Heterogeneity and Penumbra of White Matter Hyperintensities in Small Vessel Diseases Determined by Quantitative MRI

医学 高强度 磁共振成像 白质 半影 神经影像学 白质疏松症 磁共振弥散成像 病理 冲程(发动机) 放射科 心脏病学 缺血 机械工程 精神科 工程类
作者
Paulien H.M. Voorter,Michael Stringer,Maud van Dinther,Daniëlle Kerkhofs,Anna Dewenter,Gordon W. Blair,Michael J. Thrippleton,Daniela Jaime García,Francesca M. Chappell,Esther Janssen,Anna Kopczak,Julie Staals,Michael Ingrisch,Marco Duering,Fergus Doubal,Martin Dichgans,Robert J. van Oostenbrugge,Jacobus F.A. Jansen,Joanna M. Wardlaw,Walter H. Backes
出处
期刊:Stroke [Lippincott Williams & Wilkins]
卷期号:56 (1): 128-137 被引量:1
标识
DOI:10.1161/strokeaha.124.047910
摘要

BACKGROUND: White matter hyperintensities (WMHs) are established structural imaging markers of cerebral small vessel disease. The pathophysiologic condition of brain tissue varies over the core, the vicinity, and the subtypes of WMH and cannot be interpreted from conventional magnetic resonance imaging. We aim to improve our pathophysiologic understanding of WMHs and the adjacently injured normal-appearing white matter in terms of microstructural and microvascular alterations using quantitative magnetic resonance imaging in patients with sporadic and genetic cerebral small vessel disease. METHODS: Structural T 2 -weighted imaging, multishell diffusion imaging, and dynamic contrast–enhanced magnetic resonance imaging were performed at 3T in 44 participants with sporadic cerebral small vessel disease and 32 participants with monogenic cerebral small vessel disease (cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy; 59±12 years, 41 males) between June 2017 and May 2020 as part of the prospective, multicenter (Edinburgh, the United Kingdom; Maastricht, the Netherlands; and Munich, Germany), observational INVESTIGATE-SVDs study (Imaging Neurovascular, Endothelial and Structural Integrity in Preparation to Treat Small Vessel Diseases). The mean diffusivity, free water content, and perfusion (all derived from multishell diffusion imaging), as well as the blood-brain barrier leakage and plasma volume fraction (derived from dynamic contrast–enhanced magnetic resonance imaging), were compared between deep and periventricular WMH types using paired t tests. Additional spatial analyses were performed inside and outside the WMH types to determine the internal heterogeneity and the extent of the penumbras, that is, adjacent white matter at risk for conversion to WMH. RESULTS: Periventricular WMH had higher mean diffusivity, higher free water content, and more plasma volume compared with deep WMH ( P <0.001, P =0.01, and P <0.001, respectively). No differences were observed in perfusion ( P =0.94) and blood-brain barrier leakage ( P =0.65) between periventricular and deep WMHs. The spatial analyses inside WMH and the adjacent white matter revealed a gradual gradient in white matter microstructure, free water content, perfusion, and plasma volume but not in blood-brain barrier leakage. CONCLUSIONS: We showed different pathophysiological heterogeneity of the 2 WMH types. Periventricular WMHs display more severe damage and fluid accumulation compared with deep WMH, whereas deep WMHs reflect stronger hypoperfusion in the lesion’s core. REGISTRATION: URL: https://www.isrctn.com ; Unique identifier: ISRCTN10514229.
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