Project 3 seeks to determine whether gene modification of transplanted CD34+ hemotopoietic stem cells (HSCs) to resist HIV infection combined with gene modification of transplanted CD8+ T cells can function coordinately to block viral rebound following sessation of ART and effectively eradicate HIV reservoirs. Specifically, we will leverage the expertise of Project 2 (novel HSC engraftment conditioning regimens) and Projects 1 and 4 (powerful gene-editing approaches including CRISPR/Cas9) to efficiently modify and engraft HSCs and autologous CD8+ T cells within an HSC transplant approach. We will test these concepts in vivo utilizing the recently developed CD34+ HSC-derived humanized BLT mouse model that recapitulates HIV infection and human immunity to HIV to accomplish the two stages of a `Defend and Destroy? HIV cure strategy: i) defend transplanted cells against future HIV infection by knocking out the HIV co-receptor CCR5 in CD34+ hematopoietic stem cells (HSCs); and ii) enhance the capacity of autologous, mature CD8+ T cells to find and destroy residual HIV infected cells by manipulating genes associated with effector function, mucosal and reservoir homing, and target cell recognition. We hypothesize that the combined approach of limiting viral spread while simultaneously enhancing immune clearance by autologous CD8+ T cell responses has the potential to achieve a functional cure of HIV infection.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program--Cooperative Agreements (U19)
Project #
5U19HL129903-05
Application #
9689076
Study Section
Special Emphasis Panel (ZAI1)
Program Officer
Thomas, John
Project Start
Project End
2021-03-31
Budget Start
2019-04-01
Budget End
2020-03-31
Support Year
5
Fiscal Year
2019
Total Cost
Indirect Cost
Name
Harvard University
Department
Type
DUNS #
082359691
City
Cambridge
State
MA
Country
United States
Zip Code
02138
Hoggatt, Jonathan; Singh, Pratibha; Tate, Tiffany A et al. (2018) Rapid Mobilization Reveals a Highly Engraftable Hematopoietic Stem Cell. Cell 172:191-204.e10
Mondal, Nandini; Dykstra, Brad; Lee, Jungmin et al. (2018) Distinct human ?(1,3)-fucosyltransferases drive Lewis-X/sialyl Lewis-X assembly in human cells. J Biol Chem 293:7300-7314
Garrison, Brian S; Rybak, Adrian P; Beerman, Isabel et al. (2017) ZFP521 regulates murine hematopoietic stem cell function and facilitates MLL-AF9 leukemogenesis in mouse and human cells. Blood 130:619-624
Lee, Jungmin; Dykstra, Brad; Spencer, Joel A et al. (2017) mRNA-mediated glycoengineering ameliorates deficient homing of human stem cell-derived hematopoietic progenitors. J Clin Invest 127:2433-2437
Gutierrez-Martinez, Paula; Rossi, Derrick J; Beerman, Isabel (2016) DNA Damage and Aging Around the Clock. Trends Mol Med 22:635-637
Palchaudhuri, Rahul; Saez, Borja; Hoggatt, Jonathan et al. (2016) Non-genotoxic conditioning for hematopoietic stem cell transplantation using a hematopoietic-cell-specific internalizing immunotoxin. Nat Biotechnol 34:738-45
Dykstra, Brad; Lee, Jungmin; Mortensen, Luke J et al. (2016) Glycoengineering of E-Selectin Ligands by Intracellular versus Extracellular Fucosylation Differentially Affects Osteotropism of Human Mesenchymal Stem Cells. Stem Cells 34:2501-2511