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P. Nagpal, B.A. Policeni, M. Kwofie, G. Bathla, C.P. Derdeyn and D. Skeete
American Journal of Neuroradiology September 2018, 39 (9) E104; DOI: https://doi.org/10.3174/ajnr.A5758
P. Nagpal
aDepartment of Radiology University of Iowa Hospitals and Clinics Iowa City, Iowa
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B.A. Policeni
aDepartment of Radiology University of Iowa Hospitals and Clinics Iowa City, Iowa
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M. Kwofie
aDepartment of Radiology University of Iowa Hospitals and Clinics Iowa City, Iowa
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G. Bathla
aDepartment of Radiology University of Iowa Hospitals and Clinics Iowa City, Iowa
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C.P. Derdeyn
aDepartment of Radiology University of Iowa Hospitals and Clinics Iowa City, Iowa
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D. Skeete
bTrauma Services, Department of Surgery University of Iowa Hospitals and Clinics Iowa City, Iowa
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We thank Drs Malhotra, Wu, and Seifert for their interest in our work and their comments regarding our recent article on blunt cerebrovascular injuries (BCVI).1 As highlighted in our work, controversies exist regarding screening criteria, the modalities used for screening, and the treatment of these patients. The literature on the accuracy of CT angiography is diverse and is best studied by groups using both CTA and digital subtraction angiography for the diagnosis of BCVI in all patients.2⇓⇓⇓–6 The study by Eastman et al2 showed that the overall sensitivity, specificity, positive predictive value, negative predictive value, and accuracy of 16-slice CTA for the diagnosis of BCVI were 97.7%, 100%, 100%, 99.3%, and 99.3%, respectively, with a single false-positive of a grade I vertebral injury. While most other studies have shown a modest sensitivity with good specificity, for example, Goodwin et al3 showed a sensitivity and specificity of 41% and 97%, respectively, combined for 16- and 64-slice CT, and Paulus et al4 showed a sensitivity and specificity of 68% and 92% for CTA on 64-slice CT.

In another study comparing CTA (16-slice) and DSA for diagnosis, Malhotra et al6 showed that the sensitivity and specificity of CTA was 74% and 84%, but all the false-negative CTAs were obtained in the first half of the study period. In the latter part, the specificity and the negative predictive value was 100%, and the most likely explanation was the learning curve of the radiologists reading the studies. Malhotra et al and Shahan et al7 have reported high false-positive rates of CTA with an incidence of approximately 43%6 and 45%, respectively. The reason for this high false-positive rate is poorly understood, and we agree that it could be related to overcalling from radiologists due to reported poor sensitivity of CTA. Whether this is best addressed by the radiology review process, improved awareness of this entity among radiologists, or a multidisciplinary team consensus will be an interesting topic for further studies. A systematic review of studies comparing CTA and DSA for the diagnosis of BCVI showed that the pooled sensitivity and specificity of CTA are 66% (95% CI, 49%–79%) and 97% (95% CI, 91%–99%), respectively.8 Hence, the authors concluded that CTA may have a low sensitivity for adequately ruling out a diagnosis but may be useful to rule in BCVI among patients with trauma with a high pretest probability of injury as highlighted by the Drs Malhotra, Wu, and Seifert in their letter.

Finally, in a study looking at the cost-effectiveness of various modalities for BCVI screening, CTA was shown to be the best test from the societal perspective with the most cost-effective screening strategy for patients at high risk for BCVI. From an institutional perspective, CTA was shown to prevent the most strokes at a reasonable cost.9 Hence, the use of CTA for screening, though imperfect, is likely the most widely used and is suggested as preferred (or equivalent) over DSA for screening for BCVI in the existing guidelines.10,11

A recent multicenter study on stroke evaluation in patients with BCVI showed that most strokes occur in the first 72 hours after injury, and 22% of patients were on antithrombotic therapy when the stroke occurred.12 Such findings highlight the need for early and accurate diagnosis of BCVI.

