Search PubMedSearch

Biomedical subjects

Kewei Xu

Publications and source records attributed to Kewei Xu.

2 recordsLinked to original sources

Metabolic CRISPR screening identifies RPE as a key regulator of acquired enzalutamide resistance through FKBP5 destabilization in prostate cancer.

Enzalutamide is a cornerstone therapy for castration-resistant prostate cancer (CRPC), yet acquired resistance remains a major clinical challenge. Although metabolic enzymes are increasingly recognized as modulators of therapeutic response, their specific roles-particularly their non-enzymatic functions-in sustaining enzalutamide resistance remain incompletely understood. In this study, we performed an in vivo screen using a custom metabolic CRISPR library in enzalutamide-treated xenografts and identified the pentose phosphate pathway enzyme ribulose-5-phosphate 3-epimerase (RPE) as a critical driver of enzalutamide resistance. Silencing RPE markedly restored enzalutamide sensitivity, enhanced apoptosis in vitro, and significantly suppressed tumor growth in both cell line-derived and patient-derived xenograft models. Mechanistically, RPE promoted resistance independently of its canonical enzymatic activity. Instead, RPE physically interacted with FKBP5 and promoted its ubiquitin-proteasome-mediated degradation. Loss of FKBP5 subsequently hyperactivated AKT signaling, leading to increased p-BAD and BCL-xL levels and suppression of enzalutamide-induced cell death. Conversely, disrupting the RPE-FKBP5 interaction or silencing RPE in vivo using a PSMA-targeted lipid nanoparticle system effectively abrogated these resistance phenotypes. Together, these findings illustrate how CRPC cells hijack the non-enzymatic function of a metabolic enzyme to evade antiandrogen therapy, establishing the RPE-driven degradation of FKBP5 and consequent AKT hyperactivation as a targetable vulnerability for overcoming enzalutamide resistance.

Male

Discovery and Engineering of a Rat Endogenous Retrovirus Reverse Transcriptase for Efficient Prime Editing.

CRISPR-based prime editors (PEs) install precise edits into genomic DNA without generating double-strand breaks. Their editing efficiency is highly dependent on reverse transcriptases (RTs), but efficient RT candidates remain limited. Here, we identified 19 novel active RTs by screening 558 candidates. Among them, RERV-RT, derived from Rattus norvegicus, exhibited the highest activity. Through structure-guided engineering and deep mutational scanning, we developed an optimized variant, enRERV-RT, which outperforms conventional M-MLV-RT-based PE systems by 1.20-fold in mammalian and plant cells, and by 1.88-fold at hard-to-edit loci, while enabling precise multiplex editing of functionally relevant genes. Additionally, we developed a high-throughput platform, TRAP-seq-PE, to systematically evaluate prime editor performance. Across diverse mutation types, we found that PE systems based on enRERV-RT exhibited higher editing efficiencies than those based on M-MLV-RT. Collectively, our work establishes a versatile, high-efficiency PE system, thereby facilitating advances in clinical gene therapy and precise crop breeding.

Animals