Tuesday, January 15, 2008

Glutathione, oxidative stress and aging

The theory of aging proposes that the impairment in physiological performance associated with aging is caused by the detrimental effects of oxygen free radicals. This is interesting because it provides us with a theoretical framework to understand aging and because it suggests a rationale for intervention, i.e., antioxidant administration. Thus, the study of antioxidant systems of the cell may be very important in gerontological studies. Glutathione is one of the main nonprotein antioxidant in the cell which, together with its related enzymes, constitute the “Glutathione system.” The involvement of Glutathione in aging has been known since the early seventies. Several studies have reported that reduced Glutathione is decreased in cells from old animals, whereas oxidized Glutathione tends to be increased. Recent experiments from our laboratory have underscored the importance of cellular compartmentation of Glutathione. MitochondrialGlutathione plays a key role in the protection against free radical damage associated with aging. Oxidative damage to mitochondrial DNA is directly related to an oxidation of mitochondrialGlutathione. In fact, aging is associated with oxidative damage to proteins, nucleic acids, and lipids. These molecular lesions may be responsible for the low physiological performance of aged cells. Thus, antioxidant supplementation may be a rational way to partially protect against age-associated impairment in performance. Apoptosis, a programmed cell death, is an area of research which has seen an explosive growth. Glutathione is involved in apoptosis: apoptotic cells have lower levels of reduced Glutathione, and administration of Glutathione precursors prevent, or at least delay, apoptosis. Age-associated diseases constitute a major concern for researchers involved in aging. Free radicals are involved in many such diseases; for instance, cancer, diabetes or atherosclerosis. The key role of Glutathione and other antioxidant in the pathophysiology of aging and age-associated diseases is discussed in this review.

Juan Sastre1, Federico V. Pallardó1 and Jose Viña Department of Physiology, Faculty of Medicine, University of Valencia, Spain Dept. Fisiologia, Facultad de Medicina, Avenida Blasco Ibanez 17, 46010 Valencia, Spain

The role of glutathione in aging and cancer.

The incidence and mortality rates from most cancers increase exponentially with age. It is likely that this aging phenomenon is partially due to specific changes that occur in the host resulting in an increased susceptibility to neoplasia. Our hypothesis is that one such host factor is a deficiency in GSH, based on the importance of this compound in the detoxification of a wide variety of exogenous and endogenous carcinogens and free radicals, as well as in the maintenance of immune function. American Health Foundation, Valhalla, New York 10595.
PMID: 1426093 [PubMed - indexed for MEDLINE]

Antioxidants are well documented and known to possess vital roles in health maintenance and disease prevention. Glutathione is your cell's own major antioxidant. Maintaining elevated glutathione levels aids the body's natural antioxidant function.

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Monday, January 14, 2008

Increasing Tissue Glutathione Levels

It is clear that those with the highest Glutathione levels are likely to live the longest in the best of health. A number of ways have been demonstrated to increase Glutathione (GSH) and the Glutathione enzymes, Glutathione peroxidase (G-Px) and Glutathione reductase (GR).


Several small studies have shown that moderate, prolonged physical exercise increases Glutathione and its related enzyme levels in the blood and skeletal muscles.



Many vitamins and nutritional supplements are also Glutathione boosters. Lipoic acid, pine bark extract (pycnogenol), melatonin, bilberry, grape extract, and turmeric have all been shown to elevate Glutathione. Oral glutamine may also raise tissue Glutathione levels, although there are conflicting reports.



I used to think that oral Glutathione was destroyed in the stomach, and was not effective in raising Glutathione concentrations. However, Dr. Steve Edelson, of the Edelson Center for Environmental and Preventive Medicine in Atlanta, Georgia, kindly sent me a number of articles that convinced me otherwise. These articles demonstrated that about 80 percent of oral Glutathione is absorbed intact, and that the blood levels remain elevated for about three hours (Fig. 6)

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Why is Glutathione Essential to Health?

Glutathione's three major roles in the body are summarized by the letters A-B-C.

- Anti-oxidant- Blood Booster- Cell Detoxifier

Glutathione and Detoxification

One of glutathione’s primary roles in the body is to detoxify a number of drugs and toxins. Acetaminophen has been studied intensively in regard to its Glutathione-depleting properties, and with regard to glutathione’s ability to prevent APAP-induced liver and kidney damage.

Since GSH levels decrease with aging in all tissues, including the liver and kidney, older organisms are thus at even greater risk to APAP-induced liver and renal damage than younger organisms.



