Project Grant R01HL166327
- This Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research) provides $773,868 to Baylor College of Medicine to elucidate the mechanisms regulating inflammation and the role of regulatory T cells (Tregs) in the development of bronchopulmonary dysplasia-associated pulmonary hypertension (BPD-PH). The award aims to use well-established murine models and human biosamples to examine the mechanistic and therapeutic potential of Tregs in...
- This Project Grant award of $497,628.00 from the National Heart Lung and Blood Institute, under the Cardiovascular Diseases Research program (CFDA 93.837), supports research into pulmonary vagal sensory neurons and their role in breathing abnormalities associated with bronchopulmonary dysplasia (BPD) in preterm infants. The research aims to elucidate the dose- and duration-dependent effects of neonatal hyperoxia exposure on breathing control and the functional roles of distinct populations of...
- This federal Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research) provides $166,752 to Boston Medical Center Corporation to develop models of placenta-driven developmental lung injury in human preeclampsia. The 5-year project aims to characterize the influence of human preeclampsia on fetal lung development. Specifically, the research will: 1) Identify preeclampsia-specific placental proteins in the fetal circulation that...
- This federal Project Grant award, funded by the National Heart, Lung, and Blood Institute under the Cardiovascular Diseases Research program (CFDA 93.837), supports research into the role of the hedgehog pathway and primary cilia axis in human lung alveologenesis and diseases such as bronchopulmonary dysplasia (BPD). The $156,168 grant awarded to the Lundquist Institute for Biomedical Innovation at Harbor-UCLA Medical Center will fund a 2-year study examining the cellular and molecular...
- This Project Grant award from the National Heart, Lung, and Blood Institute (CFDA Program 93.837 Cardiovascular Diseases Research) provides $730,070 to the University of Arizona to develop and test a novel class of hybrid polyplex nanoparticles (P22-F1 PBAE/PEI/PEG) that can specifically target and deliver DNA plasmids to lung capillary endothelial cells. The goal is to stimulate lung regeneration and decrease pulmonary hypertension in mouse and rat models of bronchopulmonary dysplasia, a severe...
- This $721,826 Project Grant awarded by the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports research to identify molecular mechanisms regulating alveolar matrix fibroblast function and their role in supporting vascular capillary formation. The research is being conducted by Children's Hospital Medical Center in Cincinnati, Ohio to advance the understanding of alveolar septation and septal wall maturation, which is...
- This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research program (CFDA 93.837), provides $166,395 to Columbia University to conduct a 5-year research project on the impact of hyperoxia (excess oxygen) on the function of respiratory progenitor cells in neonates. The project aims to develop a better understanding of the mechanisms by which post-natal lung development occurs in the face of injurious agents like oxygen...
- This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research program (CFDA 93.837), provides $657,308 to The Children's Hospital of Philadelphia (CHOP) to conduct research on the CXCL12 signaling axis and its role in pulmonary arterial heterogeneity, development, and disease. The key objectives of this 12-month project are to: 1) define the spatiotemporal role of CXCL12 signaling in pulmonary vascular development, 2)...
- This Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 - Cardiovascular Diseases Research) provides $106,391 to the University of Colorado-Denver to investigate the role of developmental dysanapsis in lung development over the lifespan in an experimental bronchopulmonary dysplasia (BPD) model. The research aims to determine whether intra-amniotic endotoxin causes persistent dysanaptic growth of the airways, distal parenchyma, and vasculature in BPD, and...
- This federal Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 - Cardiovascular Diseases Research) provides $586,021 to The Medical College of Wisconsin, Inc. to establish patient-reported outcome measures that refine neonatal risk stratification and identify barriers to post-discharge specialty care for preterm infants with bronchopulmonary dysplasia (BPD). The goal is to identify hospital-to-home transition strategies that reduce post-prematurity respiratory...
