Aug 2026· International journal of pharmaceutics· Vol 703, pp.
127323
· 0 citations· 193 references
Medicine
TL;DR
This review provides a roadmap for translating TPD into transformative therapies and outlines key challenges including novel E3 ligase ligand discovery, tissue selectivity, and acquired resistance, and discusses how covalent fragment screening, artificial intelligence, and expanded E3 ligase repertoires will advance next-generation degraders to fulfill the promise of event-driven pharmacology.
Abstract
Targeted protein degradation (TPD) has transitioned from a paradigm-shifting concept to a clinically validated strategy, with multiple degraders achieving proof-of-concept in oncology and a rapidly expanding toolbox. By co-opting the ubiquitin-proteasome system to eliminate pathogenic proteins in an event-driven manner, TPD addresses targets long deemed undruggable. To capture this momentum, we present a comprehensive overview of the field. We dissect the mechanisms of heterobifunctional PROTACs and their clinical translation, covering late-stage programs targeting canonical oncogenic drivers (AR, ER, BTK) and emerging first-in-human studies against historically challenging targets such as STAT3 to illustrate both clinical validation and mechanistic expansion. Beyond classical PROTACs, we systematically summarize the expanding TPD toolbox: lysosome-targeting chimeras for degrading extracellular and membrane proteins, autophagy-based degraders for clearing aggregates and damaged organelles, antibody- and nucleic acid-derived PROTAC formats for tissue-specific delivery and transcription factor targeting, deubiquitinase-targeting chimeras for protein stabilization, and proximity-based post-translational modification editing, collectively demonstrating the broad reach of proximity-inducing pharmacology. By integrating molecular mechanisms with therapeutic applications, this review illustrates how TPD is reshaping the druggable proteome. We outline key challenges including novel E3 ligase ligand discovery, tissue selectivity, and acquired resistance, and discuss how covalent fragment screening, artificial intelligence, and expanded E3 ligase repertoires will advance next-generation degraders to fulfill the promise of event-driven pharmacology. This review provides a roadmap for translating TPD into transformative therapies.
This thorough analysis investigates the molecular basis of PROTAC technology, tracking its progression from an elegant intellectual notion to a clinically approved treatment platform and provides a detailed survey of the current clinical landscape.
N. Vijaya Lakshmi Reddy, M. Sarika, V. Deepika et al.· International Journal of Adv...· 0 citations
This review summarizes recent advances in chemical protein degradation strategies for neurodegenerative disorders and highlights potential future perspectives of multifunctional PROTACs for therapeutic development.
Pasquale Degennaro, Imane Ghafir El Idrissi, Rosa Purgatorio et al.· Pharmaceuticals· 0 citations
Targeted protein degradation (TPD) represents a whole new paradigm in cell-level therapeutic design, with its ability to remove target proteins, normally through the endogenous proteasomal, lysosomal, or autophagic systems, rather than the traditional occupancy-driven inhibition approach. But the clinical efficacy of degraders is becoming more restricted based on delivery rather than efficacy only. Many proteolysis-targeting chimeras and new proximity-inducing systems have low solubility, are impermeable, are pharmacodynamically complicated, lack tissue selectivity, and cannot fully access the intracellular space. Nanomedicine and PD platforms could provide strategies not only to overcome these challenges, but also to provide other advantages, including enhancing exposure to degraders, biodistribution, controlled release, and context-dependent activation. This critical review is an outline of all lipid, polymeric, inorganic, biomimetic, targeted, activatable, and self-assembling delivery systems for TPD. We assess compositional considerations, in vitro and in vivo evidence, challenges for translation, and clinical endpoints required to support delivery-enabled degradation. Trusted TPD therapeutics need to relate different aspects of their design, such as degrader chemistry, carrier structure, disease biology, and pharmacodynamic biomarkers, to one another. Further investigations are needed to establish intact delivery of the degrader to the target, target depletion in relevant tissues, prolonged pharmacodynamics, favorable safety, and compelling therapeutic benefit relative to free degraders or traditional inhibitors. Thus, it is important to view delivery not simply as an additional step during formulation but as a design principle necessary for the reliable clinical outcome of degradation medicine.
This Account systematically summarizes recent advances regarding the rational design of stimuli-activatable protein degraders, and strategically outline the "when and how" of integrating these degraders with nanomedicine platforms to tailor precise cancer therapy.
Jing Gao, Yi Lai, Bo Hou et al.· Accounts of Chemical Researc...· 0 citations
This review systematically explores AI applications in TPD development, covering the prediction and design of stable ternary complexes, rational optimization of linkers, high‐throughput screening for E3 ligase ligands, and accurate predictions of degradation efficiency and ADMET properties.