It was a exciting moment when these iPS cells were used successfully to cue a hematopoietic disease mouse model. And this group in Boston (Dr. Jaenisch R.) cues another neural disease this time! Two application now.
Science. 2007 Dec 21;318(5858):1920-3.
Treatment of sickle cell anemia mouse model with iPS cells generated from autologous skin.
Hanna J, Wernig M, Markoulaki S, Sun CW, Meissner A, Cassady JP, Beard C, Brambrink T, Wu LC, Townes TM, Jaenisch R.
Whitehead Institute for Biomedical Research, Cambridge, MA 02142, USAIt has recently been demonstrated that mouse and human fibroblasts can be reprogrammed into an embryonic stem cell-like state by introducing combinations of four transcription factors. However, the therapeutic potential of such induced pluripotent stem (iPS) cells remained undefined. By using a humanized sickle cell anemia mouse model, we show that mice can be rescued after transplantation with hematopoietic progenitors obtained in vitro from autologous iPS cells. This was achieved after correction of the human sickle hemoglobin allele by gene-specific targeting. Our results provide proof of principle for using transcription factor-induced reprogramming combined with gene and cell therapy for disease treatment in mice. The problems associated with using retroviruses and oncogenes for reprogramming need to be resolved before iPS cells can be considered for human therapy.

Proc Natl Acad Sci U S A. 2008 Apr 7 [Epub ahead of print]
Neurons derived from reprogrammed fibroblasts functionally integrate into the fetal brain and improve symptoms of rats with Parkinson’s disease.
Wernig M, Zhao JP, Pruszak J, Hedlund E, Fu D, Soldner F, Broccoli V, Constantine-Paton M, Isacson O, Jaenisch R.
The Whitehead Institute for Biomedical Research, Cambridge, MA 02142The long-term goal of nuclear transfer or alternative reprogramming approaches is to create patient-specific donor cells for transplantation therapy, avoiding immunorejection, a major complication in current transplantation medicine. It was recently shown that the four transcription factors Oct4, Sox2, Klf4, and c-Myc induce pluripotency in mouse fibroblasts. However, the therapeutic potential of induced pluripotent stem (iPS) cells for neural cell replacement strategies remained unexplored. Here, we show that iPS cells can be efficiently differentiated into neural precursor cells, giving rise to neuronal and glial cell types in culture. Upon transplantation into the fetal mouse brain, the cells migrate into various brain regions and differentiate into glia and neurons, including glutamatergic, GABAergic, and catecholaminergic subtypes. Electrophysiological recordings and morphological analysis demonstrated that the grafted neurons had mature neuronal activity and were functionally integrated in the host brain. Furthermore, iPS cells were induced to differentiate into dopamine neurons of midbrain character and were able to improve behavior in a rat model of Parkinson’s disease upon transplantation into the adult brain. We minimized the risk of tumor formation from the grafted cells by separating contaminating pluripotent cells and committed neural cells using fluorescence-activated cell sorting. Our results demonstrate the therapeutic potential of directly reprogrammed fibroblasts for neuronal cell replacement in the animal model.

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I only memorized the first one: sickle cell anemia;
and today, after listening to Jaenisch’s talk, I definitely will remember the second one as well: iPS could imporve the symptoms of rats with Parkinson’s disease;
as Dr. Jaenisch pointed out, the two major challenges remained are how to get the appropriate cells from patients for reprogramming, and how to transplant the appropriate reprogrammed cells back to the patients to cue the diseases
[...] Parkinson’s disease data I was so excited. The data presented at that time was not limited to the PNAS paper, also this new paper. Cell. 2009 Mar 6;136(5):964-77. Parkinson’s disease patient-derived [...]