The Program Project seeks to determine the mechanisms responsible for the toxicities associated with acellular hemoglobins in blood and to establish biochemical and physiological strategies to prevent limit and/or reverse these adverse events. Core B is responsible for the chemical modification of wild type and mutant hemoglobins to manipulate their structure and function as required by the individual units of the Program Project. This Core will get mutant Hbs from the Project 2/Core C These mutants and wild type HbA will be chemically modified to modulate oxygen affinity and nitrite reductase activity (NR activity), cross-linked to prevent dissociation, PEGylated to increase the molecular size, viscosity and colloid osmotic pressure (COP), and oligomerized to enhance the molecular size and effective Hb concentration. This Core will coordinate with the rest of the units of the Program Project to decide the molecular characteristics of the hemoglobin products required for the studies of individual units and develop strategies to design these products. The Core will also be responsible for the preparation of nanoparticles designed in Project 3 and manipulate the preparation protocols to customize the release patterns of the enclosed components. The functions of the Core B are: 1. Synthesize PEGylated/chemically modified wild type and mutant Hbs with the specifications required by the individual units of the program at 1 to 10 g levels. 2. Determine the molecular properties of the products including O2 affinity, viscosity, colloidal oncotic pressure (COP), and molecular size. 3. Standardize the preparation of nanoparticles designed in Project 3;customize the release profiles of the enclosed components, and prepare large amounts of nanoparticles for project 1 and core D.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
5P01HL110900-02
Application #
8517810
Study Section
Heart, Lung, and Blood Initial Review Group (HLBP)
Project Start
Project End
Budget Start
2013-08-01
Budget End
2014-07-31
Support Year
2
Fiscal Year
2013
Total Cost
$307,299
Indirect Cost
$123,287
Name
Albert Einstein College of Medicine
Department
Type
DUNS #
110521739
City
Bronx
State
NY
Country
United States
Zip Code
10461
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Alayash, Abdu I (2017) Hemoglobin-Based Blood Substitutes and the Treatment of Sickle Cell Disease: More Harm than Help? Biomolecules 7:
Meng, Fantao; Alayash, Abdu I (2017) Determination of extinction coefficients of human hemoglobin in various redox states. Anal Biochem 521:11-19
Hirsch, Rhoda Elison; Sibmooh, Nathawut; Fucharoen, Suthat et al. (2017) HbE/?-Thalassemia and Oxidative Stress: The Key to Pathophysiological Mechanisms and Novel Therapeutics. Antioxid Redox Signal 26:794-813
Strader, Michael Brad; Bangle, Rachel; Parker Siburt, Claire J et al. (2017) Engineering oxidative stability in human hemoglobin based on the Hb providence (?K82D) mutation and genetic cross-linking. Biochem J 474:4171-4192
Jani, Vivek P; Mailo, Shawn; Athar, Ali et al. (2017) Blood Quality Diagnostic Device Detects Storage Differences Between Donors. IEEE Trans Biomed Circuits Syst 11:1400-1405

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