CT Perfusion Derived rCBV < 42% Lesion Volume Is Independently Associated with Followup FLAIR Infarct Volume in Anterior Circulation Large Vessel Occlusion
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design
2.2. Study Participants
2.3. Data Collection
2.4. CTP Image Acquisition
2.5. Image Analysis
2.6. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Study Demographics (n = 158) | Median (Interquatile Range) or Number (Percentage) |
---|---|
Age | 68 (60–77) |
Sex | |
Female | 83 (52.53%) |
Male | 75 (47.47%) |
Race | |
African American | 70 (44.30%) |
Caucasian | 79 (50.00%) |
Asian | 4 (2.53%) |
Others | 5 (3.16%) |
Comorbidities | |
Hypertension | 126 (79.75%) |
Hyperlipidemia | 79 (50.00%) |
Diabetes Mellitus | 41 (25.95%) |
Heart Disease | 77 (48.73%) |
Atrial Fibrillation | 57 (36.08%) |
Smoking | 74 (46.84%) |
Prior stroke or transient Ischemic Attack | 30 (18.99%) |
Study Cohort (n = 158) | Median (Interquatile Range) or Number (Percentage) |
---|---|
Vessel Occluded | |
M1 | 114 (72.15%) |
Proximal M2 | 32 (20.25%) |
Supraclinoid ICA | 12 (7.59%) |
Alberta Stroke Program Early CT Score (ASPECTS) | |
0 | 2 (1.27%) |
1 | 1 (0.63%) |
2 | 4 (2.53%) |
3 | 3 (1.90%) |
5 | 10 (6.33%) |
6 | 8 (5.06%) |
7 | 12 (7.59%) |
8 | 27 (17.09%) |
9 | 22 (13.92%) |
10 | 69 (43.67%) |
CT Perfusion Parameter | |
rCBV < 42% (mL) | 6.00 (0.00–33.00) |
rCBF < 30% (mL) | 7.50 (0.00–38.00) |
Tmax > 6 s (mL) | 110.00 (66.00–161.00) |
MRI Parameter | |
FLAIR Volume (mL) | 32.25 (7.12–114.52) |
Study Cohort (n = 158) | Median (Interquatile Range) or Number (Percentage) |
---|---|
Symptom onset to door time in minutes | 66.00 (44.00–105.00) |
Door-to-CT time in minutes | 30.00 (21.00–46.00) |
Door-to-needle time in minutes | 59.00 (47.50–82.50) |
Door-to-groin puncture time in minutes | 178.00 (133.00–221.00) |
Door-to-recanalization time in minutes | 32.00 (24.00–53.00) |
Symptom onset to MRI time in days | 2.00 (1.00–3.00) |
Study Cohort (n = 158) | Median (Interquatile Range) or Number (Percentage) |
---|---|
Intravenous tissue-type plasminogen activator (IV tPA) | 51 (32.28%) |
Mechanical thrombectomy (MT) | 130 (82.28%) |
Admission NIH Stroke Scale | 15 (10–20) |
Premorbid Modified Rankin Score (mRS) | |
0 | 100 (65.79%) |
1 | 20 (13.16%) |
2 | 11 (7.24%) |
3 | 19 (12.50%) |
4 | 1 (0.66%) |
5 | 1 (0.66%) |
Modified treatment in cerebral infarction (mTICI) | |
0 | 6 (4.96%) |
1 | 1 (0.83%) |
2A | 4 (3.31%) |
2B | 27 (22.31%) |
2C | 17 (14.05%) |
3 | 66 (54.55%) |
Variables | Unstandardized Coefficients | Multivariable Regression Model | ||||
---|---|---|---|---|---|---|
Unadjusted Beta | Standard Error | Adjusted Beta | Lower Bound | Upper Bound | p Value | |
rCBV < 42% | 1.48 | 0.18 | 0.60 | 1.133 | 1.83 | <0.001 |
