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Targeted Protein Degradation and Delivery Strategies in the Context of Neurological Disorders

Haoran LuSichuan UniversityZixiao YangKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of PharmacyMuzaffar KayumovAcademy of Sciences of the Republic of UzbekistanYazhen WangState Key Laboratory of Vaccines for Infectious Diseases, Xiang An Biomedicine Laboratory, School of Pharmaceutical SciencesFanhao TangKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of PharmacyXu WangKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of PharmacyTianyue XiaKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of PharmacyTing LeiMental Health Center and Institute of Psychiatry West China Hospital Sichuan UniversityFan TongKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of PharmacyHuile GaoKey Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry, Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), West China School of Pharmacy
ACS Nanojournal2026en
ABI

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Neurological disorders represent a leading cause of global mortality and disability, yet treatment options remain limited due to the challenges of targeting pathogenic proteins, particularly those considered "undruggable" by conventional small molecules. Targeted protein degradation (TPD) has expanded the druggable proteome by harnessing proteasomal and lysosomal pathway to eliminate these targets, offering the advantages of lower toxicity and reduced resistance compared to traditional modulation. This review systematically delineates TPD mechanisms according to their degradation pathways, including proteasomal, endosomal-lysosomal, and autophagy-lysosomal systems, and highlights their unique applications in brain diseases. However, the translation of TPD to neurological disease is limited by physicochemical liabilities, cell-type dependence, risks associated with whole-protein ablation, the blood-brain barrier (BBB) and poor brain bioavailability. To address these translational barriers, we emphasize the integration of TPD with drug delivery systems (DDS) as a pivotal strategy. By optimizing pharmacokinetics, stability, and BBB penetration, nano-DDS significantly enhances brain targeting and therapeutic precision. Finally, we evaluate recent progress in nano-TPD systems and offer critical insights into their future trajectory in treating complex brain disorders.

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Koʻrsatkichlar — AkademScholar · Tez orada