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Erschienen in: European Journal of Nuclear Medicine and Molecular Imaging 3/2008

01.03.2008 | Original article

Effects of anesthetic agents on cellular 123I-MIBG transport and in vivo 123I-MIBG biodistribution

verfasst von: Bong-Ho Ko, Jin-Young Paik, Kyung-Ho Jung, Jun-Sang Bae, Eun Jung Lee, Yearn Seong Choe, Byung-Tae Kim, Kyung-Han Lee

Erschienen in: European Journal of Nuclear Medicine and Molecular Imaging | Ausgabe 3/2008

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Abstract

Objectives

Small animal imaging with meta-iodobenzylguanidine (MIBG) allows characterization of animal models, optimization of tumor treatment strategies, and monitoring of gene expression. Anesthetic agents, however, can affect norepinephrine (NE) transport and systemic sympathetic activity. We thus elucidated the effects of anesthetic agents on MIBG transport and biodistribution.

Methods

SK-N-SH neuroblastoma and PC-12 pheochromocytoma cells were measured for 123I-MIBG uptake after treatment with ketamine (Ke), xylazine (Xy), Ke/Xy, or pentobarbital (Pb). NE transporters were assessed by Western blots. Normal ICR mice and PC-12 tumor-bearing mice were injected with 123I-MIBG 10 min after anesthesia with Ke/Xy, Ke, Xy, or Pb. Plasma NE levels and MIBG biodistribution were assessed.

Results

Cellular 123I-MIBG uptake was dose-dependently inhibited by Ke and Xy but not by Pb. Treatment for 2 h with 300 μM Ke, Xy, and Ke/Xy decreased uptake to 46.0 ± 1.6, 24.8 ± 1.5, and 18.3 ± 1.6% of controls. This effect was completely reversed by fresh media, and there was no change in NE transporter levels. In contrast, mice anesthetized with Ke/Xy showed no decrease of MIBG uptake in target organs. Instead, uptakes and organ-to-blood ratios were increased in the heart, lung, liver, and adrenals. Plasma NE was notably reduced in the animals with corresponding decreases in blood MIBG, which partly contributed to the increase in target organ uptake.

