Skip to main content
Erschienen in:

27.01.2018 | Original Article

Automated segmentation and detection of increased uptake regions in bone scintigraphy using SPECT/CT images

verfasst von: Masakazu Tsujimoto, Atsushi Teramoto, Seiichiro Ota, Hiroshi Toyama, Hiroshi Fujita

Erschienen in: Annals of Nuclear Medicine | Ausgabe 3/2018

Einloggen, um Zugang zu erhalten

Abstract

Purpose

To develop a method for automated detection of highly integrated sites in SPECT images using bone information obtained from CT images in bone scintigraphy.

Methods

Bone regions on CT images were first extracted, and bones were identified by segmenting multiple regions. Next, regions corresponding to the bone regions on SPECT images were extracted based on the bone regions on CT images. Subsequently, increased uptake regions were extracted from the SPECT image using thresholding and three-dimensional labeling. Last, the ratio of increased uptake regions to all bone regions was calculated and expressed as a quantitative index. To verify the efficacy of this method, a basic assessment was performed using phantom and clinical data.

Results

The results of this analytical method using phantoms created by changing the radioactive concentrations indicated that regions of increased uptake were detected regardless of the radioactive concentration. Assessments using clinical data indicated that detection sensitivity for increased uptake regions was 71% and that the correlation between manual measurements and automated measurements was significant (correlation coefficient 0.868).

