Tuesday, February 25, 2020

DNA misfolding linked to heightened risk for Type 1 diabetes

It's known that genetics, or an inherited genome, is a major determinant of one's risk for autoimmune diseases, like Type 1 diabetes. In human cells, a person's genome--about six feet of DNA--is compressed into the micrometer space of the nucleus via a three-dimensional folding process. 

Specialized proteins decode the genetic information, reading instruction from our genome in a sequence-specific manner. But what happens when a sequence variation leads to the misinterpretation of instruction, causing pathogenic misfolding of DNA inside the nucleus? Can the different folding patterns make us more susceptible to autoimmune diseases?

Now, in a first-of-its-kind study, researchers at Penn Medicine found, in mice, that changes in DNA sequence can trigger the chromosomes to misfold in a way that puts one at a heightened risk for Type 1 diabetes. The study, published today in Immunity, revealed that differences in DNA sequences dramatically changed how the DNA was folded inside the nucleus, ultimately affecting the regulation--the induction or repression--of genes linked
to the development Type 1 diabetes.

While we know that people who inherit certain genes have a heightened risk of developing Type 1 diabetes, there has been little information about the underlying molecular factors that contribute to the link between genetics and autoimmunity. Our research, for the first time, demonstrates how DNA misfolding--caused by sequence variation--contributes to the development of Type 1 diabetes. With a deeper understanding, we hope to form a foundation to develop strategies to reverse DNA misfolding and change the course of Type 1 diabetes."Golnaz Vahedi, PhD, study's senior author, assistant professor of Genetics in the Perelman School of Medicine (PSOM) at the University of Pennsylvania and a member of the Institute for Immunology and the Penn Epigenetics Institute
Autoimmune diseases, which affect as many as 23.5 million Americans, occur when the body's immune system attacks and destroys healthy organs, tissues and cells. There are more than 80 types of autoimmune diseases, including rheumatoid arthritis, inflammatory bowel disease, and Type 1 diabetes. In Type 1 diabetes, the pancreas stops producing insulin, the hormone that controls blood sugar levels. White blood cells called T lymphocytes play a significant role in the destruction of insulin-producing pancreatic beta cells.

Until now, little has been known about the extent to which sequence variation could cause unusual chromatin folding and, ultimately, affect gene expression. In this study, Penn Medicine researchers generated ultra-high resolution genomic maps to measure the three-dimensional DNA folding in T lymphocytes in two strains of mice: a diabetes-susceptible and diabetes-resistant mouse strain. The two strains of mice have six million differences in their genomic DNA, which is similar to the number of differences in the genetic code between any two humans.

The Penn team, led by Vahedi and co-first authors Maria Fasolino, PhD, a postdoctoral fellow in Immunology, and Naomi Goldman, a graduate student in the PSOM, found that previously defined insulin-diabetes associated regions were also the most hyperfolded regions in the T cells of diabetic mice. Researchers then used a high-resolution imaging technique to corroborate the genome misfolding in diabetes-susceptible mice. Importantly, they found the change in folding patterns occurred before the mouse was diabetic. Researchers suggest that the observation could serve as a diagnostic tool in the future if investigators are able to identify such hyperfolded regions in the T cells of humans.

After establishing the where the chromatin is misfolded in the T cells in mice, researchers sought to study gene expression in humans. Through a collaboration with the Human Pancreas Analysis Program, they discovered that a type of homologous gene in humans also demonstrated increased expression levels in immune cells infiltrating the pancreas of human.

"While much more work is needed, our findings push us closer to a more mechanistic understanding of the link between genetics and autoimmune diseases--an important step in identifying factors that influence our risk for developing conditions, like Type 1 diabetes," Vahedi said.

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Sunday, December 29, 2019

Protein that spurs bowel cancer growth identified

Researchers have identified a key protein that supports the growth of many bowel cancer, paving way for development of new therapies to combat the deadly disease.

The study revealed that a protein called Importin-11 transports the cancer-causing protein beta-catenin into the nucleus of colon cancer cells, where it can drive cell proliferation.


