lecture 12. stem cells, nuclear transplantation, and combined cell & gene therapy strategies

19
Lecture 12. Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Upload: conley

Post on 21-Jan-2016

19 views

Category:

Documents


0 download

DESCRIPTION

Lecture 12. Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies. Gene Defects Can be Corrected By Homologous Recombination. Embryonic Stem (ES) Cells are Derived from the Inner Cell Mass of the Blastocyst ES cells are Totipotent in vivo. - PowerPoint PPT Presentation

TRANSCRIPT

Page 1: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Lecture 12. Stem Cells, Nuclear Transplantation, and Combined Cell &

Gene Therapy Strategies

Page 2: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Gene DefectsCan be Corrected By Homologous Recombination

Page 3: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Embryonic Stem (ES) Cells are Derived from the Inner Cell Mass of the Blastocyst

ES cells are Totipotent in vivo

Totipotent=can become ALLCell Types (Including Germ Cells)

Page 4: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Adult Stem Cells can be Derived from Most Tissues:These Cells are Pluripotent

Pluripotent=Can reconstitute some, but not all, cell types

Page 5: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

ES Cells can be Induced to Differentiate into Pluripotent Stem Cells in vitro, given appropriate genetic or hormonal stimuli

Page 6: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Strategy for Today’s Paper:

Step 1:Create ES cells

by Transplanting the Nucleus of aRag2 -/- mouse

Step 2:Repair the

Rag2 gene in theES Cells

Step 3A: Test for Rescue Using Mice Created from theES Cells

Step 3B: DifferentiateES cells to HSC in vitroAnd Place these cells in

Rag2-/- Mice

Page 7: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 1A:

Page 8: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 1B:

Page 9: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 1C: Let Embryo with Nuclear Transplant DevelopTo the Blastocyst Stage and Create ntES cell lines

Page 10: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 2: Strategy for Repairing the Mutant Rag2 Allele after Nuclear Transplantation

Southern Blot showing the Repair

Page 11: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 3A: Mice Are Made From Repaired ntES Cells

T-cell Receptor Chains are Rearranged in the Rag R/- Mice

Page 12: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 3A: Mice Are Made From Repaired ntES Cells

Complete Immune System is Reconstituted in these Mice

Page 13: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Step 3A: Mice Are Made From Repaired ntES Cells

Complete Immune System is Reconstituted when BoneMarrow from these Mice is Transferred into Rag2 -/- Mice

Page 14: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Infect with HoxB4Retrovirus Vector

Step 3B: Reconstitute Mice with Pluripotent Stem CellsDerived from the Repaired ntES cells

Page 15: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Hypothesis: The ntES Derived-Stem Cells Do Not Express Correct Levels of Histocompatibility Type I Antigens and are Eliminated by Natural Killer (NK) cells.

1. Use anti-NK antibody to remove NK cells in Rag-/- Mice2. Use double KO mice: Rag2 -/- and IL-2 Common Cytokine Receptor Chain (C) -/-

As Recipients

Step 3B: First Attempts Were Unsuccessful:No Rescue of Immune System Observed

Page 16: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Results: Modest rescue of B-cells but not of T-cells

Complete RescueOf Myeloid Lineages, but only low level rescue of B-cells and T-Cells

The Repaired AlleleIs present in the Mice

Page 17: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Rearranged T-cell receptors are detected by PCR Analysis of the ntES Engrafted Mice

(~20% of WT)

Page 18: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

ntES Engrafted Mice Produce Antibodies

Page 19: Lecture 12.  Stem Cells, Nuclear Transplantation, and Combined Cell & Gene Therapy Strategies

Conclusion: Need to be able to make better HematopoieticStem Cells from the ntES cells

Simply overexpressing Hox4B with the Retrovirus Vector Favors Myeloid vs. Lymphoid Differentiation

Retrovirus Gene Transfer is ineffective for Gene Therapy.