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Showing posts with label Damage. Show all posts
Showing posts with label Damage. Show all posts

Tuesday, January 1, 2013

Insulin Plus Growth Factor Inhibitor Limits Vision Damage In Diabetic Mice

Main Category: Eye Health / Blindness
Also Included In: Diabetes
Article Date: 21 Dec 2012 - 1:00 PST Current ratings for:
Insulin Plus Growth Factor Inhibitor Limits Vision Damage In Diabetic Mice
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A new therapeutic approach to diabetes that combines insulin and an inhibitor of the epidermal growth factor (EGF) betacellulin could limit the progression of diabetic macular edema (DME), Cleveland Clinic researcher Bela Anand-Apte, MD, PhD, said at the American Society for Cell Biology Annual Meeting, on Dec. 17 in San Francisco.

The study, conducted with insulin-dependent diabetic mice, showed that by thwarting "cross-talk" between insulin and betacellulin (BTC), which promotes the regeneration of pancreatic beta cells that stores and releases insulin, the EGF inhibitor preserved the animals' vascular integrity, she explained.

"These studies suggest that a combinatorial treatment of insulin and EGF inhibition might be a useful therapeutic combination to prevent macular edema, but needs to be determined in people with diabetes," said Dr. Anand-Apte.

Dr. Anand-Apte's idea for disconnecting diabetic progression from retinopathy was suggested by studies in people with type II diabetes whose blood sugar control was no longer stable on oral medications, requiring them to be treated with insulin. She noted that insulin therapy appeared to result in some patients' retinopathy progressing much faster, at least for a time. There was a correlation between starting insulin therapy and developing DME, she said.

Another clue came from an observation made by Judah Folkman, MD, then at Boston Children's Hospital, about pancreatic cancer patients who had undergone a pancreatectomy. Without a pancreas to produce and regulate insulin, these patients developed severe diabetes but rarely if ever developed proliferative retinopathy, even when they survived for more than 10 to 20 years. In the pancreas of people with diabetes, the researchers hypothesized that "cross-talk" occurred between injected insulin and the secretion of a vascular permeability-inducing factor.

Working with collaborators at Case Western Reserve University and the University of Wisconsin, the Anand-Apte lab used a mouse model for diabetes to look at BTC produced in the pancreas by proliferating beta cells. In previous studies, Dr. Anand-Apte had linked BTC to increased vascular permeability in the retina. Treating diabetic mice with insulin produced a spike in levels of a soluble form of betacellulin in the retina. Simply injecting BTC into the vitreous fluid of both hyperglycemic and normal mice also increased vascular permeability.

Looking more closely, the researchers determined that insulin was disrupting tight junctions between retinal pigment cells (RPEs), the barrier layer wrapped around retinal nerves, by driving up BTC expression. Injecting insulin first increased the production of ADAM10, a protein that weakens molecular cell-cell glues. The increase in ADAM10 was followed by up-regulation of BTC. By blocking the production of BTC and ADAM10 with short interfering RNA (siRNA), the researchers discovered they could protect these cell-cell tight junctions.

Substituting a BTC-targeted EGF inhibitor, the researchers finally thwarted the cross-talk between BTC and insulin. The EGF inhibitor preserved vascular integrity in the diabetic mice.

The association of visual impairment and the progression of both type I and type II diabetes appears to strengthen over time. The National Diabetes Information Clearinghouse estimates that of the 25.8 million American who have diabetes, 4.2 million have diabetic retinopathy, and in 675,000 of them, it progresses to its most severe form, proliferative diabetic retinopathy in which abnormal - and leaky blood vessels intrude into the eyeball's clear vitreous gel, causing retinal traction and bleeding that results in decreased sight.

Many people with diabetes with proliferative retinopathy also develop DME, a thickening of the center of the retina. Increased vascular permeability in the blood-retinal barrier allows leakage of lipoproteins into the macula at the center of the retina, reducing sharp vision. The main risk factors for DME, according to the American Academy of Ophthalmology, are increasing duration of diabetes, high blood sugar and blood pressure. Over 10 years, 20% of patients diagnosed with early-onset diabetes and 40% with older-onset diabetes will develop DME.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our eye health / blindness section for the latest news on this subject. This work was supported in part by National Institutes of Health (EY016490, CA106415, and EY015638), Research to Prevent Blindness (RPB) Challenge Grant, and RPB Lew Wasserman award to BA-A.

