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October 1, 20250 citations

Ultrafine Molybdenum Wire Braided Neurointerventional Implants: Bridging Biodegradability and Neurovascular Safety for Stroke Treatment.

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YSYunong ShenYHYiming HuangYZY. Zhang

Key Points

  • Molybdenum wire implants achieved durable aneurysm occlusion, maintaining blood homeostasis and neurological function without toxicity.
  • The implants demonstrated negligible hemolysis (<5%) and robust cytocompatibility across various neurovascular unit cells under stress conditions.
  • Integrating radiopacity and moderate corrosion, molybdenum addresses limitations of existing biodegradable materials for neurovascular use.
  • In vivo tests showed no detectable toxicity in critical organs, indicating renal clearance and selectivity across blood-brain barriers.

Abstract

Neurovascular implants for stroke intervention face a critical dilemma: permanent devices (e.g., nitinol stents, platinum coils) often trigger chronic inflammation and recurrence, whereas biodegradable alternatives (Mg, Fe, Zn alloys) lack radiopacity or raise neurotoxicity concerns. Here, we introduce φ50 µm molybdenum (Mo) wire braided implants that integrate procedural efficacy with biological safety. Mo demonstrates negligible hemolysis (<5%), platelet-inert surfaces, and preserved coagulation kinetics, together with robust cytocompatibility across neurovascular unit cells (endothelia, astrocytes, neurons) under both physiological and ischemia-reperfusion conditions. In vivo, Mo stent wires implanted in rodent carotids maintained blood homeostasis, organ integrity, and neurological function without systemic toxicity. Moreover, braided 2D Mo coils achieved durable aneurysm occlusion with controlled inflammatory resolution and progressive endothelialization, closely resembling clinical performance. Importantly, Mo ions showed no detectable accumulation in brain, kidney, lung, or spleen, attributable to renal clearance and blood-brain barrier selectivity. By coupling intrinsic radiopacity with homogeneous, moderate corrosion, Mo addresses long-standing limitations of existing biodegradable alloys. These findings position Mo as a transformative candidate for next-generation neurovascular devices, harmonizing biodegradability, safety, and imaging precision to redefine the management of both ischemic and hemorrhagic stroke.

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Cite This Study

Shen et al. (2025) studied this question.

synapsesocial.com/papers/68dd89defe798ba2fc497ebfhttps://doi.org/10.1002/advs.202511466
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