GGrantIndex
Sort

17,054 grants matching genome editing

Genomic instability mediated via differential DNA repair mechanisms in B cells

$168,789
Jing Hong Wang · University Of Colorado Denver · R21 · FY2015 · CA

Modulation of Macrophage Function through Alternative Splicing in Cardiometabolic Diseases

$168,696
Jennie J Lin · University Of Pennsylvania · K08 · FY2017 · HL

Insights into pancreatic beta-cell development from a novel mouse model of neonatal diabetes

$168,576
Jennifer M Ikle · Stanford University · K08 · FY2022 · DK

Genome-wide Analysis of Heparan Sulfate using CRISPR/Cas9

$168,563
Jeffrey D Esko · University Of California, San Diego · R21 · FY2016 · CA

Cellular Signaling Pathways in the Regulation of Fetal Hemoglobin for Treatment of Sickle Cell Disease

$168,360
Scott Alan Peslak · University Of Pennsylvania · K08 · FY2021 · DK

Dissecting the role of clonal evolution in NPM1-mutant AML

$168,264
Linde A Miles · Sloan-Kettering Inst Can Research · K99 · FY2021 · CA

Dissecting the role of clonal evolution in NPM1-mutant AML

$168,264
Linde A Miles · Sloan-Kettering Inst Can Research · K99 · FY2022 · CA

Development and Support of the Pathway Tools Software

$168,219
Peter D Karp · Sri International · R01 · FY2011 · GM

Patient Specific Induced Pluripotent Stem Cell Derived Cardiomyocytes to Define Mechanisms of Electrical-Mechanical Dysfunction in DilatedCardiomyopathy

$168,156
Karim Sallam · Stanford University · K08 · FY2018 · HL

Patient Specific Induced Pluripotent Stem Cell Derived Cardiomyocytes to Define Mechanisms of Electrical-Mechanical Dysfunction in DilatedCardiomyopathy

$168,156
Karim Sallam · Stanford University · K08 · FY2020 · HL

Patient Specific Induced Pluripotent Stem Cell Derived Cardiomyocytes to Define Mechanisms of Electrical-Mechanical Dysfunction in DilatedCardiomyopathy

$168,156
Karim Sallam · Stanford University · K08 · FY2021 · HL

Patient Specific Induced Pluripotent Stem Cell Derived Cardiomyocytes to Define Mechanisms of Electrical-Mechanical Dysfunction in DilatedCardiomyopathy

$168,156
Karim Sallam · Stanford University · K08 · FY2019 · HL

Patient Specific Induced Pluripotent Stem Cell Derived Cardiomyocytes to Define Mechanisms of Electrical-Mechanical Dysfunction in DilatedCardiomyopathy

$168,156
Karim Sallam · Stanford University · K08 · FY2017 · HL

Genomics and Molecular Resources Core

$168,131
Pui-Yan Kwok · University Of California, San Francisco · P30 · FY2017 · AR

Discovery, Biology and Risk of Inherited Variants in Glioma

$168,113
Melissa L Bondy · Baylor College Of Medicine · R01 · FY2019 · CA

Functional Genomics

$168,069
Nevan J Krogan · University Of California, San Francisco · U54 · FY2021 · CA

Stem cell therapy for fracture nonunion under inflammatory diseases

$168,052
Jie Shen · Washington University · R21 · FY2021 · AR

Defining the Molecular Mechanism of Hypertrophic Cardiomyopathy with Human Induced Pluripotent Stem Cells

$168,048
Kitchener Daniel Wilson · Stanford University · K08 · FY2019 · HL

Defining the Molecular Mechanism of Hypertrophic Cardiomyopathy with Human Induced Pluripotent Stem Cells

$168,048
Kitchener Daniel Wilson · Stanford University · K08 · FY2016 · HL

Defining the Molecular Mechanism of Hypertrophic Cardiomyopathy with Human Induced Pluripotent Stem Cells

$168,048
Kitchener Daniel Wilson · Stanford University · K08 · FY2017 · HL

Defining the Molecular Mechanism of Hypertrophic Cardiomyopathy with Human Induced Pluripotent Stem Cells

$168,048
Kitchener Daniel Wilson · Stanford University · K08 · FY2018 · HL

Hematopoietic stem cell based gene therapy of breast cancer

$168,019
Andre Michael Lieber · University Of Washington · R21 · FY2016 · CA

Core Essential Genes in Primary Effusion Lymphoma Cell Lines

$168,019
Eva Henriette Gottwein · Northwestern University At Chicago · R21 · FY2017 · CA

The Role of Wnt2b in Intestinal Health

$168,005
Amy E Oconnell · Boston Children'S Hospital · K08 · FY2023 · DK

The Role of Wnt2b in Intestinal Health

$168,005
Amy E Oconnell · Boston Children'S Hospital · K08 · FY2022 · DK