Skip to main content
Erschienen in: Magnetic Resonance Materials in Physics, Biology and Medicine 6/2016

29.06.2016 | Research Article

Accelerated visualization of selected intracranial arteries by cycled super-selective arterial spin labeling

verfasst von: Thomas Lindner, Naomi Larsen, Olav Jansen, Michael Helle

Erschienen in: Magnetic Resonance Materials in Physics, Biology and Medicine | Ausgabe 6/2016

Einloggen, um Zugang zu erhalten

Abstract

Objective

To accelerate super-selective arterial spin labeling (ASL) angiography by using a single control condition denoted as cycled super-selective arterial spin labeling.

Materials and methods

A single non-selective control image is acquired that is shared by selective label images. Artery-selective imaging is possible by geometrically changing the position of the labeling focus to more than one artery of interest during measurement. The presented approach is compared to conventional super-selective imaging in terms of its labeling efficiency inside and outside the labeling focus using numerical simulations and in vivo measurements. Additionally, the signal-to-noise ratios of the images are compared to non-selective ASL angiography and analyzed using a two-way ANOVA test and calculating the Pearson’s correlation coefficients.

Results

The results indicate that the labeling efficiency is not reduced within the labeled artery, but can increase as a function of distance to the artery of interest when compared to conventional super-selective ASL. In the final images, no statistically significant difference of image quality can be observed while the acquisition duration could be reduced when the major brain feeding arteries are being tagged.