Conclusion

In spite of their inhibitory effect at the transporter level, Ke/Xy anesthesia is a satisfactory method for MIBG imaging that allows favorable target tissue uptake and contrast by reducing circulating NE and MIBG.
Literatur
1.
Zurück zum Zitat Lee KH, Ko BH, Paik JY, Jung KH, Choe YS, Choi Y, et al. Effects of anesthetic agents and fasting duration on 18F-FDG biodistribution and insulin levels in tumor-bearing mice. J Nucl Med 2005;46:1531–6.PubMed Lee KH, Ko BH, Paik JY, Jung KH, Choe YS, Choi Y, et al. Effects of anesthetic agents and fasting duration on 18F-FDG biodistribution and insulin levels in tumor-bearing mice. J Nucl Med 2005;46:1531–6.PubMed
2.
Zurück zum Zitat Fueger BJ, Czernin J, Hildebrandt I, Tran C, Halpern BS, Stout D, et al. Impact of animal handling on the results of 18F-FDG PET studies in mice. J Nucl Med 2006;47:999–1006.PubMed Fueger BJ, Czernin J, Hildebrandt I, Tran C, Halpern BS, Stout D, et al. Impact of animal handling on the results of 18F-FDG PET studies in mice. J Nucl Med 2006;47:999–1006.PubMed
3.
Zurück zum Zitat Accorsi R, Morowitz MJ, Charron M, Maris JM. Pinhole imaging of 131I-metaiodobenzylguanidine (131I-MIBG) in an animal model of neuroblastoma. Pediatr Radiol 2003;33:688–92.PubMedCrossRef Accorsi R, Morowitz MJ, Charron M, Maris JM. Pinhole imaging of 131I-metaiodobenzylguanidine (131I-MIBG) in an animal model of neuroblastoma. Pediatr Radiol 2003;33:688–92.PubMedCrossRef
4.
Zurück zum Zitat Rutgers M, Buitenhuis CK, van der Valk MA. [131I]-and [125I] metaiodobenzylguanidine therapy in macroscopic and microscopic tumors: a comparative study in SK-N-SH human neuroblastoma and PC12 rat pheochromocytoma xenografts. Int J Cancer 2000;90:312–25.PubMedCrossRef Rutgers M, Buitenhuis CK, van der Valk MA. [131I]-and [125I] metaiodobenzylguanidine therapy in macroscopic and microscopic tumors: a comparative study in SK-N-SH human neuroblastoma and PC12 rat pheochromocytoma xenografts. Int J Cancer 2000;90:312–25.PubMedCrossRef
5.
Zurück zum Zitat Rutgers M, Buitenhuis CK, Hoefnagel CA. Targeting of meta-iodobenzylguanidine to SK-N-SH human neuroblastoma xenografts: tissue distribution, metabolism and therapeutic efficacy. Int J Cancer 2000;87:412–22.PubMedCrossRef Rutgers M, Buitenhuis CK, Hoefnagel CA. Targeting of meta-iodobenzylguanidine to SK-N-SH human neuroblastoma xenografts: tissue distribution, metabolism and therapeutic efficacy. Int J Cancer 2000;87:412–22.PubMedCrossRef
6.
Zurück zum Zitat Anton M, Wagner B, Haubner R, Bodenstein C, Essien BE, Bonisch H, et al. Use of the norepinephrine transporter as a reporter gene for non-invasive imaging of genetically modified cells. J Gene Med 2004;6:119–26.PubMedCrossRef Anton M, Wagner B, Haubner R, Bodenstein C, Essien BE, Bonisch H, et al. Use of the norepinephrine transporter as a reporter gene for non-invasive imaging of genetically modified cells. J Gene Med 2004;6:119–26.PubMedCrossRef
7.
Zurück zum Zitat Moroz MA, Serganova I, Zanzonico P, Ageyeva L, Beresten T, Dyomina E, et al. Imaging hNET reporter gene expression with 124I-MIBG. Nucl Med 2007;48:827–36.CrossRef Moroz MA, Serganova I, Zanzonico P, Ageyeva L, Beresten T, Dyomina E, et al. Imaging hNET reporter gene expression with 124I-MIBG. Nucl Med 2007;48:827–36.CrossRef
8.
Zurück zum Zitat Nishimura M, Sato K, Okada T. Ketamine inhibits monoamine transporters expressed in human embryonic kidney 293 cells. Anesthesiology 1998;88:768–74.PubMedCrossRef Nishimura M, Sato K, Okada T. Ketamine inhibits monoamine transporters expressed in human embryonic kidney 293 cells. Anesthesiology 1998;88:768–74.PubMedCrossRef
9.
Zurück zum Zitat Hara K, Yanagihara N, Minami K. Ketamine interacts with the noradrenaline transporter at a site partly overlapping the desipramine binding site. Naunyn Schmiedebergs Arch Pharmacol 1998;358:328–33.PubMedCrossRef Hara K, Yanagihara N, Minami K. Ketamine interacts with the noradrenaline transporter at a site partly overlapping the desipramine binding site. Naunyn Schmiedebergs Arch Pharmacol 1998;358:328–33.PubMedCrossRef
10.
Zurück zum Zitat Shahani SK, Lingamaneni R, Hemmings HC Jr. General anesthetic actions on norepinephrine, dopamine, and gamma-aminobutyric acid transporters in stably transfected cells. Anesth Analg 2002;95:893–9.PubMedCrossRef Shahani SK, Lingamaneni R, Hemmings HC Jr. General anesthetic actions on norepinephrine, dopamine, and gamma-aminobutyric acid transporters in stably transfected cells. Anesth Analg 2002;95:893–9.PubMedCrossRef
