3 Department of Medical Imaging, College of Veterinary Medicine, Gyeongsang National University, Jinju 600-701, Korea – name: 2 Department of Nuclear Medicine, College of Medicine and Institute of Radiation Medicine, Medical Research Center, Seoul National University, Seoul 110-460, Korea |
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BackLink | https://www.ncbi.nlm.nih.gov/pubmed/22122906$$D View this record in MEDLINE/PubMed https://www.kci.go.kr/kciportal/ci/sereArticleSearch/ciSereArtiView.kci?sereArticleSearchBean.artiId=ART001613046$$DAccess content in National Research Foundation of Korea (NRF) |
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CitedBy_id | crossref_primary_10_1016_j_jvc_2016_09_004 crossref_primary_10_1292_jvms_15_0199 crossref_primary_10_2460_javma_250_6_681 crossref_primary_10_1007_s00261_020_02826_7 crossref_primary_10_1371_journal_pone_0237443 crossref_primary_10_1177_03915603241244935 crossref_primary_10_1053_j_semnuclmed_2013_08_005 crossref_primary_10_2460_ajvr_80_4_416 crossref_primary_10_4142_jvs_2020_21_e58 crossref_primary_10_2460_ajvr_79_12_1298 crossref_primary_10_1136_vetreccr_2018_000753 crossref_primary_10_1371_journal_pone_0171235 crossref_primary_10_1111_jsap_12387 crossref_primary_10_1111_vru_13024 crossref_primary_10_2460_ajvr_21_03_0041 |
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SubjectTerms | anesthesia Animals Beagle body weight CHIEN computed tomography DOGS Dogs - physiology Female glomerular filtration rate Glomerular Filtration Rate - physiology intravenous injection isoflurane kidneys Male Original PERRO Reference Values Tomography, X-Ray Computed - methods Tomography, X-Ray Computed - veterinary veterinary medicine 수의학 |
Title | Assessment of glomerular filtration rate with dynamic computed tomography in normal Beagle dogs |
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