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Ire1α-xbp1s signaling links lipid homeostasis to hypoxic maladaptation and kras inhibitor responses in pancreatic ductal adenocarcinoma Yanqing Jiang

Dissertations & Theses @ University of Pennsylvania Available online

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Format:
Book
Thesis/Dissertation
Author/Creator:
Jiang, Yanqing, author.
Contributor:
University of Pennsylvania. Cell and Molecular Biology., degree granting institution.
Language:
English
Subjects (All):
Cellular biology.
Oncology.
Health sciences.
Molecular biology.
0379.
0566.
0992.
0307.
Local Subjects:
Cellular biology.
Oncology.
Health sciences.
Molecular biology.
0379.
0566.
0992.
0307.
Genre:
Academic theses
Physical Description:
1 online resource (146 pages)
Contained In:
Dissertations Abstracts International 87-12B
Place of Publication:
Ann Arbor : ProQuest Dissertations and Theses, 2026
Language Note:
English
Summary:
Pancreatic ductal adenocarcinoma (PDAC) is among the most hypoxic human tumors. Because fatty acid (FA) desaturation is oxygen-dependent, hypoxia can limit monounsaturated FA (MUFA) production, increase membrane lipid saturation, and activate ER stress responses, including IRE1α-XBP1s. Here, we found that under oxygen- and MUFA-limiting conditions, spliced XBP1 (XBP1s) is upregulated but unexpectedly exerts a cytotoxic rather than cytoprotective role in PDAC cells. This effect did not differ substantially between classical and basal subtypes. However, pharmacologic or genetic inhibition of XBP1s had limited effects on tumor growth and apoptosis in vivo, suggesting that this cytotoxicity is largely bypassed by factors in the tumor microenvironment. Consistent with our previous findings that cancer-associated fibroblasts supply unsaturated lipids to tumor cells, subcutaneous tumors showed abundant α-SMA-positive stroma, supporting the possibility that stromal lipid supply protects tumors from XBP1s-dependent lipotoxicity. Although XBP1s expression increased during PDAC progression, its distribution remained focal and heterogeneous within human tumors, suggesting spatially restricted IRE1α-XBP1s pathway activation that may limit the efficacy of monotherapy in patients. However, MRTX1133-resistant PDAC became more susceptible to IRE1α-XBP1s targeting, and MRTX1133 acutely activated this pathway in parental cells upon treatment. Importantly, the IRE1α RNase inhibitor B-I09 clearly synergized with MRTX1133 in vitro and in vivo. Untargeted lipidomics further suggested that combination treatment increased ceramides, which likely contribute to enhanced tumor apoptosis in vivo. Together, these findings identify context-dependent vulnerabilities of the IRE1α-XBP1s pathway in PDAC and provide a rationale for combining inhibition of IRE1α and KRAS to enhance therapeutic responses
Notes:
Source: Dissertations Abstracts International, Volume: 87-12, Section: B.
Advisors: Simon, M. Celeste; Arany, Zoltan P. Committee members: Stanger, Ben Z.; Conn, Crystal S.; Schug, Zachary T.
Ph.D. University of Pennsylvania 2026
Vendor supplied data
Local Notes:
School code: 0175
ISBN:
9798247981961
Access Restriction:
Restricted for use by site license

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