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T Cell-Mediated Antitumor Immunity Cooperatively Induced By TGFβR1 Antagonism and Gemcitabine Counteracts Reformation of the Stromal Barrier in Pancreatic Cancer

delete2021-08-10
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OA
AI
D
Dandan Li
N
Nicholas P. Schaub
T
Theresa M. Guerin
T
Tashinga E. Bapiro
F
Frances M. Richards
V
Vicky Chen
K
Keyur Talsania
P
Parimal Kumar
D
Debra J. Gilbert
J
Jerome Schlomer
S
Seong‐Jin Kim
R
Rebecca Sorber
Y
Yaroslav Teper
W
Wendy Bautista
C
Claudia Palena
C
Chan‐Young Ock
D
Duncan I. Jodrell
N
Nathan Pate
M
Monika Mehta
Y
Yongmei Zhao
S
Serguei Kozlov *
U
Udo Rudloff *
DOI:10.1158/1535-7163.MCT-20-0620delete
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Abstract

Abstract

En 中文
The desmoplastic stroma of pancreatic cancers forms a physical barrier that impedes intratumoral drug delivery. Attempts to modulate the desmoplastic stroma to increase delivery of administered chemotherapy have not shown positive clinical results thus far, and preclinical reports in which chemotherapeutic drugs were coadministered with antistromal therapies did not universally demonstrate increased genotoxicity despite increased intratumoral drug levels. In this study, we tested whether TGF beta antagonism can break the stromal barrier, enhance perfusion and tumoral drug delivery, and interrogated cellular and molecular mechanisms by which the tumor prevents synergism with coadministered gemcitabine. TGF beta inhibition in genetically engineered murine models (GEMM) of pancreas cancer enhanced tumoral perfusion and increased intratumoral gemcitabine levels. However, tumors rapidly adapted to TGF beta-dependent stromal modulation, and intratumoral perfusion returned to pre-treatment levels upon extended TGF beta inhibition. Perfusion was governed by the phenotypic identity and distribution of cancer-associated fibroblasts (CAF) with the myelofi-broblastic phenotype (myCAFs), and myCAFs which harbored unique genomic signatures rapidly escaped the restricting effects of TGF beta inhibition. Despite the reformation of the stromal barrier and reversal of initially increased intratumoral exposure levels, TGF beta inhibition in cooperation with gemcitabine effectively suppressed tumor growth via cooperative reprogramming of T regulatory cells and stimulation of CD8 T cell-mediated antitumor activity. The antitumor activity was further improved by the addition of anti-PD-L1 immune checkpoint blockade to offset adaptive PD-L1 upregulation induced by TGF beta inhibition. These findings support the development of combined antistroma anticancer therapies capable of impacting the tumor beyond the disruption of the desmoplastic stroma as a physical barrier to improve drug delivery.
Keywords:
TGF-BETA
FIBROBLAST ACTIVATION
DUCTAL ADENOCARCINOMA
EFFECTOR/MEMORY
CHEMOTHERAPY
SUPPRESSION
INHIBITION
FOLFIRINOX
BLOCKADE
DELIVERY
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Journal

Molecular Cancer Therapeutics cover
Molecular Cancer Therapeutics
IF:
5.5
Papers:
9.0K
Citations:
2.0W

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N
national institutes of health (nih) - usa
Scholars:
10.2W
Papers: 8.2W
Citations: 111
A
AstraZeneca
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2.1W
Papers: 1.1W
Citations: 36
G
GlaxoSmithKline
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1.8W
Papers: 9.6K
Citations: 39
F
Frederick National Laboratory for Cancer Research
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2.0K
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Citations: 5.8K
N
nih national cancer institute (nci)
Scholars:
2.1W
Papers: 1.6W
Citations: 27
C
cruk cambridge institute
Scholars:
2.0K
Papers: 1.2K
Citations: 10
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