Phosphatidylserine Synthase PTDSS1 Shapes the Tumor Lipidome to Maintain Tumor-Promoting Inflammation.

梅尔特克 脂质体 磷脂酰丝氨酸 癌症研究 肿瘤微环境 炎症 肿瘤进展 细胞凋亡 乳腺肿瘤 巨噬细胞 生物 化学
作者
Divya Sekar,Christina Dillmann,Evelyn Sirait-Fischer,Annika F Fink,Aleksandra Zivkovic,Natalie Baum,Elisabeth Strack,Stephan Klatt,Sven Zukunft,Stefan Wallner,Arnaud Descot,Catherine Olesch,Priscila da Silva,Andreas von Knethen,Tobias Schmid,Sabine Grösch,Soni Savai Pullamsetti,Nerea Ferreirós,Ingrid Fleming,Sourav Ghosh,Carla V. Rothlin,Holger Stark,Hind Medyouf,Bernhard Brüne,Andreas Weigert
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:82 (8): 1617-1632
标识
DOI:10.1158/0008-5472.can-20-3870
摘要

An altered lipidome in tumors may affect not only tumor cells themselves but also their microenvironment. In this study, a lipidomics screen reveals increased amounts of phosphatidylserine (PS), particularly ether-PS (ePS), in murine mammary tumors compared with normal tissue. PS was produced by phosphatidylserine synthase 1 (PTDSS1), and depletion of Ptdss1 from tumor cells in mice reduced ePS levels accompanied by stunted tumor growth and decreased tumor-associated macrophage (TAM) abundance. Ptdss1-deficient tumor cells exposed less PS during apoptosis, which was recognized by the PS receptor MERTK. Mammary tumors in macrophage-specific Mertk-/- mice showed similarly suppressed growth and reduced TAM infiltration. Transcriptomic profiles of TAMs from Ptdss1-knockdown tumors and Mertk-/- TAMs revealed that macrophage proliferation was reduced when the Ptdss1/Mertk pathway was targeted. Moreover, PTDSS1 expression correlated positively with TAM abundance but negatively with breast carcinoma patient survival. PTDSS1 thus may be a target to modify tumor-promoting inflammation.This study shows that inhibiting the production of ether-phosphatidylserine by targeting phosphatidylserine synthase PTDSS1 limits tumor-associated macrophage expansion and breast tumor growth.
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