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Showing posts with label Linus Pauling. Show all posts
Showing posts with label Linus Pauling. Show all posts

Thursday, 2 February 2017

Why Vitamin Pills Don't Work, And May Be Bad For You

We dose up on antioxidants as if they are the elixir of life. At best, they are probably ineffective. At worse, they may just send you to an early grave.


For Linus Pauling, it all started to go wrong when he changed his breakfast routine. In 1964, at the age of 65, he started adding vitamin C to his orange juice in the morning. It was like adding sugar to Coca Cola, and he believed – wholeheartedly, sometimes vehemently  – that it was a good thing.
Before this, his breakfasts were nothing to write about. Just that they happened early every morning before going to work at California Institute of Technology, even on weekends. He was indefatigable, and his work was fruitful.
At the age of 30, for instance, he proposed a third fundamental way that atoms are held together in molecules, melding ideas from both chemistry and quantum mechanics. Twenty years later, his work into how proteins (the building blocks of all life) are structured helped Francis Crick and James Watson decode the structure of DNA (the code of said building blocks) in 1953. 
The next year, Pauling was awarded a Nobel Prize in Chemistry for his insights into how molecules are held together. As Nick Lane, a biochemist from University College London, writes in his 2001 book Oxygen, “Pauling… was a colossus of 20th Century science, whose work laid the foundations of modern chemistry.”
(Credit: Getty Images)
Linus Pauling was one of our most influential scientists, yet his belief in the power of antioxidants may have set us down a dangerous path (Credit: Getty Images)
But then came the vitamin C days. In his 1970 bestselling book, How To Live Longer and Feel Better, Pauling argued that such supplementation could cure the common cold. He consumed 18,000 milligrams (18 grams) of the stuff per day, 50 times the recommended daily allowance.
In the book’s second edition, he added flu to the list of easy fixes. When HIV spread in the US during the 1980s, he claimed that vitamin C could cure that, too.
In 1992, his ideas were featured on the cover of Time Magazine under the headline: “The Real Power of Vitamins”. They were touted as treatments for cardiovascular diseases, cataracts, and even cancer. “Even more provocative are glimmerings that vitamins can stave off the normal ravages of ageing,” the article claimed.
Sales in multivitamins and other dietary supplements boomed, as did Pauling’s fame.
But his academic reputation went the other way. Over the years, vitamin C, and many other dietary supplements, have found little backing from scientific study. In fact, with every spoonful of supplement he added to his orange juice, Pauling was more likely harming rather than helping his body. His ideas have not just proven to be wrong, but ultimately dangerous. 
(Credit: Getty Images)
Antioxidants were meant to delay the ravages of ageing, but there's little evidence that supplements bring any noticeable benefits (Credit: Getty Images)
Pauling was basing his theories on the fact that vitamin C is an antioxidant, a breed of molecules that includes vitamin E, beta-carotene, and folic acid. Their benefits are thought to arise from the fact that they neutralise highly reactive molecules called free-radicals.
In 1954, Rebeca Gerschman then at the University of Rochester, New York, first identified these molecules as a possible danger – ideas expanded upon by Denham Harman, from the Donner Laboratory of Medical Physics at UC Berkeley in 1956, who argued that free radicals can lead to cellular deterioration, disease and, ultimately, ageing.
Throughout the 20th Century, scientists steadily built on his ideas and they soon became widely accepted.
Here’s how it works. The process starts with mitochondria, those tiny combustion engines that sit within our cells. Inside their internal membranes food and oxygen are converted into water, carbon dioxide, and energy. This is respiration, a mechanism that fuels all complex life.
‘Leaky watermills’
But it isn’t so simple. In addition to food and oxygen, a continuous flow of negatively charged particles called electrons is also required. Like a subcellular stream downhill powering a series of watermills, this flow is maintained across  four proteins, each embedded in the internal membrane of the mitochondria, powering the production of the end product: energy.
This reaction fuels everything we do, but it is an imperfect process. There is some leakage of electrons from three of the cellular watermills, each able to react with oxygen molecules nearby. The result is a free radical, a radically reactive molecule with a free electron. 
Oxygen is the breath of life, but it also holds the potential to make us old, decrepit, and then dead
In order to regain stability, free radicals wreak havoc on the structures around them, ripping electrons from vital molecules such as DNA and proteins in order to balance its own charge. Although inconceivably small in scale, the production of free radicals, Harman and many others posited, would gradually take its toll on our entire bodies, causing mutations that can lead to ageing and age-related diseases such as cancer.
In short, oxygen is the breath of life, but it also holds the potential to make us old, decrepit, and then dead.
(Credit: Alamy)
Clinical trials are the only ways to reveal the effects of a drug - and investigations into antioxidants have produced some shocking results (Credit: Alamy)