References

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    1. Nagpal P,
    2. Policeni BA,
    3. Bathla G, et al
    . Blunt cerebrovascular injuries: advances in screening, imaging, and management trends. AJNR Am J Neuroradiol 2017 Oct 12. [Epub ahead of print] doi:10.3174/ajnr.A5412 pmid:29025722
    Abstract/FREE Full Text
  2. 2.↵
    1. Eastman AL,
    2. Chason DP,
    3. Perez CL, et al
    . Computed tomographic angiography for the diagnosis of blunt cervical vascular injury: is it ready for primetime? J Trauma 2006;60:925–29; discussion 929 doi:10.1097/01.ta.0000197479.28714.62 pmid:16688051
    CrossRefPubMed
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    1. Goodwin RB,
    2. Beery PR 2nd.,
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    . Computed tomographic angiography versus conventional angiography for the diagnosis of blunt cerebrovascular injury in trauma patients. J Trauma 2009;67:1046–50 doi:10.1097/TA.0b013e3181b83b63 pmid:19901666
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    1. Paulus EM,
    2. Fabian TC,
    3. Savage SA, et al
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    CrossRefPubMed
  5. 5.↵
    1. Utter GH,
    2. Hollingworth W,
    3. Hallam DK, et al
    . Sixteen-slice CT angiography in patients with suspected blunt carotid and vertebral artery injuries. J Am Coll Surg 2006;203:838–48 doi:10.1016/j.jamcollsurg.2006.08.003 pmid:17116552
    CrossRefPubMed
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    1. Malhotra AK,
    2. Camacho M,
    3. Ivatury RR, et al
    . Computed tomographic angiography for the diagnosis of blunt carotid/vertebral artery injury: a note of caution. Ann Surg 2007;246:632–42; discussion 642–43 pmid:17893500
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    1. Shahan CP,
    2. Magnotti LJ,
    3. Stickley SM, et al
    . A safe and effective management strategy for blunt cerebrovascular injury: avoiding unnecessary anticoagulation and eliminating stroke. J Trauma Acute Care Surg 2016;80:915–22 doi:10.1097/TA.0000000000001041 pmid:27015579
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    1. Roberts DJ,
    2. Chaubey VP,
    3. Zygun DA, et al
    . Diagnostic accuracy of computed tomographic angiography for blunt cerebrovascular injury detection in trauma patients: a systematic review and meta-analysis. Ann Surg 2013;257:621–32 doi:10.1097/SLA.0b013e318288c514 pmid:23470509
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  9. 9.↵
    1. Kaye D,
    2. Brasel KJ,
    3. Neideen T, et al
    . Screening for blunt cerebrovascular injuries is cost-effective. J Trauma 2011;70:1051–56; discussion 1056–57 doi:10.1097/TA.0b013e318211857d pmid:21610423
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  10. 10.↵
    1. Bromberg WJ,
    2. Collier BC,
    3. Diebel LN, et al
    . Blunt cerebrovascular injury practice management guidelines: the Eastern Association for the Surgery of Trauma. J Trauma 2010;68:471–77 doi:10.1097/TA.0b013e3181cb43da pmid:20154559
    CrossRefPubMed
  11. 11.↵
    1. Biffl WL,
    2. Cothren CC,
    3. Moore EE, et al
    . Western Trauma Association critical decisions in trauma: screening for and treatment of blunt cerebrovascular injuries. J Trauma 2009;67:1150–53 doi:10.1097/TA.0b013e3181c1c1d6 pmid:20009659
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  12. 12.↵
    1. Burlew CC,
    2. Sumislawski JJ,
    3. Behnfield CD, et al
    . Time to stroke: a Western Trauma Association multi-center study of blunt cerebrovascular injuries. J Trauma Acute Care Surg 2018 May 25. [Epub ahead of print] doi:10.1097/TA.0000000000001989 pmid:29847537
    CrossRefPubMed
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P. Nagpal, B.A. Policeni, M. Kwofie, G. Bathla, C.P. Derdeyn, D. Skeete
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American Journal of Neuroradiology Sep 2018, 39 (9) E104; DOI: 10.3174/ajnr.A5758

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American Journal of Neuroradiology Sep 2018, 39 (9) E104; DOI: 10.3174/ajnr.A5758
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