Circular RNA-based therapy targeting metabolic vulnerability of fatty acid synthesis overcomes castration-resistant
Yudong Lin1, Ruyue Wang1, Fan Li1
1Department of Urology, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou 310016, China.
Abstract:
Androgen receptor (AR) signaling is essential for prostate cancer (PCa) cell growth and remains a key therapeutic target in castration-resistant PCa (CRPC). While circular RNAs (circRNAs) are increasingly recognized as important regulatory molecules, their roles in AR signaling during PCa progression remain poorly understood. This study identified circUTRN, an AR-inhibited circRNA that is upregulated following neoadjuvant hormonal therapy and downregulated in PCa tissues. circUTRN inhibits proliferation in both castration-sensitive and castration-resistant PCa. Mechanistically, circUTRN binds to acetyl-CoA carboxylase 1 (ACC1) and impairs the activity through both phosphorylation-dependent and independent pathways, thereby disturbing de novo fatty acid synthesis. The dynamic relation between circUTRN and ACC1 expression during PCa progression from treatment-naïve to therapeutic-resistant states highlights the metabolic vulnerability of fatty acid synthesis. Notably, we developed nanoparticles to deliver circUTRN in combination with AR signaling inhibitors (ARSIs). This approach effectively suppressed CRPC xenograft tumor growth, even in models resistant to next-generation ARSIs. This study reveals an AR-regulated circRNA involved in PCa progression and suggests a potential therapeutic strategy for treatment-resistant PCa.
Insights
Researchers discovered circUTRN, a circular RNA that inhibits prostate cancer (PCa) growth by disrupting fatty acid synthesis. Delivering circUTRN with AR signaling inhibitors shows promise for treating castration-resistant PCa (CRPC).
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Androgen receptor (AR) signaling is crucial for prostate cancer (PCa) and castration-resistant PCa (CRPC) progression.
- The role of circular RNAs (circRNAs) in AR signaling during PCa is not well understood.
Purpose of the Study:
- To identify and characterize novel circRNAs involved in AR signaling in PCa.
- To investigate the therapeutic potential of circUTRN in CRPC.
Main Methods:
- Identification of circUTRN as an AR-inhibited circRNA.
- Mechanistic studies involving circUTRN, acetyl-CoA carboxylase 1 (ACC1), and de novo fatty acid synthesis.
- In vivo studies using CRPC xenograft models treated with circUTRN-loaded nanoparticles and AR signaling inhibitors (ARSIs).
Main Results:
- circUTRN is downregulated in PCa tissues and inhibits proliferation in both castration-sensitive and castration-resistant PCa.
- circUTRN impairs ACC1 activity, disrupting de novo fatty acid synthesis.
- Combination therapy with circUTRN nanoparticles and ARSIs suppressed CRPC xenograft growth, including in models resistant to next-generation ARSIs.
Conclusions:
- circUTRN is an AR-regulated circRNA that plays a role in PCa progression.
- Targeting de novo fatty acid synthesis via circUTRN presents a potential therapeutic strategy for treatment-resistant PCa.
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