Shortly after free radicals were linked to ageing and disease, they were seen as enemies that should be purged from our bodies. In 1972, for example, Harman wrote, “Decreasing [free radicals] in an organism might be expected to result in a decreased rate of biological degradation with an accompanying increase in the years of useful, healthy life. It is hoped that [this theory] will lead to fruitful experiments directed toward increasing the healthy human lifespan.” 
He was talking about antioxidants, molecules that accept electrons from free radicals thereby diffusing the threat. And the experiments he hoped for were sown, nurtured, and replicated over the next few decades. But they bore little fruit.
The results were the largely the same: an excess of antioxidants didn’t quell the ravages of ageing, nor stop the onset of disease
In the 1970s and into the 80s, for example, many mice – our go-to laboratory animal – were prescribed a variety of supplementary antioxidants in their diet or via an injection straight into the bloodstream. Some were even genetically modified so that the genes coding for certain antioxidants were more active than non-modified lab mice. 
Although different in method, the results were the largely the same: an excess of antioxidants didn’t quell the ravages of ageing, nor stop the onset of disease.
“They never really proved that they were extending lifespan, or improving it,” says Antonio Enriquez from the Spanish National Centre for Cardiovascular Research in Madrid. “Mice don’t care for [supplements] very much.”
(Credit: Alamy)
Far from protecting us from disease, one study found that vitamin supplements increased the incidence of lung cancer among smokers (Credit: Alamy)
What about humans? Unlike our smaller mammalian kin, scientists can’t take members of society into labs and monitor their health over their lifetime, while controlling for any extraneous factors that could bias the results at the end. But what they can do is set up long-term clinical trials.
The premise is pretty simple. First, find a group of people similar in age, location, and lifestyle. Second, split them into two subgroups. One half receives the supplement you’re interested in testing, while the other receives a blank – a sugar pill, a placebo. Third, and crucially to avoid unintentional bias, no one knows who was given which until after the trial; not even those administering the treatment. 
The incidence of lung cancer increased by 16% in the group given vitamin supplements
Known as a double-blind control trial, this is the gold standard of pharmaceutical research. Since the 1970s, there have been many trials like this trying to figure out what antioxidant supplementation does for our health and survival. The results are far from heartening.
In 1994, for example, one trial followed the lives of 29,133 Finish people in their 50s. All smoked, but only some were given beta-carotene supplements. Within this group, the incidence of lung cancer increased by 16%.
A similar result was found in postmenopausal women in the U.S. After 10 years of taking folic acid (a variety of B vitamin) every day their risk of breast cancer increased by 20% relative to those women who didn’t take the supplement. 
It gets worse. One study of more than 1,000 heavy smokers published in 1996 had to be terminated nearly two years early. After just four years of beta-carotene and vitamin A supplementation, there was a 28% increase in lung cancer rates and a 17% increase in those who died.
These aren’t trivial numbers. Compared to placebo, 20 more people were dying every year when taking these two supplements. Over the four years of the trial, that equates to 80 more deaths. As the authors wrote at the time, “The present findings provide ample grounds to discourage use of supplemental beta-carotene and the combination of beta-carotene and vitamin A.”
Fatal ideas
Of course, these notable studies don’t tell the full story. There are some studies that do show benefits of taking antioxidants, especially when the population sampled doesn’t have access to a healthy diet. 
But, according a review from 2012 that noted the conclusions of 27 clinical trials assessing the efficacy of a variety of antioxidants, the weight of evidence does not fall in its favour.
Just seven studies reported that supplementation led to some sort of health benefit from antioxidant supplements, including reduced risk of coronary heart disease and pancreatic cancer. Ten studies didn’t see any benefit at all – it was as if all patients were given the sugar pill also (but, of course, they weren’t). That left another 10 studies that found many patients to be in a measurably worse state after being administered antioxidants than before, including an increased incidence of diseases such as lung and breast cancer.
The idea that antioxidant supplements are a miracle cure is completely redundant – Antonio Enriquez
“The idea that antioxidant [supplementation] is a miracle cure is completely redundant,” says Enriquez. Linus Pauling was largely unaware of the fact that his own ideas could be fatal. In 1994, before the publication of many of the large-scale clinical trials, he died of prostate cancer. Vitamin C certainly wasn’t the cure-all that he cantankerously claimed it was up until his last breath. But did it contribute to a heightened risk? 
(Credit: Alamy)
Dosing up on vitamin C does not even help us fight the common cold (Credit: Alamy)
We’ll never know for sure. But given that multiple studies have linked excess antioxidants to cancer, it certainly isn’t out of the question. A study published in 2007 from the US National Cancer Institute, for instance, found that men that took multivitamins were twice as likely to die from prostate cancer compared to those who didn’t. And in 2011, a similar study on 35,533 healthy men found that vitamin E and selenium supplementation increased prostate cancer by 17%.