Conclusion

Using super-selective arterial spin labeling, a single non-selective control acquisition suffices for reconstructing selective angiograms of the cerebral vasculature, thereby accelerating image acquisition of the major intracranial arteries without notable loss of information.
Literatur
1.
Zurück zum Zitat MacDonald ME, Frayne R (2015) Cerebrovascular MRI: a review of state-of-the-art approaches, methods and techniques. NMR Biomed 28:767–791CrossRefPubMed MacDonald ME, Frayne R (2015) Cerebrovascular MRI: a review of state-of-the-art approaches, methods and techniques. NMR Biomed 28:767–791CrossRefPubMed
3.
Zurück zum Zitat Dumoulin CL, Souza SP, Walker MF, Wagle W (1989) Three-dimensional phase contrast angiography. Magn Reson Med 9:139–149CrossRefPubMed Dumoulin CL, Souza SP, Walker MF, Wagle W (1989) Three-dimensional phase contrast angiography. Magn Reson Med 9:139–149CrossRefPubMed
4.
Zurück zum Zitat Wong EC (2007) Vessel-encoded arterial spin-labeling using pseudocontinuous tagging. Magn Reson Med 58:1086–1091CrossRefPubMed Wong EC (2007) Vessel-encoded arterial spin-labeling using pseudocontinuous tagging. Magn Reson Med 58:1086–1091CrossRefPubMed
5.
Zurück zum Zitat Nakamura M, Yoneyama M, Tabuchi T, Takemura A, Obara M, Tatsuno S, Sawano S (2013) Vessel-selective, non-contrast enhanced, time-resolved MR angiography with vessel-selective arterial spin labeling technique (CINEMA-SELECT) in intracranial arteries. Radiol Phys Technol 6:327–334CrossRefPubMed Nakamura M, Yoneyama M, Tabuchi T, Takemura A, Obara M, Tatsuno S, Sawano S (2013) Vessel-selective, non-contrast enhanced, time-resolved MR angiography with vessel-selective arterial spin labeling technique (CINEMA-SELECT) in intracranial arteries. Radiol Phys Technol 6:327–334CrossRefPubMed
6.
Zurück zum Zitat Robson PM, Dai W, Shankaranarayanan A, Rofsky NM, Alsop DC (2010) Time-resolved vessel-selective digital subtraction MR angiography of the cerebral vasculature with arterial spin labeling. Radiology 257:507–515CrossRefPubMedPubMedCentral Robson PM, Dai W, Shankaranarayanan A, Rofsky NM, Alsop DC (2010) Time-resolved vessel-selective digital subtraction MR angiography of the cerebral vasculature with arterial spin labeling. Radiology 257:507–515CrossRefPubMedPubMedCentral
7.
Zurück zum Zitat Helle M, Norris DG, Rüfer S, Alfke K, Jansen O, van Osch MJ (2010) Superselective pseudocontinuous arterial spin labeling. Magn Reson Med 64:777–786CrossRefPubMed Helle M, Norris DG, Rüfer S, Alfke K, Jansen O, van Osch MJ (2010) Superselective pseudocontinuous arterial spin labeling. Magn Reson Med 64:777–786CrossRefPubMed
9.
Zurück zum Zitat Lindner T, Jensen-Kondering U, van Osch MJ, Jansen O, Helle M (2015) 3D time-resolved vessel-selective angiography based on pseudo-continuous arterial spin labeling. Magn Reson Imaging 33:840–846CrossRefPubMed Lindner T, Jensen-Kondering U, van Osch MJ, Jansen O, Helle M (2015) 3D time-resolved vessel-selective angiography based on pseudo-continuous arterial spin labeling. Magn Reson Imaging 33:840–846CrossRefPubMed
11.
Zurück zum Zitat Günther M (2006) Efficient visualization of vascular territories in the human brain by cycled arterial spin labeling MRI. Magn Reson Med 56:671–675CrossRefPubMed Günther M (2006) Efficient visualization of vascular territories in the human brain by cycled arterial spin labeling MRI. Magn Reson Med 56:671–675CrossRefPubMed
12.
Zurück zum Zitat Okell TW, Chappell MA, Woolrich MW, Günther M, Feinberg DA, Jezzard P (2010) Vessel-encoded dynamic magnetic resonance angiography using arterial spin labeling. Magn Reson Med 64:430–438CrossRefPubMed Okell TW, Chappell MA, Woolrich MW, Günther M, Feinberg DA, Jezzard P (2010) Vessel-encoded dynamic magnetic resonance angiography using arterial spin labeling. Magn Reson Med 64:430–438CrossRefPubMed
13.
Zurück zum Zitat Kamano H, Yoshiura T, Hiwatashi A, Yamashita K, Takayama Y, Nagao E, Sagiyama K, Zimine I, Honda H (2012) Accelerated territorial arterial spin labeling based on shared rotating control acquisition: an observer study for validation. Neuroradiology 54:65–71CrossRefPubMed Kamano H, Yoshiura T, Hiwatashi A, Yamashita K, Takayama Y, Nagao E, Sagiyama K, Zimine I, Honda H (2012) Accelerated territorial arterial spin labeling based on shared rotating control acquisition: an observer study for validation. Neuroradiology 54:65–71CrossRefPubMed
14.
Zurück zum Zitat Zimine I, Petersen ET, Golay X (2006) Dual vessel arterial spin labeling scheme for regional perfusion imaging. Magn Reson Med 56:1140–1144CrossRefPubMed Zimine I, Petersen ET, Golay X (2006) Dual vessel arterial spin labeling scheme for regional perfusion imaging. Magn Reson Med 56:1140–1144CrossRefPubMed
15.
Zurück zum Zitat Helle M, Rüfer S, van Osch MJ, Nabavi A, Alfke K, Norris DG, Jansen O (2013) Superselective arterial spin labeling applied for flow territory mapping in various cerebrovascular diseases. J Magn Reson Imaging 38:496–503CrossRefPubMed Helle M, Rüfer S, van Osch MJ, Nabavi A, Alfke K, Norris DG, Jansen O (2013) Superselective arterial spin labeling applied for flow territory mapping in various cerebrovascular diseases. J Magn Reson Imaging 38:496–503CrossRefPubMed
16.
Zurück zum Zitat Helle M, Rüfer S, van Osch MJ, Jansen O, Norris DG (2012) Selective multivessel labeling approach for perfusion territory imaging in pseudo-continuous arterial spin labeling. Magn Reson Med 68:214–219CrossRefPubMed Helle M, Rüfer S, van Osch MJ, Jansen O, Norris DG (2012) Selective multivessel labeling approach for perfusion territory imaging in pseudo-continuous arterial spin labeling. Magn Reson Med 68:214–219CrossRefPubMed
