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Mitochondrial fusion exploits a therapeutic vulnerability of pancreatic cancer
Meifang Yu, Nicholas D. Nguyen, Yanqing Huang, Daniel Lin, Tara N. Fujimoto, Jessica M. Molkentine, Amit Deorukhkar, Ya’an Kang, F. Anthony San Lucas, Conrad J. Fernandes, Eugene J. Koay, Sonal Gupta, Haoqiang Ying, Albert C. Koong, Joseph M. Herman, Jason B. Fleming, Anirban Maitra, Cullen M. Taniguchi
Meifang Yu, Nicholas D. Nguyen, Yanqing Huang, Daniel Lin, Tara N. Fujimoto, Jessica M. Molkentine, Amit Deorukhkar, Ya’an Kang, F. Anthony San Lucas, Conrad J. Fernandes, Eugene J. Koay, Sonal Gupta, Haoqiang Ying, Albert C. Koong, Joseph M. Herman, Jason B. Fleming, Anirban Maitra, Cullen M. Taniguchi
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Research Article Gastroenterology Oncology

Mitochondrial fusion exploits a therapeutic vulnerability of pancreatic cancer

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Abstract

Pancreatic ductal adenocarcinoma (PDAC) requires mitochondrial oxidative phosphorylation (OXPHOS) to fuel its growth; however, broadly inhibiting this pathway might also disrupt essential mitochondrial functions in normal tissues. PDAC cells exhibit abnormally fragmented mitochondria that are essential to the oncogenicity of PDAC, but it was unclear if this mitochondrial feature was a valid therapeutic target. Here, we present evidence that normalizing the fragmented mitochondria of pancreatic cancer via the process of mitochondrial fusion reduces OXPHOS, which correlates with suppressed tumor growth and improved survival in preclinical models. Mitochondrial fusion was achieved by genetic or pharmacologic inhibition of dynamin-related protein-1 (Drp1) or through overexpression of mitofusin-2 (Mfn2). Notably, we found that oral leflunomide, an FDA-approved arthritis drug, promoted a 2-fold increase in Mfn2 expression in tumors and was repurposed as a chemotherapeutic agent, improving the median survival of mice with spontaneous tumors by 50% compared with vehicle. We found that the chief tumor-suppressive mechanism of mitochondrial fusion was enhanced mitophagy, which proportionally reduced mitochondrial mass and ATP production. These data suggest that mitochondrial fusion is a specific and druggable regulator of pancreatic cancer growth that could be rapidly translated to the clinic.

Authors

Meifang Yu, Nicholas D. Nguyen, Yanqing Huang, Daniel Lin, Tara N. Fujimoto, Jessica M. Molkentine, Amit Deorukhkar, Ya’an Kang, F. Anthony San Lucas, Conrad J. Fernandes, Eugene J. Koay, Sonal Gupta, Haoqiang Ying, Albert C. Koong, Joseph M. Herman, Jason B. Fleming, Anirban Maitra, Cullen M. Taniguchi

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Figure 3

Direct induction of mitochondrial fusion by Mfn2 overexpression suppresses pancreatic cancer growth.

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Direct induction of mitochondrial fusion by Mfn2 overexpression suppress...
(A) Immunoblot of 2 independent clones of Tet-On-Mfn2 KPC cells showing doxycycline-inducible expression of Mfn2. (B) Mfn2 overexpression induces fusion (original magnification, ×60; scale bar: 10 μm); mitochondrial morphology was quantified; n = 100–200 cells. Red fluorescence, mitochondria; blue fluorescence, DAPI-labeled nucleus. ***P = 0.0004 for tubular, *P = 0.025 for intermediate, ***P = 0.0003 for fragmented by unpaired t test. (C) TEM image of tumors grown in vivo with Mfn2 overexpression. Note that Mfn2 overexpression shows elongated mitochondria; average mitochondrial length in μm was quantified, compared by unpaired t test. Scale bar: 800 nm. (D) Reduced OCR with Mfn2 overexpression and quantified parameters in E. **P < 0.01 by unpaired t test. (F) Orthotopic tumor volume in C57BL/6J mice, with n = 10 per cohort. Statistical analysis by unpaired t test. (G) Kaplan-Meier survival curves of C57BL/6J mice bearing orthotopic pancreatic cancer tumor; n = 10 per cohort. (H) Lung metastatic nodules are significantly reduced with Mfn2 overexpression in 2 different clones; n = 5–10 per cohort. P value by unpaired t test. (I) Representative H&E staining (original magnification, × 20) of the lungs with metastatic nodules. Scale bar: 100 μm. Data are presented as mean  ±  SEM.

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