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Review Open access Aug 2026

Cyclins and Cyclin‐Dependent Kinases: Structure, Biological Functions, and Innovative Targeting Strategies in Cancer

ABSTRACT Cyclins and cyclin‐dependent kinases (CDKs) are frequently dysregulated in human cancers and represent compelling therapeutic targets. Beyond their well‐recognized roles in cell cycle control, CDK/cyclin complexes orchestrate diverse oncogenic processes, including transcription, genome maintenance, epigenetics, metabolism, and immune regulation. Deciphering the multifaceted biology of CDK/cyclin will provide valuable insights and rationales for the development of CDK/cyclin‐targeting strategies and modalities. While the clinical success of CDK4/6 inhibitors has validated CDKs as druggable targets, further efforts are urgently needed to target other CDKs and cyclins. This review critically evaluates recent mechanistic advances in CDK/cyclin biology and their pathological dysregulation across malignancies. We analyze the paradigm shift from conventional enzymatic inhibition toward proximity‐induced modulation. Specifically, we highlight emerging approaches including proteolysis‐targeting chimeras, HSP90‐mediated targeting chimeras, hydrophobic tagging, molecular glues, and autophagy‐tethering compounds that achieve selective elimination of CDKs or their cyclin partners. In parallel, we summarize strategies designed to redistribute CDK complexes and rewire transcription without enzymatic ablation, referred to as chemical inducers of proximity and transcriptional/epigenetic modulators. By integrating fundamental CDK/cyclin biology with pharmacological innovation in targeted protein degradation and kinase reprogramming, this review provides a timely roadmap for the CDK/cyclin research field and expands the frontiers of CDK/cyclin‐targeted cancer therapy.

Suya Zheng, Zhi-Peng Shen, Yuan-Fang Wu et al. · 0 citations
Open access Aug 2026

Targeted degradation of P-TEFb via MDM2 substrate substitution collapses oncogenic transcriptional programs in MDM2-amplified cancers

MDM2 is an oncogenic E3 ubiquitin ligase best known for targeting the tumor suppressor p53 and is frequently amplified in human cancers, including dedifferentiated liposarcoma (DDLPS). We show that supraphysiological MDM2 expression can be exploited to reprogram its ligase activity toward selective degradation of oncogenic transcriptional machinery. Using a substrate substitution strategy, we developed an MDM2-recruiting degrader dCDK9-010 that targets positive transcription elongation factor b, inducing its proteasomal degradation while simultaneously stabilizing p53. This dual action disrupts RNA polymerase II abundance and elongation, preferentially impairing enhancer-driven transcriptional programs that sustain tumor growth. In DDLPS models, this approach produces potent antitumor activity with favorable pharmacokinetic and safety profiles, triggers apoptosis, and enhances macrophage-mediated tumor cell clearance. These findings establish substrate substitution-based reprogramming of MDM2 as a generalizable targeted protein degradation strategy and identify MDM2 amplification as a predictive biomarker for therapeutic response across cancer types, with particular relevance to liposarcoma.

Ye Chen, Long Xie, Xian Guan et al. · 1 citation

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