Age | −0.56 | 0.40 | −0.10 | −1.36 | 0.23 | 0.16 |
Sex | −4.33 | 10.56 | −0.03 | −25.27 | 16.61 | 0.68 |
Race | 3.78 | 7.74 | 0.03 | −11.58 | 19.13 | 0.63 |
Hypertension | 18.14 | 14.21 | 0.09 | −10.06 | 46.34 | 0.21 |
Hyperlipidemia | −11.68 | 10.75 | −0.07 | −33.01 | 9.65 | 0.28 |
Diabetes Mellitus | 28.39 | 12.27 | 0.16 | 4.04 | 52.73 | <0.05 |
Heart Disease | 0.67 | 12.08 | 0.004 | −23.29 | 24.63 | 0.96 |
Atrial Fibrillation | 5.17 | 12.24 | 0.03 | −19.12 | 29.46 | 0.67 |
Occlusion Segment | −0.81 | 3.56 | −0.02 | −7.87 | 6.26 | 0.82 |
Prior transient Ischemic Attack or stroke | 7.58 | 14.62 | 0.04 | −21.43 | 36.58 | 0.61 |
Intravenous tissue-type plasminogen activator (IV tPA) | −22.00 | 11.69 | −0.13 | −45.15 | 1.14 | 0.06 |
Admission NIH Stroke Scale | 0.89 | 0.83 | 0.08 | −0.76 | 2.55 | 0.29 |
Premorbid Modified Rankin Score (mRS) | −0.48 | 5.29 | −0.007 | −10.98 | 10.02 | 0.93 |
Alberta Stroke Program Early CT Score (ASPECTS) | −9.37 | 2.99 | −0.21 | −15.29 | −3.44 | <0.01 |
The modified treatment in cerebral infarction (mTICI) score | −14.58 | 3.40 | −0.28 | −21.33 | −7.825 | <0.001 |
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Lakhani, D.A.; Balar, A.B.; Salim, H.; Koneru, M.; Wen, S.; Ozkara, B.; Lu, H.; Wang, R.; Hoseinyazdi, M.; Xu, R.; et al. CT Perfusion Derived rCBV < 42% Lesion Volume Is Independently Associated with Followup FLAIR Infarct Volume in Anterior Circulation Large Vessel Occlusion. Diagnostics 2024, 14, 845. https://doi.org/10.3390/diagnostics14080845
Lakhani DA, Balar AB, Salim H, Koneru M, Wen S, Ozkara B, Lu H, Wang R, Hoseinyazdi M, Xu R, et al. CT Perfusion Derived rCBV < 42% Lesion Volume Is Independently Associated with Followup FLAIR Infarct Volume in Anterior Circulation Large Vessel Occlusion. Diagnostics. 2024; 14(8):845. https://doi.org/10.3390/diagnostics14080845
Chicago/Turabian StyleLakhani, Dhairya A., Aneri B. Balar, Hamza Salim, Manisha Koneru, Sijin Wen, Burak Ozkara, Hanzhang Lu, Richard Wang, Meisam Hoseinyazdi, Risheng Xu, and et al. 2024. "CT Perfusion Derived rCBV < 42% Lesion Volume Is Independently Associated with Followup FLAIR Infarct Volume in Anterior Circulation Large Vessel Occlusion" Diagnostics 14, no. 8: 845. https://doi.org/10.3390/diagnostics14080845
APA StyleLakhani, D. A., Balar, A. B., Salim, H., Koneru, M., Wen, S., Ozkara, B., Lu, H., Wang, R., Hoseinyazdi, M., Xu, R., Nabi, M., Mazumdar, I., Cho, A., Chen, K., Sepehri, S., Hyson, N., Urrutia, V., Luna, L., Hillis, A. E., ... Yedavalli, V. S. (2024). CT Perfusion Derived rCBV < 42% Lesion Volume Is Independently Associated with Followup FLAIR Infarct Volume in Anterior Circulation Large Vessel Occlusion. Diagnostics, 14(8), 845. https://doi.org/10.3390/diagnostics14080845