Sep 2026· Cell Chemical Biology· Vol 33, pp. 1333-1341.e4· 0 citations· 39 references
Medicine
TL;DR
This work developed orthogonal methods to increase production or enhance stability of β-catenin, an important oncoprotein and target for degrader therapeutics, and used the dTAG system to evaluate the consequences for PROTAC activity.
Abstract
Protein degrader drugs such as PROTACs are being advanced as therapeutics targeted against oncogenic proteins. During tumorigenesis, oncogenic proteins can become constitutively activated via mechanisms including gene amplification, which increases protein production, and point mutations, which can extend protein half-life. Few experimental studies have addressed how disease-associated changes in target protein homeostasis influence PROTAC activity. We developed orthogonal methods to increase production or enhance stability of β-catenin, an important oncoprotein and target for degrader therapeutics, and used the dTAG system to evaluate the consequences for PROTAC activity. Stabilizing oncogenic missense mutations increase protein expression up to 5-fold but do not alter the PROTAC-imposed minimal steady-state level. In contrast, transcriptional upregulation increases both pre- and post-treatment target levels, revealing a synthesis-dependent ceiling on achievable depletion. Our results highlight distinct constraints on PROTAC activity arising from different mechanisms of oncogene activation, with potential implications for preclinical modeling, drug resistance and personalized medicine.
The molecular mechanisms by which the UPS contributes to targeted therapy resistance in NSCLC are summarized, recent progress in emerging UPS-targeting strategies are evaluated, and the major barriers impeding their clinical translation are critically discussed.
Advances establish PROTAC technology as a transformative platform in modern drug discovery while emphasizing the scientific and translational challenges that must be addressed to enable broader clinical application.
Sandip Badadhe, Vikas B. Gawali, Mahesh D. Bhalsing et al.· Discover Chemistry· 0 citations
Optimized ligand-linker design, tumor-selective E3 ligases, prodrug strategies and biomarker-guided clinical trials are expected to greatly promote the clinical development of PROTAC-based anticancer therapies.
Yu-Ting Fu· Theoretical and Natural Scie...· 0 citations
This Review examines the molecular engineering principles of bifunctional degraders and summarizes clinical progress demonstrating synergy with immune checkpoint blockade and adoptive cell therapy, and discusses how catalytic protein elimination overcomes primary immune evasion and adaptive resistance driven by compens...
Fu-Rong Zhang, Qian-Heng Wang, Ming-Xuan Li et al.· Frontiers in Immunology· 0 citations
Drug resistance remains a major barrier to durable targeted therapy, and cancer progression often reflects rewiring of signalling pathways that control protein stability. Dysregulation of the ubiquitin–proteasome system, including failure of degron-dependent substrate recognition, can stabilise oncogenic proteins, acce...
Jia-Xin Li, Shu-Han Liu, Lu Fu et al.· Frontiers in Cell and Develo...· 0 citations
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.