11.
Zurück zum Zitat Salt PJ, Barnes PK, Beswick FJ. Inhibition of neuronal and extraneuronal uptake of noradrenaline by ketamine in the isolated perfused rat heart. Br J Anaesth 1979;51:835–8.PubMedCrossRef Salt PJ, Barnes PK, Beswick FJ. Inhibition of neuronal and extraneuronal uptake of noradrenaline by ketamine in the isolated perfused rat heart. Br J Anaesth 1979;51:835–8.PubMedCrossRef
12.
Zurück zum Zitat Maignan E, Dong WX, Legrand M. Sympathetic activity in the rat: effects of anaesthesia on noradrenaline kinetics. J Auton Nerv Syst 2000;80:46–51.PubMedCrossRef Maignan E, Dong WX, Legrand M. Sympathetic activity in the rat: effects of anaesthesia on noradrenaline kinetics. J Auton Nerv Syst 2000;80:46–51.PubMedCrossRef
13.
Zurück zum Zitat Matsukawa K, Ninomiya I, Nishiura N. Effects of anesthesia on cardiac and renal sympathetic nerve activities and plasma catecholamines. Am J Physiol 1994;265:R792–7. Matsukawa K, Ninomiya I, Nishiura N. Effects of anesthesia on cardiac and renal sympathetic nerve activities and plasma catecholamines. Am J Physiol 1994;265:R792–7.
14.
Zurück zum Zitat Appel E, Dudziak R, Palm D, Wnuk A. Sympathoneuronal and sympathoadrenal activation during ketamine anesthesia. Eur J Clin Pharmacol 1979;16:91–5.PubMedCrossRef Appel E, Dudziak R, Palm D, Wnuk A. Sympathoneuronal and sympathoadrenal activation during ketamine anesthesia. Eur J Clin Pharmacol 1979;16:91–5.PubMedCrossRef
15.
Zurück zum Zitat Franks NP, Lieb WR. Molecular and cellular mechanisms of general anaesthesia. Nature 1994;367:607–14.PubMedCrossRef Franks NP, Lieb WR. Molecular and cellular mechanisms of general anaesthesia. Nature 1994;367:607–14.PubMedCrossRef
16.
Zurück zum Zitat Kaka JS, Hayton WL. Pharmacokinetics of ketamine and two metabolites in the dog. J Pharmacokinet Biopharm 1980;8:193–202.PubMedCrossRef Kaka JS, Hayton WL. Pharmacokinetics of ketamine and two metabolites in the dog. J Pharmacokinet Biopharm 1980;8:193–202.PubMedCrossRef
17.
Zurück zum Zitat Rector E, Otto K, Kietzmann M, Nolte I, Lehmacher W. Pharmacokinetics and effects of xylazine (Rompun) in dogs. Berl Munch Tierarztl Wochenschr 1996;109:18–22.PubMed Rector E, Otto K, Kietzmann M, Nolte I, Lehmacher W. Pharmacokinetics and effects of xylazine (Rompun) in dogs. Berl Munch Tierarztl Wochenschr 1996;109:18–22.PubMed
18.
Zurück zum Zitat Shouda S, Kurata C, Mikami T, Wakabayashi Y. Effects of extrinsically elevated plasma norepinephrine concentration on myocardial 123I-MIBG kinetics in rats. J Nucl Med 1999;40:2088–93.PubMed Shouda S, Kurata C, Mikami T, Wakabayashi Y. Effects of extrinsically elevated plasma norepinephrine concentration on myocardial 123I-MIBG kinetics in rats. J Nucl Med 1999;40:2088–93.PubMed
19.
Zurück zum Zitat Burchardi H, Kaczmarczyk G. The effect of anaesthesia on renal function. Eur J Anaesthesiol 1994;11:163–8.PubMed Burchardi H, Kaczmarczyk G. The effect of anaesthesia on renal function. Eur J Anaesthesiol 1994;11:163–8.PubMed
20.
Zurück zum Zitat Ambrisko TD, Hikasa Y. Neurohormonal and metabolic effects of medetomidine compared with xylazine in beagle dogs. Can J Vet Res 2002;66:42–9.PubMed Ambrisko TD, Hikasa Y. Neurohormonal and metabolic effects of medetomidine compared with xylazine in beagle dogs. Can J Vet Res 2002;66:42–9.PubMed
21.
Zurück zum Zitat Ho CM, Su CK. Ketamine attenuates sympathetic activity through mechanisms not mediated by N-methyl-D-aspartate receptors in the isolated spinal cord of neonatal rats. Anesth Analg 2006;102:806–10.PubMedCrossRef Ho CM, Su CK. Ketamine attenuates sympathetic activity through mechanisms not mediated by N-methyl-D-aspartate receptors in the isolated spinal cord of neonatal rats. Anesth Analg 2006;102:806–10.PubMedCrossRef
Metadaten
Titel
Effects of anesthetic agents on cellular 123I-MIBG transport and in vivo 123I-MIBG biodistribution
verfasst von
Bong-Ho Ko
Jin-Young Paik
Kyung-Ho Jung
Jun-Sang Bae
Eun Jung Lee
Yearn Seong Choe
Byung-Tae Kim
Kyung-Han Lee
Publikationsdatum
01.03.2008
Verlag
Springer-Verlag
Erschienen in
European Journal of Nuclear Medicine and Molecular Imaging / Ausgabe 3/2008
Print ISSN: 1619-7070
Elektronische ISSN: 1619-7089
DOI
https://doi.org/10.1007/s00259-007-0605-0

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