Baseline cellular state shapes the molecular impact of mutant KRAS alleles in reconstituted pancreatic cancer cells

KRAS is mutated in over 90% of pancreatic ductal adenocarcinomas (PDAC), where hotspot alterations in codons 12, 13, and 61 drive tumor initiation and progression. Although distinct biochemical properties have been described for individual KRAS mutants, whether they generate unique allele-specific signaling programs in PDAC cells remains unresolved. Here, we systematically interrogated the molecular consequences of seven common KRAS mutant variants in reconstituted isogenic, KRAS-deficient PDAC cell lines by integrated transcriptomic, proteomic, and phosphoproteomic profiling. We found that baseline cellular state, rather than allele identity, was the predominant driver of molecular variation. Comparisons with established KRAS reference signatures revealed significant but moderate overlap at the mRNA level and less so at the proteome level. Pathway analyses highlighted interferon response and mitochondrial translation-related proteins as recurrently altered across mutant alleles, while phosphoproteomic data confirmed robust ERK1/2 activity and suppression of DYRK kinase substrates by mutant KRAS expression. Importantly, no robust mutant allele-specific molecular programs were identified in our KRAS-reconstituted cell lines. Together, our study establishes a comprehensive multi-omics resource for KRAS signaling in PDAC and demonstrates that cellular context exerts a stronger influence than allele identity in shaping molecular profiles, with implications for interpreting putative allele-specific signaling dependencies.

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Publication Details

Journal
Molecular Omics
Published
2026-09-10
DOI
https://doi.org/10.1093/molecular-omics/aaiag022
Primary Topic
Protein Kinase Regulation and GTPase Signaling
Type
article
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article

Baseline cellular state shapes the molecular impact of mutant KRAS alleles in reconstituted pancreatic cancer cells

Yi Di, Mandar D. Muzumdar, Yansheng Liu, Benjamin E. Turk et al.
Molecular Omics
Protein Kinase Regulation and GTPase Signaling
article

Baseline cellular state shapes the molecular impact of mutant KRAS alleles in reconstituted pancreatic cancer cells

Yi Di, Mandar D. Muzumdar, Yansheng Liu, Benjamin E. Turk, Barbora Šalovská, Yanixa Quiñones-Avilés, Cassandra S. Markham
article en

Abstract

KRAS is mutated in over 90% of pancreatic ductal adenocarcinomas (PDAC), where hotspot alterations in codons 12, 13, and 61 drive tumor initiation and progression. Although distinct biochemical properties have been described for individual KRAS mutants, whether they generate unique allele-specific signaling programs in PDAC cells remains unresolved. Here, we systematically interrogated the molecular consequences of seven common KRAS mutant variants in reconstituted isogenic, KRAS-deficient PDAC cell lines by integrated transcriptomic, proteomic, and phosphoproteomic profiling. We found that baseline cellular state, rather than allele identity, was the predominant driver of molecular variation. Comparisons with established KRAS reference signatures revealed significant but moderate overlap at the mRNA level and less so at the proteome level. Pathway analyses highlighted interferon response and mitochondrial translation-related proteins as recurrently altered across mutant alleles, while phosphoproteomic data confirmed robust ERK1/2 activity and suppression of DYRK kinase substrates by mutant KRAS expression. Importantly, no robust mutant allele-specific molecular programs were identified in our KRAS-reconstituted cell lines. Together, our study establishes a comprehensive multi-omics resource for KRAS signaling in PDAC and demonstrates that cellular context exerts a stronger influence than allele identity in shaping molecular profiles, with implications for interpreting putative allele-specific signaling dependencies.

Molecular Omics
Yale Cancer Center (US), Yale University (US), Yale New Haven Health System (US), Smilow Cancer Hospital (US)
Openalex Percentile: Top 18%
Protein Kinase Regulation and GTPase Signaling
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