Molecularly self-fueled nano-penetrator for nonpharmaceutical treatment of thrombosis and ischemic stroke.
Hongyuan ZhangZhiqiang ZhaoShengnan SunSen ZhangYuequan WangXuanbo ZhangJin SunZhonggui HeShenwu ZhangCong LuoPublished in: Nature communications (2023)
Thrombotic cerebro-cardiovascular diseases are the leading causes of disability and death worldwide. However, current drug therapeutics are compromised by narrow therapeutic windows, unsatisfactory thrombolysis effects, severe bleeding events, and high recurrence rates. In this study, we exploit a self-propelling nano-penetrator with high fuel loading and controllable motion features, which is molecularly co-assembled using a photothermal photosensitizer (DiR) and a photothermal-activable NO donor (BNN6). The precisely engineered nano-penetrator of the BNN6-DiR fuel pair shows distinct advantages in terms of NO productivity and autonomous motion under laser irradiation. In animal models of artery/vein thrombosis and acute ischemic stroke, the self-fueled nano-penetrator enables self-navigated thrombus-homing accumulation, self-propelled clot deep penetration, fluorescence image-guided photothermal/mechanical thrombolysis, and NO-mediated prevention of thrombosis recurrence and acute ischemic stroke salvage. As expected, the molecularly self-fueled nano-penetrator displayed favorable therapeutic outcomes without bleeding risk compared to the clinically available thrombolytic drug. This study offers a facile, safe, and effective nonpharmaceutical modality towards the clinical treatment of thrombosis and ischemic stroke.
Keyphrases
- acute ischemic stroke
- pulmonary embolism
- photodynamic therapy
- atrial fibrillation
- cardiovascular disease
- cancer therapy
- drug delivery
- multiple sclerosis
- drug release
- type diabetes
- metabolic syndrome
- adipose tissue
- small molecule
- gold nanoparticles
- insulin resistance
- reduced graphene oxide
- cardiovascular risk factors