Targeted Lysosomal Degradation of Extracellular and Membrane Proteins: From Receptor Hijacking to Programmable Endolysosomal Routing

Lysosome-targeting chimeras (LYTACs) have emerged as a strategy for eliminating secreted, extracellular, and plasma-membrane proteins by redirecting them to the endolysosomal system. By coupling target recognition to receptor-mediated uptake, LYTACs exploit endogenous trafficking pathways to access disease-associated proteins beyond the reach of conventional intracellular degradation mechanisms. Related target-intrinsic and cross-linking-driven strategies can likewise promote lysosomal target delivery without recruiting a separate clearance receptor. However, target internalization alone does not establish productive degradation. Following entry, target-containing complexes encounter a competitive endosomal network in which they may recycle, undergo retrograde transport or transcytosis, remain in non-degradative compartments, or proceed to lysosomes. Here, we present a routing-centered framework for understanding and designing extracellular and membrane-protein degradation. We discuss how target biology, receptor choice, tissue distribution, ligand competition, signaling liability, molecular architecture, and intracellular sorting shape degrader performance. We also outline evidence standards for distinguishing bona fide lysosome-dependent target loss from surface depletion, redistribution, epitope masking, shedding, secretion blockade, transcriptional effects, and nonspecific toxicity. Together, these principles define the transition from receptor hijacking to programmable endolysosomal routing.

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Publication Details

Journal
Advanced Science
Published
2026-09-08
DOI
https://doi.org/10.1002/advs.77675
Primary Topic
Cellular transport and secretion
Type
article
Field-Weighted Citation Impact
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article

Targeted Lysosomal Degradation of Extracellular and Membrane Proteins: From Receptor Hijacking to Programmable Endolysosomal Routing

Xiyan Wang, Da Qian, Liquan Zhu, Xuli Meng et al.
Advanced Science
Cellular transport and secretion
article

Targeted Lysosomal Degradation of Extracellular and Membrane Proteins: From Receptor Hijacking to Programmable Endolysosomal Routing

Xiyan Wang, Da Qian, Liquan Zhu, Xuli Meng, Chaoqi He, Ke Liu, Xiaozhen Liu
article en

Abstract

Lysosome-targeting chimeras (LYTACs) have emerged as a strategy for eliminating secreted, extracellular, and plasma-membrane proteins by redirecting them to the endolysosomal system. By coupling target recognition to receptor-mediated uptake, LYTACs exploit endogenous trafficking pathways to access disease-associated proteins beyond the reach of conventional intracellular degradation mechanisms. Related target-intrinsic and cross-linking-driven strategies can likewise promote lysosomal target delivery without recruiting a separate clearance receptor. However, target internalization alone does not establish productive degradation. Following entry, target-containing complexes encounter a competitive endosomal network in which they may recycle, undergo retrograde transport or transcytosis, remain in non-degradative compartments, or proceed to lysosomes. Here, we present a routing-centered framework for understanding and designing extracellular and membrane-protein degradation. We discuss how target biology, receptor choice, tissue distribution, ligand competition, signaling liability, molecular architecture, and intracellular sorting shape degrader performance. We also outline evidence standards for distinguishing bona fide lysosome-dependent target loss from surface depletion, redistribution, epitope masking, shedding, secretion blockade, transcriptional effects, and nonspecific toxicity. Together, these principles define the transition from receptor hijacking to programmable endolysosomal routing.

Advanced Science
Hangzhou Normal University (CN), Soochow University (CN), Zhejiang Cancer Hospital (CN), Changshu No.1 People's Hospital (CN), Hangzhou Medical College (CN)
Openalex Percentile: Top 14%
Cellular transport and secretion
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