Project Grant R21CA288449

Award Date 4/5/24
Completion Date 3/31/26
Dollars Obligated $1M
Federal Grant Program
93.395
Assistance Type
Project Grant
Place of Performance
Cleveland, OH 44109, USA
Similar Awards
This Project Grant award, provided by the National Cancer Institute under the Cancer Treatment Research program (CFDA 93.395), will fund a pilot study to evaluate the associations of pre- and post-chemotherapy and -radiotherapy gut microbiome profiles with breast cancer recurrence and mortality. The $175,000 award will support the use of shotgun metagenome sequencing on 110 post-treatment stool samples from the Vietnam Breast Cancer Study, as well as an investigation of the impact of...
This Project Grant award from the National Cancer Institute (NCI), under the Cancer Research Manpower (CFDA 93.398) program, provides $281,606 to New York University School of Medicine to conduct research aimed at harnessing gut-derived bacteria to drive anti-tumor immunity in lung cancer. The 5-year project, led by Dr. Rabi Upadhyay, an Assistant Professor at NYU, will investigate the mechanism by which certain gut commensals can trigger systemic anti-tumor immune responses, even in the absence...
This federal Project Grant award from the National Cancer Institute (NCI) under the Cancer Cause and Prevention Research program (CFDA 93.393) provides $678,399 to The University of Texas MD Anderson Cancer Center to conduct a prebiotic diet intervention study. The goal is to evaluate whether a prebiotic-enriched diet can enhance the gut microbiome and improve response to immune checkpoint inhibitor (ICI) therapy in patients with metastatic melanoma. The 5-year study will investigate the...
This Project Grant award from the National Cancer Institute (CFDA 93.393 - Cancer Cause and Prevention Research) provides $426,425 to Baylor College of Medicine to conduct a pilot study examining the relationship between gut microbiome composition, metabolic dysfunction-associated steatotic liver disease (MASLD), and hepatocellular carcinoma (HCC). The key objectives of this 2-year study are to: 1) characterize baseline gut microbiome diversity associated with MASLD with and without HCC, 2)...
This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) will fund research to identify gut microbiome genes and metabolic pathways that impact amino acid homeostasis and the tumor microenvironment, with the goal of developing a synthetic microbial community to prevent and treat cancer. The $606,839 award to Weill Medical College of Cornell University will support a 5-year project to combine bioinformatics, metabolomics, bacterial genetics, and...
This federal Project Grant award from the National Cancer Institute (CFDA 93.398 - Cancer Research Manpower) in the amount of $112,230 supports research to understand the role of gut microbiome dysbiosis in the development and progression of lung adenocarcinoma (LUAD), the most common type of non-small cell lung cancer. The research aims to determine how gut microbiome dysbiosis impacts inflammation and the immune system during LUAD development, as well as explore the preventive and early...
This federal Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $636,222 to the University of Pittsburgh to conduct research aimed at understanding how certain gut bacteria can modulate the immune system to enhance the efficacy of immune checkpoint inhibitor (ICI) cancer therapies, specifically in melanoma. The key objectives are to: Determine if ICI-associated bacteria can metabolize dietary tryptophan into aryl hydrocarbon receptor (AhR)...
This National Cancer Institute (NCI) Project Grant award under the Cancer Research Manpower (CFDA 93.398) program provides $150,701 to the University of Illinois to investigate the relationship between diet, gut microbiome, and cognitive function in breast cancer survivors undergoing chemotherapy. The key objectives are to: Determine how adherence to a Mediterranean diet and the gut microbiome are associated with cognitive function before, during, and after chemotherapy in 30 breast cancer...
This $543,221 Project Grant award from the National Cancer Institute's Cancer Biology Research program (CFDA 93.396) supports research at the Albert Einstein College of Medicine to study the cellular and molecular mechanisms underlying lineage plasticity in basal-like breast cancer (BLBC). The key objectives are to: Define the critical de-differentiated cell states driving BLBC progression and explore therapeutic strategies to target these cells for cancer interception. This involves using mouse...
This $626,893 federal Project Grant award from the National Cancer Institute (CFDA 93.396 - Cancer Biology Research) to the University of Texas MD Anderson Cancer Center will fund research to study the role of bacterial-colonized microniches within tumors and their impact on intratumoral heterogeneity. The research aims to: 1) functionally map the cellular and metabolic features of these bacterial microniches within patient tumor tissues, 2) delineate the human cell types harboring intracellular...

