Conversational Artificial Intelligence-Enabled Precision Oncology Reveals Context-Specific TGFβ and JAK/STAT

Fernando C Diaz1, Brigette Waldrup2, Francisco G Carranza2

  • 1Lineberger Comprehensive Cancer Center, University of North Carolina, Chapel Hill, NC, United States.

Abstract

Insights

Pancreatic cancer (PDAC) shows distinct TGFβ and JAK/STAT pathway alterations. TGFβ pathway disruptions are common, driven by SMAD4. TGFBR2 mutations may increase with gemcitabine treatment in late-onset PDAC.

Area of Science:

  • Oncology
  • Genomics
  • Bioinformatics

Background:

  • Pancreatic ductal adenocarcinoma (PDAC) presents complex molecular features and limited treatment response.
  • Understanding molecular pathways like TGFβ and JAK/STAT is crucial for PDAC treatment variation.
  • Genomic architecture of these pathways in PDAC patient subgroups is not well-defined.

Purpose of the Study:

  • Investigate TGFβ and JAK/STAT pathway alterations in PDAC.
  • Analyze pathway-level and gene-level changes based on age and gemcitabine treatment.
  • Utilize AI for pathway interrogation in a clinically stratified cohort.

Main Methods:

  • Employed a conversational AI framework for pathway analysis.
  • Integrated clinical and molecular data from 184 PDAC patients.
  • Stratified patients by age and gemcitabine exposure for analysis.

Main Results:

  • TGFβ pathway alterations found in 25-33% of PDAC tumors, mainly due to SMAD4 mutations.
  • TGFBR2 mutations were more frequent in late-onset PDAC patients receiving gemcitabine (8.8% vs 1.4%, p=0.04).
  • JAK/STAT pathway alterations were rare, with no significant differences based on age or treatment.

Conclusions:

  • TGFβ and JAK/STAT pathways have distinct genomic profiles in PDAC.
  • SMAD4 alterations are key drivers of TGFβ pathway disruption.
  • TGFBR2 enrichment in treated tumors suggests context-specific roles; JAK/STAT alterations are infrequent, implying non-genomic regulation.

Related Concept Videos

Adaptive Mechanisms in Cancer Cells02:53

Adaptive Mechanisms in Cancer Cells

Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
Adaptive Mechanisms in Cancer Cells02:53

Adaptive Mechanisms in Cancer Cells

Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
Cancer-Critical Genes I: Proto-oncogenes01:33

Cancer-Critical Genes I: Proto-oncogenes

Genes usually encode proteins necessary for the proper functioning of a healthy cell. Mutations can often cause changes to the gene expression pattern, thereby altering the phenotype.
When the function of certain critical genes, especially those involved in cell cycle regulation and cell growth signaling cascades, gets disrupted, it upsets the cell cycle progression. Such cells with unchecked cell cycles start proliferating uncontrollably and eventually develop into tumors.
Such genes that act...
PI3K/mTOR/AKT Signaling Pathway01:22

PI3K/mTOR/AKT Signaling Pathway

The mammalian target of rapamycin  (mTOR) is a serine/threonine kinase that regulates growth, proliferation, and cell survival in response to hormones, growth factors, or nutrient availability. This kinase exists in two structurally and functionally distinct forms: mTOR complex 1  (mTORC1) and mTOR complex 2  (mTORC2). The first form (mTORC1) is composed of a rapamycin-sensitive Raptor and proline-rich Akt substrate, PRAS40. In contrast,  mTORC2 consists of a rapamycin-insensitive companion...
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...