Targeting the de novo purine synthesis pathway through adenylosuccinate lyase depletion impairs liver cancer growth by perturbing mitochondrial function Journal Article


Authors: Jiang, T.; Sánchez-Rivera, F. J.; Soto-Feliciano, Y. M.; Yang, Q.; Song, C. Q.; Bhuatkar, A.; Haynes, C. M.; Hemann, M. T.; Xue, W.
Article Title: Targeting the de novo purine synthesis pathway through adenylosuccinate lyase depletion impairs liver cancer growth by perturbing mitochondrial function
Abstract: Background and Aims: Hepatocellular carcinoma (HCC) is among the most common cancer types worldwide, yet patients with HCC have limited treatment options. There is an urgent need to identify drug targets that specifically inhibit the growth of HCC cells. Approach and Results: We used a CRISPR library targeting ~2,000 druggable genes to perform a high-throughput screen and identified adenylosuccinate lyase (ADSL), a key enzyme involved in the de novo purine synthesis pathway, as a potential drug target for HCC. ADSL has been implicated as a potential oncogenic driver in some cancers, but its role in liver cancer progression remains unknown. CRISPR-mediated knockout of ADSL impaired colony formation of liver cancer cells by affecting AMP production. In the absence of ADSL, the growth of liver tumors is retarded in vivo. Mechanistically, we found that ADSL knockout caused S-phase cell cycle arrest not by inducing DNA damage but by impairing mitochondrial function. Using data from patients with HCC, we also revealed that high ADSL expression occurs during tumorigenesis and is linked to poor survival rate. Conclusions: Our findings uncover the role of ADSL-mediated de novo purine synthesis in fueling mitochondrial ATP production to promote liver cancer cell growth. Targeting ADSL may be a therapeutic approach for patients with HCC. © 2021 by the American Association for the Study of Liver Diseases.
Journal Title: Hepatology
Volume: 74
Issue: 1
ISSN: 0270-9139
Publisher: John Wiley & Sons  
Date Published: 2021-07-01
Start Page: 233
End Page: 247
Language: English
DOI: 10.1002/hep.31685
PUBMED: 33336367
PROVIDER: scopus
PMCID: PMC8209110
DOI/URL:
Notes: Article -- Export Date: 1 September 2021 -- Source: Scopus
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