"Regulation of retinal vascular leakage by insulin: Implications for patients with diabetic retinopathy," Monday, Dec.17, 2012, 12:30-2 pm, Session: Cell-Cell Junctions II, presentation 1351, poster B927, Exhibit Halls A-C

American Society for Cell Biology

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Saturday, July 21, 2012

New Insight Into How Schwann Cells Repair Damage To Peripheral Nervous System

Editor's Choice
Main Category: Neurology / Neuroscience
Also Included In: Diabetes
Article Date: 04 Jun 2012 - 11:00 PDT Current ratings for:
'New Insight Into How Schwann Cells Repair Damage To Peripheral Nervous System'
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Researchers have gained new insight into how cells that insulate the nerve cells in the peripheral nervous system, Schwann cells, protect and repair damage caused by disease and trauma.

The researchers state that their findings will help in the development of future treatments for the repair and improvement of damage to the peripheral nervous system.

The study, conducted by researchers from the Peninsula College of Medicine and Dentistry, University of Exeter, together with colleagues from Rutgers University, Newark, and University College London, is published in the journal Neuroscience.

The peripheral nervous system (PNS) consists of all the nerves outside of the brain and spinal cord. The main function of the PNS is to connect the central nervous system to the limbs and organs, thus allowing us to feel the sun on our face and motor information, that allows us to move.

However, the PNS can be damaged through trauma and can occur in individuals with common inherited conditions, such as Charcot-Marie-Tooth (CMT) disease, and in diabetic neuropathy - which almost half of individuals with diabetes suffer from.

Symptoms include: Losing sensation in the hands and feetBladder control problemsDigestion problemsSexual function problemsProblems with blood pressure regulation Schwann cells provide the myelin sheath (insulation) for the nerve cells that transmit electrical signals to and form the spinal cord. The Schwann cells are able to transform back to an immature 'repair' cell due to their plasticity, thus allowing them to repair damage to the PNS. Although these cells are able to repair damage well, incomplete repair, perhaps after the severance of a nerve, may result in pain and long-term loss of function.

Although these cells are able to demyelinate, this makes them vulnerable to diseases, such as CMT, which affects 1 in 2,500 people. Variations in different CMT genes can cause cycles of repair and re-insulation (re-myelination). This can cause both Schwann cells and nerve cells to die as well as long-term damage. At present, there is no treatment for CMT and those with the disease suffer from increased sensory and motor problems which could leave them permanently disabled.

According to the researchers, findings from this study will lead to therapies to improve damage from severe trauma and stop the damage caused by CMT. Furthermore, they note that their may be the potential to improve repair in cases of diabetic neuropathy.

Professor David Parkinson, Associate Professor in Neuroscience, Peninsula College of Medicine and Dentistry, University of Exeter, explained:

"The findings of our research are excited because we have pinpointed and are understanding the mechanism by which our bodies can repair damage to the peripheral nervous system. With further investigation, this could well lead to therapies to repair nerve damage from trauma and mitigate the damage which related to common illnesses, such as CMT."

Written By Grace Rattue
Copyright: Medical News Today
Not to be reproduced without permission of Medical News Today

Visit our neurology / neuroscience section for the latest news on this subject. p38 MAPK Activation Promotes Denervated Schwann Cell Phenotype and Functions as a Negative Regulator of Schwann Cell Differentiation and Myelination
David P. Yang, Jihyun Kim, Neeraja Syed, Young-john Tung, Ambily Bhaskaran, Thomas Mindos, Rhona Mirsky, Kristjan R. Jessen, Patrice Maurel, David B. Parkinson, and Haesun A. Kim
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'New Insight Into How Schwann Cells Repair Damage To Peripheral Nervous System'

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Friday, July 20, 2012

Existing Diabetes Medication May Ease Damage Caused By Traumatic Brain Injury

Main Category: Neurology / Neuroscience
Also Included In: Diabetes;  Alzheimer's / Dementia
Article Date: 30 May 2012 - 3:00 PDT Current ratings for:
'Existing Diabetes Medication May Ease Damage Caused By Traumatic Brain Injury'
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Although the death toll is relatively low for people who suffer from traumatic brain injury (TBI), it can have severe, life-long consequences for brain function. TBI can impair a patient's mental abilities, impact memory and behavior, and lead to dramatic personality changes. And long-term medical treatment carries a high economic cost.

