Showing posts with label German Cancer Research Center. Show all posts
Showing posts with label German Cancer Research Center. Show all posts

Wednesday, 26 December 2018

Human blood cells can be directly reprogrammed into neural stem cells


Scientists from the German Cancer Research Center (DKFZ) and the stem cell institute HI-STEM* in Heidelberg have succeeded for the first time in directly reprogramming human blood cells into a previously unknown type of neural stem cell. These induced stem cells are similar to those that occur during the early embryonic development of the central nervous system. They can be modified and multiplied indefinitely in the culture dish and can represent an important basis for the development of regenerative therapies.

Stem cells are considered to be the all-rounders of our tissues: they can multiply indefinitely and then if they are pluripotent embryonic stem cells that can generate all conceivable cell types. In 2006, the Japanese scientist Shinya Yamanaka recognized that such cells could also be produced in the laboratory from mature body cells. Four genetic factors alone are sufficient to reverse the course of development and produce so-called induced pluripotent stem cells (iPS) that have identical properties to embryonic stem cells.
"This was a major breakthrough for stem cell research," said Andreas Trumpp, German Cancer Research Center (DKFZ) and Director of HI-STEM in Heidelberg."This applies in particular to for research in Germany, where the generation of human embryonic stem cells is not permitted. Stem cells have enormous potential both for basic research and for the development of regenerative therapies that aim to restore diseased tissue in patients. However, reprogramming is also associated with problems: For example, pluripotent cells can form germ line tumors, so-called teratomas.
Another possibility is not to completely turn back the course of development. For the first time, Trumpp's team has succeeded in reprogramming mature human cells in such a way that a defined type of induced neural stem cells is produced that can multiply almost indefinitely.
"We used four genetic factors like Yamanaka, but different ones for our reprogramming," explains Marc Christian Thier, first author of the study. "We assumed that our factors would allow reprogramming to an early stage of development of the nervous system."
In the past, other research groups also reprogrammed connective tissue cells into mature nerve cells or neural precursor cells. However, these artificially produced nerve cells often could not be expanded and could therefore hardly be used for therapeutic purposes. "Often, it was a heterogeneous mixture of different cell types that might not exist in the body under physiological conditions," said Andreas Trumpp explaining the problems.

Together with stem cell researcher Frank Edenhofer from the University of Innsbruck and neuroscientist Hannah Monyer from DKFZ and the Heidelberg University Hospital, Trumpp and his team have succeeded in reprogramming different human cells: connective tissue cells of the skin or pancreas as well as peripheral blood cells."The origin of the cells had no influence on the properties of the stem cells," said Thier. In particular, the possibility of extracting neural stem cells from the blood of patients without invasive intervention is a decisive advantage for future therapeutic approaches.

What is special about the reprogrammed cells of the Heidelberg researchers is that they are a homogeneous cell type that resembles a stage of neural stem cells that occurs during the embryonic development of the nervous system. "Corresponding cells exist in mice and probably also in humans during early embryonic brain development," said Thier. "We have described here a new neural stem cell type in the mammalian embryo.

These so called "induced Neural Plate Border Stem Cells" (iNBSCs) have a broad development potential. The iNBSCs of the Heidelberg scientists are expandable and multipotent and can develop in two different directions. On the one hand, they can take the path of development to mature nerve cells and their supplier cells, the glial cells, i.e. become cells of the central nervous system. On the other hand, they can also develop into cells of the neural crest, from which different cell types emerge, for example peripheral sensitive nerve cells or cartilage and bones of the skull.

The iNBSCs thus form an ideal basis for generating a broad range of different cell types for an individual patient. "These cells have the same genetic material as the donor and are therefore presumably recognized as "self" by the immune system and are not rejected," explains Thier.
The CRISPR/Cas9 gene scissors can be used to modify the iNBSC or repair genetic defects, as the scientists have shown in their experiments. "They are therefore of interesting both for basic research and the search for new active substances and for the development of regenerative therapies, for example in patients with diseases of the nervous system. However until we can use them in patients, a lot of research work will still be necessary," emphasizes Trumpp.
We welcome researchers from different part of the to submit abstract on their latest research at our upcoming conference Cell Tissue Science 2019 which is mainly focuses on the complications the consequences of Stem CellRegenerative MedicineStem Cell TherapyCancer Cell Biology,Technical Advancements in cancer treatmentand many more.We welcome you to the our upcoming conference “ 12th World Congress on Cell & Tissue Science” . 
You can submit your abstract on Session or Track : 09. Stem Cells Biology

Monday, 19 November 2018

Failed DNA repair triggers chromosomal chaos in cancer cells


Researchers at the German Cancer Research Center (Deutsches Krebsforschungszentrum , DKFZ) have established the trigger for catastrophic events that occur within the chromosomes of cancer cells.

They found that failure of DNA repair systems promotes fragmentation and disrupted assembly of chromosomes. However, the researchers say these DNA repair defects could potentially be treated with certain drugs.

Only a few years ago, scientists at the same research center reported that in a particularly aggressive form of childhood brain tumor, unprecedented chaos occurred in the cell nuclei.
Sections of chromosomes were broken at multiple points and incorrectly reassembled, while other sections were incorrectly copied or incorporated.

These events, which scientists refer to as “chromothripsis,” had not been seen before and differed from previously established genetic defects.

Chromothripsis occurs in around 20 to 30% of all cancers, but until now, it has been largely unknown what triggers this genetic disaster.

As reported in the journal Nature Communications, Aurélie Ernst and team identified the failure of certain genetic repair systems as one of the causes.

The team studied a mouse model where the tools used by neural precursor cells to repair broken DNA had been genetically switched off. As a result, the animals developed malignant brain tumors that exhibited a high frequency of chromothripsis.

In addition, the chromothripsis almost always occurred in conjunction with extra copies of the cancer-promoting Myc oncogene.
If the DNA repair is defective and Myc nevertheless stimulates the division of these damaged cells, the risk of chaos in the genome is particularly high.”
Dr. Aurélie Ernst, Lead Author
The team confirmed that the failed genome repair and resulting catastrophic chromosomal events also apply to melanoma, brain tumors and breast cancer in humans and that the Myc oncogene is again involved.

Ernst says that although the chromosome chaos caused by failed DNA repair seem frightening, there are ways to specifically target cancer cells with such defects:
We can use drugs to switch off additionally another important DNA repair system. This leads to so much genetic damage that the cell is unable to survive. Healthy cells, on the other hand, which have all their repair systems, don't mind these drugs."
Dr. Aurélie Ernst, Lead Author
Drugs called PARP inhibitors are already clinically approved agents that block a key DNA repair system and Ernst says that if the genetic material of a tumor exhibits chromothripsis, it may be possible to treat them with PARP inhibitors in the future, although this would require confirmation in preclinical and clinical tests.
We welcome researchers from different part of the to submit abstract on their latest research at our upcoming conference Cell Tissue Science 2019 which is mainly focuses on the complications the consequences of Stem CellRegenerative MedicineStem Cell TherapyCancer Cell Biology , Technical Advancements in cancer treatment and many more.We welcome you to the our upcoming conference “ 12th World Congress on Cell & Tissue Science” .  You can submit your abstract on Session or Track :12.Epigenetics and Epigenome