This $265,347 Project Grant awarded by the National Heart Lung and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research) supports the development and initial validation of a point-of-care device by Functional Fluidics Inc. to assess red blood cell sickling in patients with sickle cell disease. The goal is to create a simple, stand-alone, and potentially CLIA-waived diagnostic system that can be used to monitor patient condition and treatment response, especially for drugs affecting...
This Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), part of the Cardiovascular Diseases Research federal grant program (CFDA 93.837), aims to evaluate methods for improving the homing and engraftment efficiency of CD34+ cells from sickle cell disease (SCD) patients. The $128,100 award to the New York Blood Center, Inc. will support research to determine if co-infusing the CD34+ cells with their flow-through accessory cells, normally discarded after CD34+ cell...
This $299,790 Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports the development of novel allosteric modulators of the thrombin receptor, protease-activated receptor 1 (PAR1), called Parmodulins, for the treatment of sickle cell disease (SCD). The project aims to identify optimized Parmodulins with improved potency and oral activity, and confirm their efficacy in mouse models of SCD, including...
This Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research program) provides $483,852 to The General Hospital Corporation, doing business as Massachusetts General Hospital (MGH), to develop a high-throughput platform technology for measuring the kinetics and equilibrium concentration of sickle hemoglobin polymerization in single red blood cells. The platform will enable optimization of emerging sickle cell disease treatments, such as...
This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), part of the Cardiovascular Diseases Research program (CFDA 93.837), provides $300,000 to Gigamune, Inc. to develop an in vivo gene therapy for sickle cell disease. The project aims to test a novel lentiviral vector technology for efficiently editing hematopoietic stem cells to knockout the BCL11A enhancer, a key genetic target for sickle cell treatment. Through in vitro assays, the Phase I effort will...
The National Heart, Lung, and Blood Institute (NHLBI) awarded a $608,126 Project Grant (CFDA 93.837 - Cardiovascular Diseases Research) to the Regents of the University of Minnesota to develop and validate single-cell biomarkers for predicting clinical outcomes in sickle cell disease (SCD). The project aims to (1) define the relationship between common SCD adverse clinical outcomes and single-cell biochemical and mechanical properties, (2) determine the relationship between treatment responses...
This Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research program (CFDA 93.837), is focused on characterizing the role of the alternative complement pathway in the pathogenesis of acute chest syndrome (ACS) in sickle cell disease (SCD). The key objectives are to: 1) define the mechanisms by which complement contributes to the development of ACS using novel preclinical models, microfluidics, and in vitro assays; 2) characterize...
This $304,119 Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports the development of innovative in vitro 3D atherosclerosis models and high-throughput drug screening assays by Endomimetics LLC. The key objectives are to create an automated, precise approach for fabricating advanced 3D vascular sheet and atherosclerosis models, which will enable efficient, high-throughput testing of drug...
This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research program (CFDA 93.837), provides $637,526 to Duke University to conduct research on the role of sickle red blood cells (RBCs) in activating neutrophils and promoting vaso-occlusion in sickle cell disease (SCD). The key objectives of the research are to: 1) delineate the characteristics of sickle RBCs that contribute to neutrophil activation, 2) examine the...
This Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) provides $568,264 to SAFI Biotherapeutics Inc., a pre-clinical blood cell therapy company, to develop a scalable bioprocess for manufacturing human red blood cells (RBCs) derived from induced pluripotent stem cells (iPSCs). The goal is to create a renewable source of designer RBCs with unique antigen profiles to help identify complex antibodies in...