METABOLIC MECHANISMS UNDERLYING BRONCHOPULMONARY DYSPLASIA-ASSOCIATED PULMONARY HYPERTENSION - SUMMARY BRONCHOPULMONARY DYSPLASIA (BPD) IS A CHRONIC LUNG DISEASE IN PREMATURE INFANTS, CAUSED BY MECHANICAL VENTILATION AND HYPEROXIA AMONGST OTHER FACTORS. THIRTY PERCENT OF INFANTS WITH BPD DEVELOP PULMONARY HYPERTENSION (PH), CHARACTERIZED BY PULMONARY VASCULAR (PV) REMODELING. THERE ARE NO CURATIVE THERAPIES FOR THIS DISEASE. MY LONG-TERM GOAL IS TO DEVELOP NOVEL TARGETED THERAPIES TO TREAT BPD ASSOCIATED PH (BPD-PH). PV REMODELING IS CHARACTERIZED BY INCREASED PULMONARY ARTERIAL MEDIA LAYER THICKENING. THIS RESULTS FROM PROLIFERATION OF VASCULAR SMOOTH MUSCLE CELLS (SMCS), OR TRANSDIFFERENTIATION FROM ENDOTHELIAL CELLS (ECS) TO SMCS (I.E., ENDOTHELIAL-MESENCHYMAL TRANSITION, ENDOMT). WE HAVE SHOWN THAT HYPEROXIA IN NEWBORN MICE AND MECHANICAL VENTILATION IN PRETERM LAMBS CAUSE PV REMODELING RESULTING IN PH, WHICH IS ASSOCIATED WITH INCREASED ENDOMT. WE PRELIMINARILY SHOW THAT ENDOMT IS ALSO OBSERVED IN THE LUNG OF PREMATURE HUMAN INFANTS REQUIRING MECHANICAL VENTILATION. BLOCKING ENDOMT PREVENTS THE PROGRESSION OF NEONATAL HYPEROXIA-INDUCED PV REMODELING AND PH IN MICE, SUGGESTING THAT ENDOMT PLAYS A CAUSATIVE ROLE IN INDUCING PH. WE OBSERVED NO INCREASE IN EDU INCORPORATION INTO SMCS IN HYPEROXIA-EXPOSED MICE, SUGGESTING PROLIFERATION IN THESE CELLS DOES NOT CONTRIBUTE TO PV REMODELING IN BPD-PH. WE RECENTLY REPORTED THAT NEONATAL HYPEROXIA CAUSES A PERSISTENT REDUCTION OF ENDOTHELIAL CARNITINE PALMITOYLTRANSFERASE 1A (CPT1A), THE RATE-LIMITING ENZYME OF THE CARNITINE SHUTTLE SYSTEM RESPONSIBLE FOR TRANSPORTING LONG-CHAIN FATTY ACIDS INTO MITOCHONDRIA FOR SS-OXIDATION DURING FATTY ACID OXIDATION. OUR PRELIMINARY DATA SHOW THAT LUNG CPT1A GENE EXPRESSION IS ALSO REDUCED IN MECHANICALLY VENTILATED PRETERM LAMBS AND PREMATURE HUMAN INFANTS. ADDITIONALLY, ENDOTHELIAL DELETION OF CPT1A INCREASES ENDOMT AND PV REMODELING IN NEONATAL MICE AFTER EXPOSURE TO HYPEROXIA. FURTHERMORE, PHARMACOLOGICAL UPREGULATION OF CPT1A ATTENUATES ENDOMT IN VITRO AND PREVENTS PV REMODELING IN NEONATAL MICE IN RESPONSE TO HYPEROXIA. WHETHER NEONATAL HYPEROXIA AND MECHANICAL VENTILATION REDUCE ENDOTHELIAL CPT1A, LEADING TO PH IS YET TO BE DETERMINED. THE CENTRAL HYPOTHESIS IS THAT NEONATAL HYPEROXIA AND MECHANICAL VENTILATION CAUSE ENDOMT BY DOWNREGULATING ENDOTHELIAL CPT1A LEVELS, THEREBY RESULTING IN PV REMODELING AND PH. WE WILL TEST THIS HYPOTHESIS IN THREE SPECIFIC AIMS. AIM 1 WILL DETERMINE THE MOLECULAR MECHANISMS BY WHICH CPT1A DOWNREGULATION CONTRIBUTES TO ENDOMT. IN AIM 2, WE WILL DEFINE THE CONTRIBUTION OF ENDOTHELIAL CPT1A REDUCTION TO BPD-PH AND ENDOMT. IN AIM 3, WE WILL EVALUATE ENDOTHELIAL CPT1A AS A THERAPEUTIC TARGET FOR BPD-PH USING BOTH LAMB AND MOUSE MODELS. THE COMBINATION OF CLINICALLY RELEVANT LAMB AND MOUSE MODELS WITH OUR NEWLY GENERATED EC-SPECIFIC CPT1A KO MICE AND THE NOVEL EC-TARGETED NANOPARTICLE DELIVERY SYSTEM PROVIDES AN INNOVATIVE APPROACH TO UNCOVER THE MECHANISMS BY WHICH CPT1A DOWNREGULATION MEDIATES ENDOMT AND ITS SIGNIFICANT ROLES IN BPD-PH. THIS CONTRIBUTION IS SIGNIFICANT BECAUSE IT IS LIKELY TO RESULT IN NEW THERAPIES SPECIFICALLY TARGETING ENDOTHELIAL CPT1A OR ENDOMT IN NEONATES TO TREAT BPD-PH.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $56.1k | 6/26/25 | ||
| Not listed | $504.8k | 4/9/25 | ||
| Not listed | $504.8k | 4/9/25 | ||
| Not listed | ($407k) | 3/18/25 | ||
| Not listed | $407.4k | 3/18/25 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
00002375S | University Of Utah | Project Grant R01HL166327 | $272.0k | 12/4/23 |