Project Grant R01HL167955

Award Date 4/15/24
Completion Date 3/31/28
Dollars Obligated $2.8M
Federal Grant Program
93.837
Assistance Type
Project Grant
Place of Performance
Pittsburgh, PA 15222, USA
Similar Awards
This Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), a division of the National Institutes of Health (NIH), provides $703,358 to Tufts Medical Center Parent, Inc. to study the role of the FHOD3 gene variant in the development of hypertrophic cardiomyopathy (HCM) and associated heart failure. The project aims to investigate how the FHOD3V1151I variant impacts cardiac autophagy and left ventricular remodeling, with the goal of identifying potential personalized...
This $618,045 federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports research to identify new mechanisms and targets for treating diastolic dysfunction in hypertrophic cardiomyopathy (HCM). The primary goals are to: 1) fully characterize three key functional domains of the cardiac thin filament that regulate relaxation, and determine the effects of known mutations on these domains; and 2)...
This $125,250 Project Grant awarded by the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) will support a 2-year research project led by Dr. James Rhee at Massachusetts General Hospital (MGH). The project aims to study the role of the cytokine FAM3D in regulating cardiac fibrosis and inflammation in heart failure. Key objectives include rigorously investigating how FAM3D governs cardiac fibroblasts and lymphatic endothelial...
The National Heart, Lung, and Blood Institute (NHLBI) awarded a $2,454,955 Project Grant under the Cardiovascular Diseases Research program (CFDA 93.837) to the Beckman Research Institute of the City of Hope. The grant titled "INTEGRATIVE ROLE OF RPS6KB1 IN PATHOLOGICAL CARDIAC REMODELING" aims to characterize the role of the RPS6KB1 protein in adaptive cardiac hypertrophy and heart failure progression, with a focus on understanding the regulation of RPS6KB1 through phosphorylation and...
This National Heart, Lung, and Blood Institute (NHLBI) Project Grant award of $788,513 under the Cardiovascular Diseases Research program (CFDA 93.837) supports research by the University of California, San Diego (UCSD) to investigate the genetic pathways and mechanisms that maintain ventricular identity in the embryonic zebrafish heart. The key objectives are to: 1) elucidate the downstream effectors of FGF-MEK-ERK signaling that regulate transcription factors and gene expression to promote...
This $777,258 federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports research to improve understanding of heart failure in hypertrophic cardiomyopathy. The award to Beth Israel Deaconess Medical Center, Inc. (Bidmc) will fund the use of cardiac magnetic resonance imaging (CMR) to characterize cardiac function and physiology in HCM patients, including assessing myocardial blood flow,...
This $866,240 National Institutes of Health National Heart, Lung and Blood Institute project grant funds the development of an innovative ablation system for inoperable hypertrophic cardiomyopathy patients at the University of Texas at Arlington from September 1, 2022 to August 31, 2025. The university researchers aim to design a controllable, localized ablation method to replace alcohol ablation and its risks. They will develop a collagenase-coated, doxorubicin-loaded degradable nanoparticle...
This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research (CFDA 93.837) program, provides $601,563.00 to the University of Texas Health Science Center at Houston (UTHealth) to investigate the roles of histone lysine demethylases KDM5A and KDM5B in the pathogenesis of heart failure. The research aims to determine the pathogenic roles and molecular targets of these two proteins in Lamin A/C-related dilated cardiomyopathy...
This Project Grant award of $167,400 from the National Heart, Lung, and Blood Institute (NHLBI)'s Cardiovascular Diseases Research program (CFDA 93.837) supports research conducted by Dr. Joshua Meisner at the University of Michigan. The research aims to elucidate the mechanical and metabolic pathways underlying MYBPC3-related hypertrophic cardiomyopathy, a leading cause of sudden death and heart failure in children and adolescents. Specifically, the project will leverage novel in vivo mouse...
This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research program (CFDA 93.837), provides $100,480 to The University of Texas Southwestern Medical Center to conduct research aimed at understanding the role of nuclear envelope proteins and DNA damage in the development of cardiomyopathy. The key objectives of this research project are to: 1) comprehensively characterize the DNA damage and DNA damage response in...