17.
Zurück zum Zitat Firbank MJ, Coulthard A, Harrison RM, Williams ED (1999) A comparison of two methods for measuring the signal to noise ratio on MR images. Phys Med Biol 44(12):N261–N264CrossRefPubMed Firbank MJ, Coulthard A, Harrison RM, Williams ED (1999) A comparison of two methods for measuring the signal to noise ratio on MR images. Phys Med Biol 44(12):N261–N264CrossRefPubMed
18.
Zurück zum Zitat Fujikoshi Y (1993) Two-way ANOVA models with unbalanced data. Discr Math 116:315–334CrossRef Fujikoshi Y (1993) Two-way ANOVA models with unbalanced data. Discr Math 116:315–334CrossRef
19.
Zurück zum Zitat Bland JM (1986) Altman DG Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 8:307–310CrossRef Bland JM (1986) Altman DG Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 8:307–310CrossRef
20.
Zurück zum Zitat Wong EC, Guo J (2012) Blind detection of vascular sources and territories using random vessel encoded arterial spin labeling. Magn Reson Matter Phy 25:95–101CrossRef Wong EC, Guo J (2012) Blind detection of vascular sources and territories using random vessel encoded arterial spin labeling. Magn Reson Matter Phy 25:95–101CrossRef
21.
Zurück zum Zitat Yan L, Wang S, Zhuo Y, Wolf RL, Stiefel MF, An J, Ye Y, Zhang Q, Melhem ER, Wang DJ (2010) Unenhanced dynamic MR angiography: high spatial and temporal resolution by using true FISP-based spin tagging with alternating radiofrequency. Radiology 256(1):270–279CrossRefPubMedPubMedCentral Yan L, Wang S, Zhuo Y, Wolf RL, Stiefel MF, An J, Ye Y, Zhang Q, Melhem ER, Wang DJ (2010) Unenhanced dynamic MR angiography: high spatial and temporal resolution by using true FISP-based spin tagging with alternating radiofrequency. Radiology 256(1):270–279CrossRefPubMedPubMedCentral
22.
Zurück zum Zitat Robson PM, Dai W, Shankaranarayanan A, Rofsky NM, Alsop DC (2010) Time-resolved vessel-selective digital subtraction MR angiography of the cerebral vasculature with arterial spin labeling. Radiology 257(2):507–515CrossRefPubMedPubMedCentral Robson PM, Dai W, Shankaranarayanan A, Rofsky NM, Alsop DC (2010) Time-resolved vessel-selective digital subtraction MR angiography of the cerebral vasculature with arterial spin labeling. Radiology 257(2):507–515CrossRefPubMedPubMedCentral
23.
Zurück zum Zitat Hartkamp NS, Petersen ET, De Vis JB, Bokkers RP, Hendrikse J (2013) Mapping of cerebral perfusion territories using territorial arterial spin labeling: techniques and clinical application. NMR Biomed 26(8):901–912CrossRefPubMed Hartkamp NS, Petersen ET, De Vis JB, Bokkers RP, Hendrikse J (2013) Mapping of cerebral perfusion territories using territorial arterial spin labeling: techniques and clinical application. NMR Biomed 26(8):901–912CrossRefPubMed
24.
Zurück zum Zitat Hori M, Aoki S, Oishi H, Nakanishi A, Shimoji K, Kamagata K, Houshito H, Kuwatsuru R, Arai H (2011) Utility of time-resolved three-dimensional magnetic resonance digital subtraction angiography without contrast material for assessment of intracranial dural arterio-venous fistula. Acta Radiol 52(7):808–812CrossRefPubMed Hori M, Aoki S, Oishi H, Nakanishi A, Shimoji K, Kamagata K, Houshito H, Kuwatsuru R, Arai H (2011) Utility of time-resolved three-dimensional magnetic resonance digital subtraction angiography without contrast material for assessment of intracranial dural arterio-venous fistula. Acta Radiol 52(7):808–812CrossRefPubMed
25.
Zurück zum Zitat Iryo Y, Hirai T, Kai Y, Nakamura M, Shigematsu Y, Kitajima M, Azuma M, Komi M, Morita K, Yamashita Y (2014) Intracranial dural arteriovenous fistulas: evaluation with 3-T four-dimensional MR angiography using arterial spin labeling. Radiology 271(1):193–199CrossRefPubMed Iryo Y, Hirai T, Kai Y, Nakamura M, Shigematsu Y, Kitajima M, Azuma M, Komi M, Morita K, Yamashita Y (2014) Intracranial dural arteriovenous fistulas: evaluation with 3-T four-dimensional MR angiography using arterial spin labeling. Radiology 271(1):193–199CrossRefPubMed
26.
Zurück zum Zitat Zun Z, Shankaranarayanan A, Zaharchuk G (2014) Pseudocontinuous arterial spin labeling with prospective motion correction (PCASL-PROMO). Magn Reson Med 72:1049–1056CrossRefPubMed Zun Z, Shankaranarayanan A, Zaharchuk G (2014) Pseudocontinuous arterial spin labeling with prospective motion correction (PCASL-PROMO). Magn Reson Med 72:1049–1056CrossRefPubMed
27.
Zurück zum Zitat Helle M, Koken P, Sénégas J (2015) Improving motion robustness of pseudo-continuous arterial spin labeling by using real-time motion correction. Proc Intl Soc Magn Reson Med Toronto, ON, Canada. Abstract 0270 Helle M, Koken P, Sénégas J (2015) Improving motion robustness of pseudo-continuous arterial spin labeling by using real-time motion correction. Proc Intl Soc Magn Reson Med Toronto, ON, Canada. Abstract 0270
Metadaten
Titel
Accelerated visualization of selected intracranial arteries by cycled super-selective arterial spin labeling
verfasst von
Thomas Lindner
Naomi Larsen
Olav Jansen
Michael Helle
Publikationsdatum
29.06.2016
Verlag
Springer Berlin Heidelberg
Erschienen in
Magnetic Resonance Materials in Physics, Biology and Medicine / Ausgabe 6/2016
Print ISSN: 0968-5243
Elektronische ISSN: 1352-8661
DOI
https://doi.org/10.1007/s10334-016-0574-z

