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Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
The oncoprotein SET promotes serine-derived one-carbon metabolism by regulating SHMT2 enzymatic activity
Zishan Jiao1, Mi Zhang2, Jingyuan Ning1
1State Key Laboratory of Common Mechanism Research for Major Diseases and Department of Medical Genetics, Institute of Basic Medical Sciences and School of Basic Medicine, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100005, China.
Abstract:
Cancer cells frequently reprogram one-carbon metabolic pathways to fulfill their vigorous demands of biosynthesis and antioxidant defense for survival and proliferation. Dysfunction of oncogenes or tumor suppressor genes is critically involved in this process, but the precise mechanisms by which cancer cells actively trigger one-carbon metabolic alterations remain incompletely elucidated. Here, by using untargeted metabolomic analysis, we identify the oncoprotein SE translocation (SET) as a key regulator of one-carbon metabolism in cancer cells. SET physically interacts with mitochondrial SHMT2 and facilitates SHMT2 enzymatic activity. Loss of SET profoundly suppresses serine-derived one-carbon metabolic flux, whereas reexpression of ectopic SET leads to the opposite effect. Notably, although the presence of SHMT2 is critical for SET-mediated one-carbon metabolic alterations, the depletion of SHMT2 alone is insufficient to antagonize SET-induced tumor growth, probably due to functional compensation by its cytosolic isozyme SHMT1 upon SHMT2 knockdown. Instead, pharmacological targeting of cellular SHMT (including both SHMT1 and SHMT2) activity results in dramatic suppression of SET-induced tumor growth. Moreover, by using a Kras/Lkb1 mutation-driven lung tumor mouse model, we demonstrate that the loss of SET compromises both tumor formation and intratumoral SHMT2 enzymatic activity. Clinically, the overexpression of SET and SHMT2 is observed in lung tumors, both of which correlate with poor prognosis. Our study reveals a SET-SHMT2 axis in regulating serine-derived one-carbon metabolism and uncovers one-carbon metabolic reprogramming as a mechanism for SET-driven tumorigenesis.
Insights
The oncoprotein SET regulates cancer cell metabolism by interacting with SHMT2, impacting one-carbon pathways crucial for tumor growth. Targeting SHMT1 and SHMT2 inhibits SET-driven tumor progression.
Area of Science:
- Biochemistry
- Cancer Biology
- Metabolic Pathways
Background:
- Cancer cells reprogram one-carbon metabolism for biosynthesis and antioxidant defense.
- Oncogene and tumor suppressor gene dysfunction drive metabolic alterations, but mechanisms are unclear.
Purpose of the Study:
- Identify key regulators of one-carbon metabolism in cancer.
- Elucidate the role of the oncoprotein SET in metabolic reprogramming.
- Investigate the SET-SHMT2 axis in tumorigenesis.
Main Methods:
- Untargeted metabolomic analysis to identify metabolic regulators.
- Biochemical assays to assess protein interactions and enzyme activity.
- In vivo studies using a Kras/Lkb1 lung tumor mouse model.
- Clinical analysis of SET and SHMT2 expression in human lung tumors.
Main Results:
- The oncoprotein SET was identified as a key regulator of one-carbon metabolism.
- SET physically interacts with and enhances mitochondrial SHMT2 activity.
- Loss of SET suppresses serine-derived one-carbon flux; SET reexpression increases it.
- Pharmacological inhibition of SHMT1/SHMT2 dramatically suppresses SET-induced tumor growth.
- SET loss compromises tumor formation and SHMT2 activity in a mouse model.
- SET and SHMT2 overexpression correlate with poor prognosis in lung cancer.
Conclusions:
- A novel SET-SHMT2 axis regulates serine-derived one-carbon metabolism.
- Metabolic reprogramming driven by SET is a mechanism for tumorigenesis.
- Targeting cellular SHMT offers a therapeutic strategy against SET-driven cancers.
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