Inhibiting this transport step could block the growth of most colorectal cancers-also called bowel cancers-- caused by elevated beta-catenin levels. Around 80% of colorectal cancers are associated with mutations in a gene called APC that results in elevated levels of beta-catenin protein.


This increase in beta-catenin is followed by the protein's accumulation in the cell nucleus, whee it can activate numerous genes that drive cell proliferation and promote the growth and maintenance of colorectal tumours.


But how beta-catenin enters the cell nucleus after its levels rise is poorly understood. Because the molecular mechanisms underlying beta-catenin nuclear transport remain unclear, we set out to identify genes required for continuous beta-catenin activity in colorectal cancer cells harbouring APC mutations, said one of the researchers.


Under CRISPR DNA editing technology, the researchers developed a new technique that allowed them to screen the human genome for genes that support beta-catenin's activity in colorectal cancer cells after its levels have been elevated by mutations in APC.


The researchers found that Importin-11 binds to beta-catenin and escorts it into the nucleus of colorectal cancer cells with mutations in APC. Removing Importin-11 from these cells prevented beta-catenin from entering the nucleus and activating its target genes.


The researchers discovered that Importin-11 levels are often elevated in human colorectal cancers. Moreover, removing Importin-11 inhibited the growth of tumours formed by APC mutant cancer cells isolated from patients.


We concluded that Importin-11 is required for the growth of colorectal cancer cells, the researcher said. Learning more about how Importin-11 transport beta-catenin into the nucleus may help researchers develop new therapies that block this process and reduce the growth of colorectal cancers caused by mutations in APC.


this is only for your information, kindly take the advice of your doctor for medicines, exercises and so on.     
https://gscrochetdesigns.blogspot.com. one can see my crochet creations  
https://gseasyrecipes.blogspot.com. feel free to view for easy, simple and healthy recipes    
https://kneereplacement-stickclub.blogspot.com. for info on knee replacement
 


Researchers have identified a key protein that supports the growth of many bowel cancers, paving the way for development of new therapies to combat the deadly disease. The study, published in the Journal of Cell Biology, revealed that a protein called Importin-11 transports the cancer-causing protein beta-catenin into the nucleus of colon cancer cells, where it can drive cell proliferation. https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673

https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673
Researchers have identified a key protein that supports the growth of many bowel cancers, paving the way for development of new therapies to combat the deadly disease. The study, published in the Journal of Cell Biology, revealed that a protein called Importin-11 transports the cancer-causing protein beta-catenin into the nucleus of colon cancer cells, where it can drive cell proliferation. https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673

https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673
Researchers have identified a key protein that supports the growth of many bowel cancers, paving the way for development of new therapies to combat the deadly disease. The study, published in the Journal of Cell Biology, revealed that a protein called Importin-11 transports the cancer-causing protein beta-catenin into the nucleus of colon cancer cells, where it can drive cell proliferation. https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673

https://www.thehansindia.com/hans/hans-classroom/protein-that-spurs-bowel-cancer-growth-identified-593673

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Thursday, May 16, 2013

Many Heart Defects Aren't Inherited


At least 10 percent of severe genetic heart defects are caused by new gene mutations that were not passed down from patients' parents, a new study finds.
Congenital heart disease is the most common form of birth defect and occurs in nearly 1 percent of newborns.
"These findings provide new insight into the causes of this common congenital disease," senior study author
The team analysed the genes of more than 1,800 people and identified hundreds of mutations that can cause congenital heart disease. In particular, the investigators found that frequent mutations occurred in genes that affect what's known as histones. Histones are proteins that package DNA in the cell's nucleus and control the timing and activation of genes that may be key to foetal development. 
"Most interestingly, the set of genes mutated in congenital heart disease unexpectedly overlapped with genes and pathways mutated in autism,"  said the Dr. "These findings suggest there may be common pathways that underlie a wide range of common congenital diseases."
"This is an important piece of the puzzle that gives us a clearer picture of the causes of congenital heart disease,"  said the Dr. 

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