Weitere Artikel der Ausgabe 6/2016

Magnetic Resonance Materials in Physics, Biology and Medicine 6/2016 Zur Ausgabe

Screening-Mammografie offenbart erhöhtes Herz-Kreislauf-Risiko

26.04.2024 Mammografie Nachrichten

Routinemäßige Mammografien helfen, Brustkrebs frühzeitig zu erkennen. Anhand der Röntgenuntersuchung lassen sich aber auch kardiovaskuläre Risikopatientinnen identifizieren. Als zuverlässiger Anhaltspunkt gilt die Verkalkung der Brustarterien.

S3-Leitlinie zu Pankreaskrebs aktualisiert

23.04.2024 Pankreaskarzinom Nachrichten

Die Empfehlungen zur Therapie des Pankreaskarzinoms wurden um zwei Off-Label-Anwendungen erweitert. Und auch im Bereich der Früherkennung gibt es Aktualisierungen.

Fünf Dinge, die im Kindernotfall besser zu unterlassen sind

18.04.2024 Pädiatrische Notfallmedizin Nachrichten

Im Choosing-Wisely-Programm, das für die deutsche Initiative „Klug entscheiden“ Pate gestanden hat, sind erstmals Empfehlungen zum Umgang mit Notfällen von Kindern erschienen. Fünf Dinge gilt es demnach zu vermeiden.

„Nur wer sich gut aufgehoben fühlt, kann auch für Patientensicherheit sorgen“

13.04.2024 Klinik aktuell Kongressbericht

Die Teilnehmer eines Forums beim DGIM-Kongress waren sich einig: Fehler in der Medizin sind häufig in ungeeigneten Prozessen und mangelnder Kommunikation begründet. Gespräche mit Patienten und im Team können helfen.

Update Radiologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.