MDM2-HIF SIGNALING IN PATHOLOGICAL VENTRICULAR REMODELING - PROJECT SUMMARY: MULTIPLE ACQUIRED AND GENETIC CONDITIONS CAN LEAD TO PATHOLOGICAL LEFT VENTRICULAR HYPERTROPHY (LVH). IT HAS BEEN RECOGNIZED FOR OVER 50 YEARS THAT PATHOLOGICAL LVH IS ASSOCIATED WITH INCREASED MORTALITY IN THE HUMAN POPULATION, AND IT IS STRONGLY ASSOCIATED WITH BOTH HEART FAILURE WITH PRESERVED SYSTOLIC FUNCTION (HFPEF) AND HEART FAILURE WITH REDUCED SYSTOLIC FUNCTION (HFREF). AT THE TISSUE LEVEL, THE PRIMARY CAUSE OF LVH IS CARDIOMYOCYTE HYPERTROPHY, AND THERE ARE A MULTITUDE OF INTRACELLULAR SIGNALING PATHWAYS INVOLVED IN HYPERTROPHIC CARDIOMYOCYTE GROWTH. HOWEVER, NON-CARDIOMYOCYTE CELL POPULATIONS ALSO CONTRIBUTE TO PATHOLOGICAL VENTRICULAR REMODELING IN LVH AND THE DOWNSTREAM SEQUELAE OF THIS DISEASE. THEREFORE, IT IS CRITICAL TO UNDERSTAND NOT ONLY THE PRIMARY CAUSES OF PATHOLOGICAL CARDIOMYOCYTE GROWTH BUT ALSO HOW THE MYOCARDIAL MICROENVIRONMENT RESPONDS TO THESE CHANGES. TO UNCOVER MECHANISMS REGULATING PATHOLOGICAL LV REMODELING, WE UTILIZE MULTIPLE MURINE MODELS THAT HARBOR SARCOMERE GENE MUTATIONS WHICH ARE COMMON GENETIC CAUSES OF LVH IN HUMANS. PREVIOUSLY, WE DISCOVERED THAT LOSS OF THE SARCOMERE PROTEIN MYBPC3 CAUSES RAPID CHANGES IN EARLY POST-NATAL CARDIOMYOCYTE GROWTH THROUGH DYSREGULATED CELL CYCLE PATHWAYS CAUSING CARDIOMYOCYTE ENDOREPLICATION (DNA REPLICATION WITHOUT CELL DIVISION). NEXT, WE FOUND THAT DYSREGULATED CARDIOMYOCYTE CELL CYCLE ACTIVITY LEADS TO REPLICATION STRESS INDUCED DNA DAMAGE AND ACTIVATION OF DNA DAMAGE RESPONSE (DDR) PATHWAYS IN CARDIOMYOCYTES. WE HAVE NOW DISCOVERED THAT THE DDR EFFECTOR PROTEIN, MURINE DOUBLE MUTANT 2 (MDM2), PLAYS AN IMPORTANT ROLE IN REGULATING PATHOLOGICAL LV REMODELING IN BOTH GENETIC AND PRESSURE OVERLOAD LVH MODELS. WE HYPOTHESIZE THAT THE MDM2-HIF SIGNALING AXIS IS A KEY REGULATOR OF PATHOLOGICAL VENTRICULAR REMODELING IN GENETIC AND ACQUIRED FORMS OF MYOCARDIAL HYPERTROPHY. TO TEST THIS HYPOTHESIS, WE WILL PURSUE THE FOLLOWING AIMS: AIM 1: DEFINE HOW MDM2-HIF SIGNALING REGULATES MICROVASCULATURE DYSFUNCTION AND LV REMODELING IN GENETIC MODELS OF LVH. AIM 2: DETERMINE HOW MDM2-HIF SIGNALING REGULATES MYOCARDIAL METABOLISM IN GENETIC MODELS OF LVH. AIM 3: DEFINE HOW CARDIOMYOCYTE MDM2-HIF SIGNALING REGULATES PATHOLOGICAL LV REMODELING SECONDARY TO PRESSURE OVERLOAD IN THE ADULT HEART. AT THE CONCLUSION OF THESE INNOVATIVE AND HIGH IMPACT STUDIES, WE WILL HAVE DEFINED A NOVEL ROLE FOR MDM2-HIF SIGNALING DURING KEY STAGES OF PATHOLOGICAL LEFT VENTRICULAR REMODELING IN BOTH GENETIC AND ACQUIRED CAUSES. THROUGH SELECTIVE MODULATION OF KEY COMPONENTS OF THIS PATHWAY OUR GOAL IS TO DISRUPT MALADAPTIVE MYOCARDIAL REMODELING RESPONSES AND UNCOVER NOVEL THERAPEUTIC OPPORTUNITIES FOR BOTH GENETIC AND NON-GENETIC FORMS OF HUMAN CARDIOMYOPATHY.

Posted 4/12/24, 12:00 AM