Lang’s group studied the effect of APAP on the livers of mice of different ages, and the extent of GSH depletion and recovery. In control animals, GSH concentrations decreased about 30 percent over the lifespan of the aging mouse, compared to younger animals.



Four hours after APAP administration, GSHlevels of the young, growing (3- to 6-month-old), mature (12-month-old), and old (31-month-old) mice decreased about 70 percent. The growing and mature mice recovered to near control values by 24 hours (94 and 66 percent, respectively). In contrast, old mice recovered only 41 percent in 24 hours (Fig. 5).

These results clearly demonstrate that the aging mouse liver is not only deficient in GSH, but has a reduced recovery capacity.This illustrates the danger of chronic administration of Glutathione-depleting drugs.

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Glutathione in Health and Disease

Glutathione levels are related to increased survival and longer life in all organisms tested so far, lower levels are related to poorer health and a number of chronic degenerative diseases, including heart disease, arthritis, hypertension, diabetes, cancer, genitourinary, gastrointestinal, and musculoskeletal diseases, age-related macular degeneration (ARMD), preeclampsia, cataracts, chronic renal failure, leukemia, respiratory diseases like COPD and adult respiratory distress syndrome (ARDS), hearing loss, and AIDS.

Lang concluded that decreased GSH is a risk factor for chronic diseases and may be used to monitor the severity and progress of the diseases. Conversely, Dr. Mara Julius of the Department of Epidemiology, University of Michigan, in a study of 33 subjects over the age of 60, found that higher Glutathione levels were associated with fewer illnesses and higher levels of self-rated health, lower cholesterol, lower body mass index and lower blood pressures. The author noted that this was the first study that showed an association of higher Glutathione levels with higher levels of physical health in a community-based sample.

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Glutathione Levels Predictably Declined With Age

Scientists at the University of Pavia found that Glutathione peroxidase (GSH-Px) levels also follow this age-related pattern up to about age 75 (Fig. 3), after which they noted a slight increase with age in a cross-sectional study (Fig. 4). They interpreted this as a self-selection process, which enabled those with the highest Glutathione peroxidase levels to survive the longest.

In another study of enzyme activity in the very old, Dr. Helle Anderson and colleagues at Odense University in Denmark compared the levels of Glutathione reductase (GR) in 41 centenarians between 100-105 years old, to that in 52 community controls between the ages of 60-79. They found that the mean Glutathione reductase (GR) activity was significantly higher in centenarians than in the group of younger elderly subjects, and that centenarians with the best functional capacity tended to have the highest GR activity.

They concluded that high GR activity appears likely to be associated with increased survival.8 In a later study, Lang’s group evaluatedGlutathione levels in 87 women in excellent physical and mental health, ranging in age from 60 to 103. The scientists found that all subjects had very high blood Glutathione levels. They followed these women for five years, and concluded that “high blood Glutathione concentrations … are characteristic of long-lived women.”

Age-Related Changes in Glutathione

Drs. J.P. Richie and Calvin Lang, of the Department of Biochemistry, University of Louisville, were the first to propose that a Glutathione deficiency might be a biochemical cause of the aging process. They demonstrated that Glutathione levels decline with age in a number of organisms, including mosquitoes, mice, and man. They proposed that restoring Glutathione tissue concentrations to those of younger organisms might result in an extension of the lifespan.These scientists first tested their hypothesis using adult mosquitoes. They fed magnesium thiazolidine-4-carboxylic acid (MgTCA) (which is known to increase Glutathione) to the mosquitoes, and measured the insects’ Glutathione levels and lifespans. The MgTCA supplementation increased GSH levels by 50-100 percent, and increased www. lifespans by 30-38 percent over control values (Fig. 2), confirming the GSH deficiency hypothesis and demonstrating a specific biochemical mechanism of aging that can be nutritionally modified.


In a related study, Dr. G. Buonous of the Montreal General Hospital Research Institute, Quebec, studied the effects of a whey-rich diet on tissue Glutathione concentrations and survival of 21-month-old mice (equivalent to a human age of about 55-60). The study was performed over six months, until the mice were the human equivalent of about 80 years old. As in the MgTCA-fed mosquitoes, Glutathione tissue concentrations and longevity of the whey-fed mice increased significantly above control levels. Dr. Lang and his colleagues, as well as a number of other scientists, found that blood Glutathione levels predictably declined with age in healthy men and women ranging in age from 20 to 94, just as they do in mosquitoes, mice and rats.