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Serine restriction alters sphingolipid diversity to constrain tumour growth
Thangaselvam Muthusamy1, Thekla Cordes1, Michal K Handzlik1
1Department of Bioengineering, University of California San Diego, La Jolla, CA, USA.
Abstract:
Serine, glycine and other nonessential amino acids are critical for tumour progression, and strategies to limit their availability are emerging as potential therapies for cancer1-3. However, the molecular mechanisms driving this response remain unclear and the effects on lipid metabolism are relatively unexplored. Serine palmitoyltransferase (SPT) catalyses the de novo biosynthesis of sphingolipids but also produces noncanonical 1-deoxysphingolipids when using alanine as a substrate4,5. Deoxysphingolipids accumulate in the context of mutations in SPTLC1 or SPTLC26,7-or in conditions of low serine availability8,9-to drive neuropathy, and deoxysphinganine has previously been investigated as an anti-cancer agent10. Here we exploit amino acid metabolism and the promiscuity of SPT to modulate the endogenous synthesis of toxic deoxysphingolipids and slow tumour progression. Anchorage-independent growth reprogrammes a metabolic network involving serine, alanine and pyruvate that drives the endogenous synthesis and accumulation of deoxysphingolipids. Targeting the mitochondrial pyruvate carrier promotes alanine oxidation to mitigate deoxysphingolipid synthesis and improve spheroid growth, similar to phenotypes observed with the direct inhibition of SPT or ceramide synthesis. Restriction of dietary serine and glycine potently induces the accumulation of deoxysphingolipids while decreasing tumour growth in xenograft models in mice. Pharmacological inhibition of SPT rescues xenograft growth in mice fed diets restricted in serine and glycine, and the reduction of circulating serine by inhibition of phosphoglycerate dehydrogenase (PHGDH) leads to the accumulation of deoxysphingolipids and mitigates tumour growth. The promiscuity of SPT therefore links serine and mitochondrial alanine metabolism to membrane lipid diversity, which further sensitizes tumours to metabolic stress.
Insights
Limiting serine and glycine availability induces toxic deoxysphingolipid synthesis, slowing tumor growth. Targeting serine palmitoyltransferase (SPT) or phosphoglycerate dehydrogenase (PHGDH) offers novel cancer therapy strategies.
Area of Science:
- Biochemistry
- Metabolic pathways
- Cancer biology
Background:
- Nonessential amino acids like serine and glycine are crucial for tumor progression.
- Molecular mechanisms and effects on lipid metabolism are not fully understood.
- Serine palmitoyltransferase (SPT) synthesizes sphingolipids and deoxysphingolipids.
Purpose of the Study:
- To investigate how amino acid metabolism influences deoxysphingolipid synthesis and tumor progression.
- To explore targeting SPT and related pathways for cancer therapy.
Main Methods:
- Exploiting SPT promiscuity to modulate endogenous deoxysphingolipid synthesis.
- Analyzing metabolic networks involving serine, alanine, and pyruvate.
- Using dietary restrictions (serine/glycine) and pharmacological inhibitors (SPT, PHGDH) in mouse xenograft models.
Main Results:
- Anchorage-independent growth reprogrammed metabolic networks, leading to deoxysphingolipid accumulation.
- Targeting the mitochondrial pyruvate carrier mitigated deoxysphingolipid synthesis and improved spheroid growth.
- Dietary serine/glycine restriction and PHGDH inhibition reduced tumor growth by inducing deoxysphingolipids.
Conclusions:
- SPT's promiscuity links serine and alanine metabolism to lipid diversity, sensitizing tumors to metabolic stress.
- Modulating deoxysphingolipid synthesis via amino acid metabolism is a viable anti-cancer strategy.
- Targeting SPT or PHGDH offers potential therapeutic avenues for cancer treatment.
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