Validity of a Newly Developed Noninvasive Method for Estimating Cerebral Blood Flow Using 123I-IMP Acquisition Data from the Lungs and Brain

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Yusuke Fujita Shinji Abe Tetsuro Odagawa Arisa Niwa Saki Tsuchiya Yumiko Koshiba Naotoshi Fujita Hidetaka Kono Seiichi Yamamoto Katsuhiko Kato http://orcid.org/0000-0002-2083-9319

Abstract

Objective: Previously we devised a method for estimating 123I-IMP activity at 10 min after intravenous injection of 123I-IMP (Ca10) without any blood sampling using 123I-IMP autoradiography (ARG) acquisition data, and verified its usefulness for quantification of the regional cerebral blood flow (rCBF). In this study, we attempted to develop a more simplified method for estimation of Ca10 and to validate its usefulness for quantification of rCBF in a number of patients with different cerebrovascular diseases.

Methods: Consecutive 134 patients were examined for 123I-IMP ARG study. Dynamic images of the lungs for 5 min and brain SPECT images for 30 min (6×5 min) and Ca 10 values were acquired from the first 35 patients. Using the data of the 35 patients, the regression equation for estimating Ca10 was calculated by the multiple regression analysis. The regression equation was applied to the other 99 patients who comprised 29 patients with Parkinson’s disease, 32 with common or internal carotid artery occlusion or stenosis, 14 with moyamoya disease, 12 with cerebral infarction, and 12 with other diseases. The mean of rCBFs in various regions of the brain (mCBF) calculated using the estimated Ca10 was compared with that calculated using directly measured Ca10 in the 99 patients. 

Results: The regression equation obtained was as follows: Estimated Ca10 =1070.1 +2.17 ×10-3a-8.08 ∙ b - 2.23 ×c +2.47 ×10-3d, where a: the area under the time-activity curve of the lungs (UCL), b: body weight, c: sum of UCL and the counts of brain projection data from 10 to 15 min after injection (CB1), d: those from 35 to 45 min (CB6), respectively. The estimated Ca10 closely correlated with the directly measured Ca10 (r=077). The mCBF values calculated using the estimated Ca10 closely correlated with those calculated using the directly measured Ca10 in all the patient groups (r=0.80, 0.78, 0.62, 0.77, 0.85 and 0.79 in patients with Parkinson’s disease, common or internal carotid artery occlusion or stenosis, moyamoya disease, cerebral infarction, and the other diseases, and total 99 patients, respectively).  

Conclusion: This study verified that the newly developed noninvasive method, which is more simplified than the previous method, can estimate reliably the Ca10 values which are available for quantification of rCBF in different patient groups.

 

Article Details

How to Cite
FUJITA, Yusuke et al. Validity of a Newly Developed Noninvasive Method for Estimating Cerebral Blood Flow Using 123I-IMP Acquisition Data from the Lungs and Brain. Medical Research Archives, [S.l.], v. 4, n. 6, oct. 2016. ISSN 2375-1924. Available at: <https://esmed.org/MRA/mra/article/view/634>. Date accessed: 18 apr. 2024.
Keywords
the regional cerebral blood flow (rCBF), 123I-IMP, Ca10, SPECT.
Section
Research Articles