Now, in research commissioned by the United States Air Force, Prof. Chaim Pick of Tel Aviv University's Sackler Faculty of Medicine and Dr. Nigel Greig of the National Institute of Aging in the US have discovered that Exendin-4, an FDA-approved diabetes drug, significantly minimizes damage in TBI animal models when administered shortly after the initial incident. Originally designed to control sugar levels in the body, the drug has recently been found effective in protecting neurons in disorders such as Alzheimer's disease.

Prof. Pick's collaborators include his TAU colleagues Dr. Vardit Rubovitch, Lital Rachmany-Raber, and Prof. Shaul Schreiber, and Dr. David Tweedie of the National Institute of Aging in the US. Detailed in the journal Experimental Neurology, this breakthrough is the first step towards developing a cocktail of medications to prevent as much brain damage as possible following injury.

Diabetes medication to halt trauma

Prof. Pick has been researching TBI for many years, beginning with the effects of everyday injuries such as hitting the windshield in a car accident. As a result of his work for the Air Force, he has expanded his research to include trauma sustained when a person is exposed to an explosion, such as during a terrorist attack.

TBI causes long-term damage by changing the chemistry of the brain. During an explosion, increased pressure followed by an intense vacuum shakes the fluid inside the brain and damages the brain's structure. This damage cannot be reversed, but mapping the injury through behavioral and physical tests is crucial to understanding and quantifying the damage and forming a treatment plan through therapy or medication.

Prof. Pick and his colleagues designed a pre-clinical experiment that exposed mice to controlled explosions from 23 and 33 feet away, and then analyzed the resulting injuries. They also studied the effect of Exendin-4 as an additional parameter in minimizing brain damage.

The researchers divided their mice into four groups: a control group; a second group that was exposed to the blast without medication; a third group that received the medication but was not exposed to the blast; and a fourth group, exposed to the explosion but given the medication within an hour after the blast and continuing for seven days afterwards. The mice were placed under anaesthesia before the explosion.

Behavioral and physical tests showed that the mice that had been exposed to the blast had severely impaired brain function compared to the control group. However, the mice that had also received the Exendin-4 treatment were almost on a par with the control group in terms of brain function, proving that Exendin-4 significantly reduced the long-term damage done by an explosion. In separate experiments, the drug was also associated with an improved outcome in mice who sustained TBI by blunt force.

Finding the ideal drug cocktail

Prof. Pick says this promising discovery can help researchers find the ideal combination of medications to minimize the lasting impact of TBI. "We are moving in the right direction. Now we need to find the right dosage and delivery system, then build a cocktail of drugs that will increase the therapeutic value of this concept," he explains. He adds that in treating such traumatic injuries, one drug is unlikely to be sufficient.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our neurology / neuroscience section for the latest news on this subject. This work was also done in collaboration with Dr. Bruce Citron from the American Veterans Association and Dr. Barry Hoffer from the National Institute of Drug Abuse at the National Institute of Health.
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'Existing Diabetes Medication May Ease Damage Caused By Traumatic Brain Injury'

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Tuesday, July 17, 2012

Obese Patients Face Increased Risk Of Kidney Damage After Heart Surgery

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our cardiovascular / cardiology section for the latest news on this subject. Study co-authors include Mias Pretorius, MD, Jonathan Schildcrout, PhD, Nathaniel Mercaldo, John Byrne, MD, T. Alp Ikizler, MD, Nancy J. Brown, MD (Vanderbilt University School of Medicine).

Disclosures: The authors reported no financial disclosures.

The article, entitled "Obesity and Oxidative Stress Predict Acute Kidney Injury Following Cardiac Surgery," will appear online at http://jasn.asnjournals.org/ on May 24, 2012, doi: 10.1681/ASN.2011090940.

The content of this article does not reflect the views or opinions of The American Society of Nephrology (ASN). Responsibility for the information and views expressed therein lies entirely with the author(s). ASN does not offer medical advice. All content in ASN publications is for informational purposes only, and is not intended to cover all possible uses, directions, precautions, drug interactions, or adverse effects. This content should not be used during a medical emergency or for the diagnosis or treatment of any medical condition. Please consult your doctor or other qualified health care provider if you have any questions about a medical condition, or before taking any drug, changing your diet or commencing or discontinuing any course of treatment. Do not ignore or delay obtaining professional medical advice because of information accessed through ASN. Call 911 or your doctor for all medical emergencies.

American Society of Nephrology

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