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Biomedical Microdevices|May 20, 2009
A physiologically realistic in vitro model of microvascular networksJenna M Rosano, Nazanin Tousi, Robert C Scott, et al.
Stroke|July 17, 2012
Pharmacological stabilization of intracranial aneurysms in mice: a feasibility studyHiroshi Makino, Yoshiteru Tada, Kosuke Wada, et al.
Hypertension (Dallas, Tex. : 1979)|November 30, 2016
Caveolin-1 Deletion Prevents Hypertensive Vascular Remodeling Induced by Angiotensin IISteven J Forrester, Katherine J Elliott, Tatsuo Kawai, et al.
Journal of Cerebral Blood Flow and Metabolism : Official Journal of the International Society of Cerebral Blood Flow and Metabolism|January 19, 2024
Vitamin D deficiency promotes intracranial aneurysm ruptureTetsuro Kimura, Redi Rahmani, Takeshi Miyamoto, et al.
Journal of the American Heart Association|March 26, 2013
Evidence that acetylsalicylic acid attenuates inflammation in the walls of human cerebral aneurysms: preliminary resultsDavid M Hasan, Nohra Chalouhi, Pascal Jabbour, et al.
Stroke|October 26, 2018
Roles of Nicotine in the Development of Intracranial Aneurysm RuptureYoshinobu Kamio, Takeshi Miyamoto, Tetsuro Kimura, et al.
Journal of Cerebral Blood Flow and Metabolism : Official Journal of the International Society of Cerebral Blood Flow and Metabolism|March 12, 2015
Angiotensin-(1-7) protects against the development of aneurysmal subarachnoid hemorrhage in miceKenji Shimada, Hajime Furukawa, Kosuke Wada, et al.
Circulation Research|February 4, 2012
A caveolae-targeted L-type Ca²+ channel antagonist inhibits hypertrophic signaling without reducing cardiac contractilityCatherine A Makarewich, Robert N Correll, Hui Gao, et al.
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