Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elongate and desaturate fatty acids to support proliferation. However, only particular subsets of cancer cells are sensitive to approaches that target fatty acid metabolism and, in particular, fatty acid desaturation3. This suggests that many cancer cells contain an unexplored plasticity in their fatty acid metabolism. Here we show that some cancer cells can exploit an alternative fatty acid desaturation pathway. We identify various cancer cell lines, mouse hepatocellular carcinomas, and primary human liver and lung carcinomas that desaturate palmitate to the unusual fatty acid sapienate to support membrane biosynthesis during proliferation. Accor...
The importance of sapienic acid (6c-16:1), a monounsaturated fatty acid of the n-10 family formed fr...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Background Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer cells. Lipid b...
Cancer cells often have characteristic changes in metabolism. Cellular proliferation, a common featu...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer c...
Fatty acids (FAs) are complex and essential biomolecules in the human body and are critical to the f...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Although saturated fatty acid (FA) (SFA) and monounsaturated FA (MUFA) are synthesized in cancer cel...
The importance of sapienic acid (6c-16:1), a monounsaturated fatty acid of the n-10 family formed fr...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elong...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Background Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer cells. Lipid b...
Cancer cells often have characteristic changes in metabolism. Cellular proliferation, a common featu...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer ce...
Background: Enhanced macromolecule biosynthesis is integral to growth and proliferation of cancer c...
Fatty acids (FAs) are complex and essential biomolecules in the human body and are critical to the f...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Although saturated fatty acid (FA) (SFA) and monounsaturated FA (MUFA) are synthesized in cancer cel...
The importance of sapienic acid (6c-16:1), a monounsaturated fatty acid of the n-10 family formed fr...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...
Canonical fatty acid metabolism describes specific enzyme-substrate interactions that result in prod...