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Biology subjects

Mateo-Victoriano, B.

Publications and source records attributed to Mateo-Victoriano, B..

2 recordsLinked to original sources

The soluble guanylyl cyclase pathway is inhibited to evade androgen deprivation-induced senescence and enable progression to castration resistance

Castration-resistant prostate cancer (CRPC) is fatal and therapeutically under-served. We describe a novel CRPC-restraining role for the vasodilatory soluble guanylyl cyclase (sGC) pathway. We discovered that sGC subunits are dysregulated during CRPC progression and its catalytic product, cyclic GMP (cGMP), is lowered in CRPC patients. Abrogating sGC heterodimer formation in castration-sensitive prostate cancer (CSPC) cells inhibited androgen deprivation (AD)-induced senescence, and promoted castration-resistant tumor growth. We found sGC is oxidatively inactivated in CRPC. Paradoxically, AD restored sGC activity in CRPC cells through redox-protective responses evoked to protect against AD-induced oxidative stress. sGC stimulation via its FDA-approved agonist, riociguat, inhibited castration-resistant growth, and the anti-tumor response correlated with elevated cGMP, indicating on-target sGC activity. Consistent with known sGC function, riociguat improved tumor oxygenation, decreasing the PC stem cell marker, CD44, and enhancing radiation-induced tumor suppression. Our studies thus provide the first evidence for therapeutically targeting sGC via riociguat to treat CRPC. Statement of significanceProstate cancer is the second highest cancer-related cause of death for American men. Once patients progress to castration-resistant prostate cancer, the incurable and fatal stage, there are few viable treatment options available. Here we identify and characterize a new and clinically actionable target, the soluble guanylyl cyclase complex, in castration-resistant prostate cancer. Notably we find that repurposing the FDA-approved and safely tolerated sGC agonist, riociguat, decreases castration-resistant tumor growth and re-sensitizes these tumors to radiation therapy. Thus our study provides both new biology regarding the origins of castration resistance as well as a new and viable treatment option.

cancer biology↗

Diet induced hyperlipidemia confers resistance to standard therapy in pancreatic cancer by selecting for "tumor protective" microbial metabolites and treatment refractory cells.

Obesity causes a number of systemic alterations including chronic inflammation and changes in gut microbiome. However, whether these actively contribute to poor survival and therapy resistance in patients with pancreatic cancer remain undetermined. Our current study shows that high fat diet fed pancreatic tumor bearing mice do not respond to standard of care therapy with gemcitabine and paclitaxel when compared to corresponding control diet fed mice. Upon fecal matter transplant from control mice to high fat diet fed mice, the tumors became sensitive to standard of care therapy and showed extensive cell death. Analysis of gut microbiome showed an enrichment of queuosine (Q) producing bacteria in high fat diet fed mice and an enrichment of S-adenosyl methionine (SAM) producing bacteria in control diet fed mice. Further, treatment of high fat diet fed animals with SAM recapitulated the observation with lean to obese fecal matter transplant. Additionally, treatment of pancreatic and colon cancer cell lines in vitro with Q promoted resistance to the paclitaxel and oxaliplatin respectively, while treatment with SAM promoted sensitivity to these drugs. Treatment of pancreatic cancer cells with Q showed upregulation PRDX1, that is involved in oxidative stress protection. Analysis of tumor tissues in high fat diet fed mice showed high PRDX1, low apoptosis and increased proliferation, which were reversed upon treatment with SAM as well as by lean to obese fecal matter transplant. In parallel, high fat diet fed mice showed increase in CD133+ treatment refractory population compared to the control animals. Interestingly, treatment with Q in vitro did not enrich for CD133+ population, indicating that Q mediated protection from cell death was independent of enrichment of treatment refractory cells. These observations indicated that microbial metabolite Q accumulated in high fat diet fed mice protected tumors from chemotherapy induced oxidative stress by upregulating PRDX1. This protection could be reversed by treatment with SAM. We conclude that relative concentration of S-adenosyl methionine and queuosine in fecal samples of pancreatic cancer patients can be indicative of therapy response in this disease.

cancer biology↗