Conclusion

These results suggested that automated detection of increased uptake regions on SPECT images using bone information obtained from CT images would be possible.
Literatur
1.
Zurück zum Zitat Bombardieri E, Aktolun C, Baum RP, Bishof-Delaloye A, Buscombe J, Chatal JF, et al. Bone scintigraphy: procedure guidelines for tumour imaging. Eur J Nucl Med Mol Imaging. 2003;30:BP99-BP106. Bombardieri E, Aktolun C, Baum RP, Bishof-Delaloye A, Buscombe J, Chatal JF, et al. Bone scintigraphy: procedure guidelines for tumour imaging. Eur J Nucl Med Mol Imaging. 2003;30:BP99-BP106.
2.
Zurück zum Zitat Koizumi M. Bone scintigraphy in bone metastasis. Radioisotopes. 1999;48:732–5.CrossRef Koizumi M. Bone scintigraphy in bone metastasis. Radioisotopes. 1999;48:732–5.CrossRef
3.
Zurück zum Zitat Tamaki N, Manabe O. Textbook of clinical nuclear medicine. Japan: Bunkodo Co., Ltd.; 2016. pp. 128–52. Tamaki N, Manabe O. Textbook of clinical nuclear medicine. Japan: Bunkodo Co., Ltd.; 2016. pp. 128–52.
4.
Zurück zum Zitat Koizumi M. Bone scintigraphy in oncology -essentials in diagnosis of bone metastasis. Tokyo: Mediculture Co., Ltd.; 2000. pp. 1–8. Koizumi M. Bone scintigraphy in oncology -essentials in diagnosis of bone metastasis. Tokyo: Mediculture Co., Ltd.; 2000. pp. 1–8.
5.
Zurück zum Zitat Matsumoto T, Yoneda T. Cancer and bone. Tokyo: Medical Review Co., Ltd.; 2013. pp. 219–27. Matsumoto T, Yoneda T. Cancer and bone. Tokyo: Medical Review Co., Ltd.; 2013. pp. 219–27.
6.
Zurück zum Zitat Ono Y. Diagnosis of osseous metastasis by bone scintigraphy. Tokyo: Nankodo Co., Ltd.; 2002. pp. 31–49. Ono Y. Diagnosis of osseous metastasis by bone scintigraphy. Tokyo: Nankodo Co., Ltd.; 2002. pp. 31–49.
7.
Zurück zum Zitat Yang HL, Liu T, Wang XM, Xu Y, Deng SM. Diagnosis of bone metastases: a meta-analysis comparing (18)FDGPET CT, MRI and bone scintigraphy. Euro Radiol. 2011;21:2604–17.CrossRef Yang HL, Liu T, Wang XM, Xu Y, Deng SM. Diagnosis of bone metastases: a meta-analysis comparing (18)FDGPET CT, MRI and bone scintigraphy. Euro Radiol. 2011;21:2604–17.CrossRef
8.
Zurück zum Zitat Savelli G, Maffioli L, Maccauro M, De Deckere E, Bombardieri E. Bone scintigraphy and the added value of SPECT (single photon emission tomography) in detecting skeletal lesions. Q. J Nucl Med. 2001;45:27–37. Savelli G, Maffioli L, Maccauro M, De Deckere E, Bombardieri E. Bone scintigraphy and the added value of SPECT (single photon emission tomography) in detecting skeletal lesions. Q. J Nucl Med. 2001;45:27–37.
9.
Zurück zum Zitat Sadik M, Suurkula M, Höglund P, Järund A, Edenbrandt L. Quality of planar whole-body bone scan interpretations: a nationwide survey. Eur J Nucl Med Mol Imaging. 2008;35:1464–72.CrossRefPubMed Sadik M, Suurkula M, Höglund P, Järund A, Edenbrandt L. Quality of planar whole-body bone scan interpretations: a nationwide survey. Eur J Nucl Med Mol Imaging. 2008;35:1464–72.CrossRefPubMed
10.
Zurück zum Zitat Erdi YE, Humm JL, Imbriaco M, Yeung H, Larson SM. Quantitative bone metastases analysis based on image segmentation. J Nucl Med. 1997;38:1401–6.PubMed Erdi YE, Humm JL, Imbriaco M, Yeung H, Larson SM. Quantitative bone metastases analysis based on image segmentation. J Nucl Med. 1997;38:1401–6.PubMed
11.
Zurück zum Zitat Sadik M, Jakobsson D, Olofsson F, Ohlsson M, Suurkula M, Edenbrandt L. A new computer-based decision-support system for the interpretation of bone scans. Nucl Med Commun. 2006;27:417 – 23.CrossRefPubMed Sadik M, Jakobsson D, Olofsson F, Ohlsson M, Suurkula M, Edenbrandt L. A new computer-based decision-support system for the interpretation of bone scans. Nucl Med Commun. 2006;27:417 – 23.CrossRefPubMed
12.
Zurück zum Zitat Sadik M, Hamadeh I, Nordblom P, Suurkula M, Höglund P, Ohlsson M, et al. Computer-assisted interpretation of planar whole-body bone scans. J Nucl Med. 2008;47:1958–65.CrossRef Sadik M, Hamadeh I, Nordblom P, Suurkula M, Höglund P, Ohlsson M, et al. Computer-assisted interpretation of planar whole-body bone scans. J Nucl Med. 2008;47:1958–65.CrossRef
