Bioactive Nanogels Mimicking the Antithrombogenic Nitric Oxide‐Release Function of the Endothelium

Author:

Hosseinnejad Aisa1,Ludwig Nadine2,Mersmann Sina2,Winnerbach Patrick3,Bleilevens Christian3,Rossaint Rolf3,Rossaint Jan2,Singh Smriti14ORCID

Affiliation:

1. DWI—Leibniz‐Institute for Interactive Materials e.V. Forckenbeckstr. 50 52056 Aachen Germany

2. Department of Anesthesiology Intensive Care and Pain Medicine University Hospital Münster Albert‐Schweitzer‐Campus 1, Bldg. A1 48149 Münster Germany

3. Department of Anesthesiology University Hospital RWTH Aachen Pauwelsstraße 30 52074 Aachen Germany

4. Max‐Planck‐Institut für medizinische Forschung Jahnstraße 29 69120 Heidelberg Germany

Abstract

AbstractNitric oxide (NO) plays a significant role in controlling the physiology and pathophysiology of the body, including the endothelial antiplatelet function and therefore, antithrombogenic property of the blood vessels. This property of NO can be exploited to prevent thrombus formation on artificial surfaces like extracorporeal membrane oxygenators, which when come into contact with blood lead to protein adsorption and thereby platelet activation causing thrombus formation. However, NO is extremely reactive and has a very short biological half‐life in blood, so only endogenous generation of NO from the blood contacting material can result into a stable and kinetically controllable local delivery of NO. In this regards, highly hydrophilic bioactive nanogels are presented which can endogenously generate NO in blood plasma from endogenous NO‐donors thereby maintaining a physiological NO flux. It is shown that NO releasing nanogels could initiate cGMP‐dependent protein kinase signaling followed by phosphorylation of vasodilator‐stimulated phosphoprotein in platelets. This prevents platelet activation and aggregation even in presence of highly potent platelet activators like thrombin, adenosine 5′‐diphosphate, and U46619 (thromboxane A2 mimetic).

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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