ENDOTHELIALIZED MICROFLUIDIC ASSAYS FOR EMERGING THERAPIES IN SICKLE CELL DISEASE - PROJECT SUMMARY SICKLE CELL DISEASE (SCD) AFFLICTS 100,000 AMERICANS AND MILLIONS OF PEOPLE WORLDWIDE, AND IS CHARACTERIZED BY ANEMIA, PAINFUL VASO-OCCLUSIVE CRISES, ISCHEMIA, INFLAMMATION, SIGNIFICANT MORBIDITY, AND EARLY MORTALITY. IN SCD, DEOXYGENATED SICKLE HEMOGLOBIN (DEOXY-HBS) POLYMERIZES, DEFORMS RED BLOOD CELLS (RBCS), CHANGES MEMBRANE PROPERTIES, AND TRIGGERS INFLAMMATION, THROMBOPHILIA, AND VASCULOPATHY. TRADITIONAL TREATMENT APPROACHES INCLUDE ROUTINE BLOOD TRANSFUSIONS AND HYDROXYUREA THERAPY WHILE BOTH OPTIONS EXHIBIT INHERENT CHALLENGES AND LIMITATIONS. RECENT EFFORTS IN DEVELOPING NEW TREATMENT APPROACHES IN SCD FOCUSED ON TARGETED THERAPIES, AIMING TO PREVENT HYPOXIA-MEDIATED POLYMERIZATION OF SICKLE HEMOGLOBIN AND THE ABNORMAL ADHESIVE INTERACTIONS BETWEEN BLOOD AND ENDOTHELIAL CELLS. ACCORDINGLY, THE FOOD AND DRUG ADMINISTRATION (FDA) HAS RECENTLY APPROVED TWO NEW TREATMENTS FOR SCD: ADAKVEO (CRIZANLIZUMAB, NOVARTIS) AND OXBRYTA (VOXELOTOR, GLOBAL BLOOD THERAPEUTICS) TO PREVENT ABNORMAL RBC ADHESION AND SICKLING. IN ADDITION TO THOSE, MANY OTHER DRUG CANDIDATES TARGETING A SPECIFIC ADHESION PATHWAY ARE CURRENTLY IN THE DEVELOPMENT STAGE. BECAUSE SCD PATHOPHYSIOLOGY IS EXTREMELY COMPLEX AND HETEROGENOUS, IT IS CRUCIAL TO PREDICT HOW/IF A PATIENT WILL BENEFIT FROM A SPECIFIC TARGETED THERAPY. AN ANTI-ADHESIVE THERAPY MAY NOT BENEFIT A CERTAIN PATIENT POPULATION OR MAY NEED TO BE SUPPLEMENTED WITH ADDITIONAL THERAPEUTIC APPROACHES (I.E., ANTI-SICKLING DRUGS). FURTHER, PATIENT-SPECIFIC RESPONSES TO SUCH THERAPIES MAY BE IMPACTED BY OR ASSOCIATED WITH CLINICAL VARIABLES (E.G., LACTATE DEHYDROGENASE LEVEL, RETICULOCYTE COUNT, HEMOGLOBIN LEVELS, ETC.). BEING ABLE TO PREDICT A PATIENT'S RESPONSE TO A CERTAIN TARGETED THERAPY, OR COMBINATION OF MULTIPLE, USING BIOMIMETIC IN VITRO TOOLS WILL SUBSTANTIALLY HELP THE ENTIRE SCD PATIENT POPULATION. THEREFORE, THERE IS AN URGENT NEED FOR NOVEL BIOMIMETIC IN VITRO ASSAYS THAT CAN SERVE AS A DRUG SCREENING PLATFORM, BOTH IN UNDERSTANDING THE EFFECT OF EMERGING THERAPIES ON A SINGLE PATIENT LEVEL AND IN SCREENING DRUG CANDIDATES FOR POTENTIAL MITIGATION OF SCD PATHOPHYSIOLOGY. OUR OBJECTIVE IN THIS STTR PHASE I/II PROPOSAL IS TO DEVELOP A STANDARDIZED AND VALIDATED ENDOTHELIALIZED MICROFLUIDIC CELLULAR ADHESION ASSAY TO PREDICT IN VITRO PATIENT-SPECIFIC RESPONSES TO A TARGETED THERAPY BY PROBING BLOOD CELL ADHESION TO ACTIVATED ENDOTHELIAL CELLS. IN PHASE I, WE PROPOSE TO STANDARDIZE AND VALIDATE THE CULTURE AND ACTIVATION OF ENDOTHELIAL CELLS AS WELL AS BLOOD CELL ADHESION WITHIN THE ENDOTHELIUM-ON- A-CHIP UNDER PHYSIOLOGICALLY RELEVANT FLOW CONDITIONS. PHASE II AIMS AND MILESTONES FOCUS ON ACTIVITIES RELATED TO DETERMINING BASELINE CELLULAR ADHESION LEVELS, ESTABLISHING THE TESTING METHODOLOGIES FOR PROOF-OF-CONCEPT, AND CLINICALLY VALIDATING THE ENDOTHELIUM-ON-A-CHIP. OUR GOAL IS TO DEMONSTRATE THE UTILITY OF THE ENDOTHELIUM-ON- A-CHIP IN PREDICTING PATIENT-SPECIFIC RESPONSES TO SINGLE AND COMBINED TARGETED THERAPIES IN SCD.