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Artificial intelligence-quantified total hemorrhagic burden on susceptibility-weighted imaging in acute ischemic stroke: a multicenter cohort analysis
- Kim Baik-Kyun;
- Kim Do Yeon;
- Kim Beom Joon;
- Ryu Wi-Sun;
- Lee Myungjae;
- ... Gwak Dong-Seok;
- ... Kim Dong-Eog;
- 외 37명
SCOPUS
0초록
Background: Susceptibility-weighted imaging (SWI) reveals three forms of cerebral hemorrhagic burden: cerebral microbleeds (CMB), chronic parenchymal hemorrhage, and cortical superficial siderosis (cSS). Prior work has focused on CMB counts, whereas the other two are rarely quantified at scale; their prognostic value in ischemic stroke is thus uncertain. An artificial intelligence (AI) tool to quantify all three at registry scale was developed and tested to determine whether the resulting total hemorrhagic burden (THB) score stratifies risk.Methods: The tool was applied to the Clinical Research Collaboration for Stroke in Korea registry (16 sites). After restricting to first-ever ischemic stroke without intravenous thrombolysis or thrombectomy and pre-stroke modified Rankin Scale (mRS) ≤1, 6,124 patients were included in the analysis. THB summed the z-transformed logged values of the three components.Results: CMB, parenchymal hemorrhage, and cSS were positive in 45.8%, 17.1%, and 3.4% of patients, respectively, with distinct clinical determinants. THB was associated with 3-month poor outcome (mRS ≥3): adjusted odds ratio (OR) per standard deviation 1.19 (95% CI, 1.11–1.27; P<0.001). The ordinal mRS shift was driven by parenchymal hemorrhage volume (joint-model OR, 1.23 per log unit) and CMB count (OR, 1.19); cSS was directionally consistent but non-significant. Poor-outcome rates rose monotonically across THB tiers, from 18.6% in the lowest to 36.8% in the highest tier.Conclusion: An AI tool feasibly quantified all three SWI hemorrhagic findings at the registry scale. The resulting THB composite stratified patients by 3-month functional outcome with a tier-based gradient, thus supporting its use for risk stratification.
키워드
- 제목
- Artificial intelligence-quantified total hemorrhagic burden on susceptibility-weighted imaging in acute ischemic stroke: a multicenter cohort analysis
- 저자
- Kim Baik-Kyun; Kim Do Yeon; Kim Beom Joon; Ryu Wi-Sun; Lee Myungjae; Kim Jae Guk; Lee Soo Joo; Cha Jae-Kwan; Park Tai Hwan; Lee Jeong-Yoon; Lee Kyung Bok; Kwon Doo Hyuk; Lee Jun; Park Hong-Kyun; Cho Yong-Jin; Hong Keun-Sik; Lee Minwoo; Oh Mi Sun; Yu Kyung-Ho; Gwak Dong-Seok; Kim Dong-Eog; Kim Hyunsoo; Kim Joon-Tae; Joong Goo Kim; Choi Jay Chol; Kim Wook-Joo; Kwon Jee Hyun; Kang Kyusik; Yum Kyu Sun; Shin Dong-Ick; Hong Jeong-Ho; Sohn Sung-Il; Lee Sang-Hwa; Kim Chulho; Jeong Hae Bong; Park Chan-Young; Park Kwang-Yeol; Kim Chi Kyung; Kang Jihoon; Kim Jun Yup; Kim Jonguk; Kim Nakhoon; Kye Min-Surk; Bae Hee-Joon
- 발행일
- 2026-06
- 유형
- Y
- 권
- 19
- 호
- 1
- 페이지
- 32 ~ 45