13.
Zurück zum Zitat Sadik M, Suurkula M, Höglund P, Järund A, Edenbrandt L. Improved classifications of planar whole-body bone scans using a computer-assisted diagnosis system: multicenter, multiple-reader, multiple-case study. J Nucl Med. 2009;50:368 – 75.CrossRefPubMed Sadik M, Suurkula M, Höglund P, Järund A, Edenbrandt L. Improved classifications of planar whole-body bone scans using a computer-assisted diagnosis system: multicenter, multiple-reader, multiple-case study. J Nucl Med. 2009;50:368 – 75.CrossRefPubMed
14.
Zurück zum Zitat Mitsui Y, Shiina H, Yamamoto Y, Haramoto M, Arichi N, Yasumoto H, et al. Prediction of survival benefit using an automated bone scan index in patients with castration-resistant prostate cancer. BJU Int. 2012;110:628 – 34.CrossRef Mitsui Y, Shiina H, Yamamoto Y, Haramoto M, Arichi N, Yasumoto H, et al. Prediction of survival benefit using an automated bone scan index in patients with castration-resistant prostate cancer. BJU Int. 2012;110:628 – 34.CrossRef
15.
Zurück zum Zitat Okutomi M, Ozawa S, Sato Y, Shimizu M, Fujiyoshi H, Hori O, et al. Digital image processing. Revised new ed. Tokyo: Computer Graphic Arts Society; 2015. p. 168 – 71, 186–7. Okutomi M, Ozawa S, Sato Y, Shimizu M, Fujiyoshi H, Hori O, et al. Digital image processing. Revised new ed. Tokyo: Computer Graphic Arts Society; 2015. p. 168 – 71, 186–7.
16.
Zurück zum Zitat Suematsu Y, Yanada H. Image processing engineering. Revised ed. Japan: Corona Publishing Co., Ltd.,; 2000. pp. 128 – 29. Suematsu Y, Yanada H. Image processing engineering. Revised ed. Japan: Corona Publishing Co., Ltd.,; 2000. pp. 128 – 29.
17.
Zurück zum Zitat Matsumoto T, Yoshino M, Asano T, Uesugi K, Todoh M, Tanaka M. Monochromatic synchrotron radiation µCT reveals disuse-mediated canal network rarefaction in cortical bone of growing rat tibiae. J Appl Physiol. 2006;100:274–80.CrossRefPubMed Matsumoto T, Yoshino M, Asano T, Uesugi K, Todoh M, Tanaka M. Monochromatic synchrotron radiation µCT reveals disuse-mediated canal network rarefaction in cortical bone of growing rat tibiae. J Appl Physiol. 2006;100:274–80.CrossRefPubMed
18.
Zurück zum Zitat Onishi H, Motomura N, Fujino K, Natsume T, Haramoto Y. Evaluation of commercial resolution recovery techniques in four state-of-the-art single photon emission computed tomography systems using a digital phantom model. Jpn J Radiol Technol. 2012;68:686–95.CrossRef Onishi H, Motomura N, Fujino K, Natsume T, Haramoto Y. Evaluation of commercial resolution recovery techniques in four state-of-the-art single photon emission computed tomography systems using a digital phantom model. Jpn J Radiol Technol. 2012;68:686–95.CrossRef
19.
Zurück zum Zitat Endo M, Iinuma T, Takenaka E. Measurement of CT-image resolution using a thin wire. Jpn J Radiol. 1980;40:43–51. Endo M, Iinuma T, Takenaka E. Measurement of CT-image resolution using a thin wire. Jpn J Radiol. 1980;40:43–51.
20.
Zurück zum Zitat Onishi H, Ichihara T, Yamamoto T. Nuclear Medicine Technology. Revised 3rd ed. Japan: Ohmsha Co., Ltd.; 2016. pp. 123–4. Onishi H, Ichihara T, Yamamoto T. Nuclear Medicine Technology. Revised 3rd ed. Japan: Ohmsha Co., Ltd.; 2016. pp. 123–4.
21.
Zurück zum Zitat Vija AH. Introduction to xSPECT technology: evolving multi-modal SPECT to become context-based and quantitative Siemens Healthcare White Paper. Illinois: Siemens Medical Solution; 2013. Vija AH. Introduction to xSPECT technology: evolving multi-modal SPECT to become context-based and quantitative Siemens Healthcare White Paper. Illinois: Siemens Medical Solution; 2013.
Metadaten
Titel
Automated segmentation and detection of increased uptake regions in bone scintigraphy using SPECT/CT images
verfasst von
Masakazu Tsujimoto
Atsushi Teramoto
Seiichiro Ota
Hiroshi Toyama
Hiroshi Fujita
Publikationsdatum
27.01.2018
Verlag
Springer Japan
Erschienen in
Annals of Nuclear Medicine / Ausgabe 3/2018
Print ISSN: 0914-7187
Elektronische ISSN: 1864-6433
DOI
https://doi.org/10.1007/s12149-018-1237-0