ROLES OF GUT-BREAST AXIS IN BREAST PATHOPHYSIOLOGY - MICROBIOME IMPACTS CANCER DEVELOPMENT AND THERAPEUTIC EFFICACY. IN ADDITION TO THE GUTS, MICROBES RESIDE IN DIFFERENT TISSUES INFLUENCING THE PATHOPHYSIOLOGY OF THE TISSUE MICROENVIRONMENT. THESE TISSUE-RESIDENT MICROBES ARE LARGELY ATTRIBUTED TO TRANSLOCATION OF GUT MICROBES. IN THE BREAST, SUCH PASSAGE IS TERMED 'GUT- BREAST AXIS', HELPING ESTABLISH MICROBIOTAS OF BREAST TISSUE AND MILK. NEVERTHELESS, GUT-BREAST AXIS HAS BEEN MOSTLY CONCEPTUALIZED AROUND PREGNANCY, AND IT IS COMPLETELY UNKNOWN WHETHER THIS AXIS INDEED EXISTS OUTSIDE PREGNANCY TO IMPACT BREAST HEALTH AND CARCINOGENESIS. OUR LONG-TERM GOAL IS TO DISSECT HOW MICROBIOME CONTRIBUTES TO BREAST PATHOPHYSIOLOGY. ESPECIALLY, THE OBJECTIVES OF THE PRESENT STUDY ARE TO DETERMINE I) WHETHER GUT-BREAST AXIS OCCURS ON A REGULAR BASIS; II) WHETHER THIS INVOLVES DISCRETE SETS OF BACTERIA FOR HEALTHY COHORTS VS. CANCER PATIENTS, AND III) WHAT ARE THEIR ROLES. OUR CENTRAL HYPOTHESIS IS THAT GUT-BREAST AXIS TAKES PLACE ON A REGULAR BASIS, INVOLVING DISTINCT SETS OF BACTERIA TO CONFER ANTI-TUMOR EFFECTS ON HEALTHY COHORTS VS. PRO-TUMOR EFFECTS ON CANCER PATIENTS. THE PROPOSED RESEARCH IS BASED ON OUR PRELIMINARY STUDIES ALLOWING US TO HARVEST SPECIFIC GUT MICROBIOTAS FROM TUMOR-PROTECTED OR -SUSCEPTIBLE ANIMALS. WE REPORTED THAT SUPPLEMENTING SEPIAPTERIN (SEP)-THE ENDOGENOUS PRECURSOR OF TETRAHYDROBIOPTERIN (THE COFACTOR OF NITRIC OXIDE (NO) SYNTHASE)-NORMALIZED ARGININE METABOLISM AND IMPROVED THE IMMUNOGENICITY OF HER2-POSITIVE MAMMARY TUMORS. WE THEN ORALLY APPLIED SEP TO MICE PRONE TO HER2-POSITIVE MAMMARY TUMORS AND SAW STRONG TUMOR PREVENTION. THESE MICE ALSO SHOWED INCREASES IN NO LEVELS AND NO-PRODUCING BACTERIA IN THE GUTS. BESIDES, EXTRACTS OF THESE GUT BACTERIA ACTIVATED INNATE IMMUNE CELLS, SUGGESTING THE ROLES OF THESE GUT BACTERIA IN ANTI- TUMOR IMMUNITY. HERE, WE WILL DETERMINE WHETHER THESE GUT BACTERIA PHYSICALLY TRANSLOCATE TO THE BREAST TO EXERT TUMOR PREVENTATIVE EFFECTS. OUR HYPOTHESIS WILL BE TESTED THROUGH TWO SPECIFIC AIMS: 1) DETERMINE WHETHER GUT MICROBIOTAS OF A) TUMOR-PROTECTED VS. B) -SUSCEPTIBLE MICE EXERT ANTI-TUMOR VS, PRO-TUMOR EFFECTS; AND 2) DETERMINE WHETHER DISTINCT SETS OF GUT MICROBES ARE TRANSLOCATED TO MAMMARY GLANDS TO EXERT ANTI-TUMOR VS. PRO-TUMOR EFFECTS. IN AIM 1, WE WILL TRANSPLANT GUT MICROBIOTA OF A) TUMOR-PROTECTED (SEP-TREATED) OR B) - SUSCEPTIBLE (DMSO-TREATED) HER2 MICE INTO RECIPIENTS AND GIVE THE INVERSE DRUG TREATMENTS. WE WILL TEST WHETHER THE TRANSPLANTED MICROBIOTAS ANTAGONIZE THE TREATMENTS. IN AIM 2, GUT MICROBIOTA OF A) TUMOR-PROTECTED (SEP) VS B) -SUSCEPTIBLE (DMSO) MICE ARE DIFFERENTIALLY LABELED, AND THE 50:50 MIXTURE IS GIVEN TO THE RECIPIENTS UNDERGOING SEP OR DMSO TREATMENT. LABELED MICROBES ARE ANALYZED FOR THEIR GUT-BREAST TRANSLOCATION; THEIR RATIOS IN THE BREAST; AND THE CONTRIBUTIONS OF BREAST MICROBIOTA TO THE DRUG EFFECTS. THE PROPOSED STUDY IS INNOVATIVE BECAUSE THIS IS THE FIRST TIME TO CORROBORATE GUT-BREAST AXIS AND ITS CONTRIBUTIONS TO BREAST PATHOPHYSIOLOGY. THE STUDY IS SIGNIFICANT BECAUSE IT WILL HAVE A POSITIVE TRANSLATIONAL IMPACT BY JUSTIFYING THE DEVELOPMENT OF A NEW BREAST CANCER TREATMENT OR PREVENTION STRATEGY FOCUSED ON BREAST MICROBIOTA.

Posted 4/5/24, 12:00 AM