References

1. Kuhl DE, Barrio JR, Huang SC, Selin C, Ackermann RF, Lear JL, et al. Quantifying local cerebral blood flow by N-isopropyl-p [I-123] iodoamphetamin (IMP) tomography. J Nucl Med 1982; 23:196-203.
2. Matsuda H, Seki H, Sumiya H, Tsuji S, Tonami N, Hisada K, et al. Quantitative local cerebral blood flow by N-isopropyl- (iodine 123) p-iodoamphetamine and single photon emission computed tomography with rotating gamma camera. Am J Physiol Imaging 1986; 1: 186-94.
3. Yokoi T, Iida H, Itoh H, Kanno I. A new graphic plot analysis for cerebral blood flow and partition coefficient with iodine-123-iodoamphetamine and dynamic SPECT validation studies using oxygen-15-water and PET. J Nucl Med 1993; 34:498-505.
4. Iida H, Itoh H, Bloomfield P, Munaka M, Higano S, Murakami M, et al. A method to quantitate cerebral blood flow using a rotating gamma camera and iodine-123 iodoamphetamine with one blood sampling. Eur J Nucl Med 1994; 21:1072-84.
5. Iida H, Itoh H, Nakazawa M, Hatazawa J, Nishimura H, Onishi Y, et al. Quantitative mapping of regional cerebral blood flow using iodine-123-IMP and SPECT. J Nucl Med 1994; 35:2019-30.
6. Odano I, Ohkubo M, Takahashi N, Higuchi T. A new method of regional cerebral blood flow measurement using one-point arterial sampling based on the microsphere model with N-isopropyl-p-[123I]-iodoamphetamine SPECT. Nucl Med Commun. 1994;15:560-4.
7. Fujioka H, Murase K, Inoue T, Ishimaru Y, Akamune A, Yamamoto Y, et al. A method for estimating the integral of the input function for the quantification of cerebral blood flow with 123I-IMP using one-point arterial blood sampling. Nucl Med Commun. 1998;19:561-6.
8. Mimura H, Sone T, Takahashi Y, Yoshioka K, Murase K, Matsuda H, et al. Measurement of regional blood flow with I-123 IMP using one-point venous blood sampling and causality analysis: evaluation by comparison with conventional continuous arterial blood sampling. Ann Nucl Med 2006; 20:589-95.
9. Tomiguchi S, Tashiro K, Shiraishi S, Yoshida M, Kawanaka K, Takahashi Y, et al. Estimation of I-123 IMP arterial blood activity from dynamic planar imaging of the chest using a graph plot method for the quantification of regional cerebral blood flow. Ann Nucl Med 2010;24:387-93.
10. Nishizawa S, Shiozaki T, Ueno M, Toyoda H, Shimono T, Kamoto Y, et al. A new method to estimate rCBF using IMP and SPECT without any blood sampling. Ann Nucl Med 2000;14:433-40.
11. Kaminaga T, Kunimatsu N, Chikamatsu T, Furui S. Validation of CBF measurement with non-invasive microsphere method (NIMS) compared with autoradiography method (ARG). Ann Nucl Med 2001;15:61-4.
12. Okamoto K, Ushijima Y, Okuyama C, Nakamura T, Nishimura T. Measurement of cerebral blood flow using graph plot analysis and I-123 iodoamphetamine. Clin Nucl Med. 2002; 27:191-6.
13. Abe S, Kato K, Takahashi Y, Fujita N, Yamashita M, Shinoda M, et al. Estimation of I-123 IMP arterial blood activity using I-123 IMP acquisition data from the lungs and brain without any blood sampling: Validation of its usefulness for quantification of regional cerebral blood flow. Clin Nucl Med.2012;37:258-63.
14. Kanno I, Iida H, Miura S, Murakami M, Takahashi K, Sasaki H, et al. A system for cerebral blood flow measurement using an H2O-15 autoradiographic method and positron emission tomography. J Cereb Blood Flow Metab 1987; 7:143-53.
15. Iida H, Kanno I, Miura S, Murakami M, Takahashi K, Uemura K. Error analysis of a quantitative cerebral blood flow measurement using H2O-15 autoradiography and positron emission tomography, with respect to the dispersion of the input function. J Cereb Blood Flow Metab 1986;6:536-545.
16. Abe S, Kato K, Takahashi Y, Fujita N, Ikeda M, Ota N, et al. Estimation of regional cerebral blood flow using N-isopropyl-p-123I iodoamphetamine acquisition data from the lungs and brain. An improved non-invasive technique. Nuklearmedizin. 2014;53:221-6.
17. Takeuchi R, Yonekura Y, Matsuda H, Konishi J. Usefulness of a three-dimentional stereotaxic ROI template on anatomically standardised Tc-99m ECD SPET. Eur J Nucl Mol Imaging 2002;29:331-41.
18. Takeuchi R, Matsuda H, Yoshioka K, Yonekura Y. Cerebral blood flow SPET in transient global amnesia with automated ROI analysis by 3DSRT. Eur J Nucl Mol Imaging. 2004; 31:578-89.
19. Mallett BL, Veall N. Investigation of cerebral blood-flow in hypertension, using radioactive-xenon inhalation and extracranial recording. Lancet. 1963;1:1081-2.
20. Winchell HS, Horst WD, Braun L, Oldendorf WH, Hattner R, Parker H. N-isopropyl-[123I] p-iodoamphetamine: single-pass brain uptake and washout; binding to brain synaptosomes; and localization in dog and monkey brain. J Nucl Med. 1980;2:947-52.
21. Neirinckx RD, Canning LR, Piper IM, Nowotnik DP, Pickett RD, Holmes RA, et al. Technetium-99m d,l-HM-PAO: a new radiopharmaceutical for SPECT imaging of regional cerebral blood perfusion. J Nucl Med. 1987;28:191-202.
22. Walovitch RC, Hill TC, Garrity ST, Cheesman EH, Burgess BA, O'Leary DH, et al. Characterization of technetium-99m-L,L-ECD for brain perfusion imaging, Part 1: Pharmacology of technetium-99m ECD in nonhuman primates. J Nucl Med. 1989;30:1892-901.
23. Herscovitch P, Markham J, Raichle ME. Brain blood flow measured with intravenous H2O-15. Ⅰ. Theory and error analysis. J Nucl Med 1983; 24:782-89
24. Raichle ME, Martin WR, Herscovitch P, Mintun MA, Markham J. Brain blood flow measured with intravenous H2O-15. Ⅱ. Implementation and validation. J Nucl Med 1983; 24:790-798