Ever since Harman proposed his great theory of free radicals and ageing, the neat separation of antioxidants and free radicals (oxidants) has been deteriorating. It has aged.
Antioxidant is only a name, not a fixed definition of nature. Take vitamin C, Pauling’s preferred supplement. At the correct dose, vitamin C neutralises highly charged free radicals by accepting their free electron. It’s a molecular martyr, taking the hit upon itself to protect the cellular neighbourhood. 
But by accepting an electron, the vitamin C becomes a free radical itself, able to damage cell membranes, proteins and DNA. As the food chemist William Porter wrote in 1993, “[vitamin C] is truly a two-headed Janus, a Dr Jekyll-Mr Hyde, an oxymoron of antioxidants.”
Thankfully, in normal circumstances, the enzyme vitamin C reductase can return vitamin C’s antioxidant persona. But what if there’s so much vitamin C that it simply can’t keep up with supply? Although such simplifying of complex biochemistry is in itself problematic, the clinical trials above provide some possible outcomes.  
Divide and conquer
Antioxidants have a dark side. And, with increasing evidence that free radicals themselves are essential for our health, even their good side isn’t always helpful.
Without free radicals, cells would continue to grow and divide uncontrollably
We now know that free radicals are often used as molecular messengers that send signals from one region of the cell to another. In this role, they have been shown to modulate when a cell grows, when it divides in two, and when it dies. At every stage of a cell’s life, free radicals are vital.
Without them, cells would continue to grow and divide uncontrollably. There’s a word for this: cancer.
We would also be more prone to infections from outside. When under stress from an unwanted bacterium or virus, free radicals are naturally produced in higher numbers, acting as silent klaxons to our immune system. In response, those cells at the vanguard of our immune defense – macrophages and lymphocytes – start to divide and scout out the problem. If it is a bacterium, they will engulf it like Pac-Man eating a blue ghost.
It is trapped, but it is not yet dead. To change that, free radicals are once again called into action. Inside the immune cell, they are used for what they are infamous for: to damage and to kill. The intruder is torn apart.
From start to finish, a healthy immune response depends on free radicals being there for us, within us. As geneticists Joao Pedro Magalhaes and George Church wrote in 2006: “In the same way that fire is dangerous and nonetheless humans learned how to use it, it now appears that cells evolved mechanisms to control and use [free radicals].”
Put another way, freeing ourselves of free radicals with antioxidants is not a good idea. “You would leave the body helpless against some infections,” says Enriquez.
(Credit: Getty Images)
Few would dispute that a balanced diet is essential for good health, but most of us don't need supplements to meet our nutritional needs (Credit: Getty Images)
Thankfully, your body has systems in place to keep a your inner biochemistry as stable as possible. For antioxidants, this generally involves filtering any excess out of the bloodstream into urine for disposal. “They go in the toilet,” says Cleva Villanueva from Instituto Politécnico Nacional, Mexico City, in an email.
“We’re very good at balancing things out so that the affect [of supplementation] is moderate whatever you do, which we should be grateful for,” says Lane. Our bodies have been selected to balance the risk of oxygen ever since the first microbes started to breathe this toxic gas. We can’t change billions of years of evolution with a simple pill.
No one would deny that vitamin C is vital to a healthy lifestyle, as are all antioxidants, but unless you are following doctor's orders, these supplements are rarely going to be the answer for a longer life when a healthy diet is also an option. “Administration of antioxidants is justified only when it is evident that there is a real deficiency of a specific antioxidant,” says Villanueva. “The best option is to get antioxidants from food because it contains a mixture of antioxidants that work together.”
“Diets rich in fruits and vegetables have been shown generally to be good for you,” says Lane. “Not invariably, but generally that’s agreed to be the case.” Although often attributed to antioxidants, the benefits of such a diet, he says, might also hail from a healthy balance of pro-oxidants and other compounds whose roles aren’t yet fully understood.
After decades of unlocking the baroque biochemistry of free radicals and antioxidants, hundreds of thousands of volunteers, and millions of pounds spent on clinical trials, the best conclusion that 21st Century science has to offer is also found within a child’s classroom – eat your five-a-day.

http://www.bbc.com/future/story/20161208-why-vitamin-supplements-could-kill-you

Friday, 11 December 2015

Vitamin C’s Curative Powers

Was Linus Pauling Right About Vitamin C’s Curative Powers After All?


Story at-a-glance

  • One of the most famous forerunners of high dose vitamin C treatment for disease prevention was Dr. Linus Pauling, a biochemist and peace activist, and a two-time Nobel Laureate
  • A large, decade-long study found that men who took 800 mg of vitamin C per day had less heart disease and lived up to six years longer than those following the conventional guideline of 60 mg/day
  • Vitamin C, when administered intravenously at high doses, has been shown to be selectively cytotoxic against cancer cells
November 23, 2015



By Dr. Mercola
Vitamin C is one of the most well-established traditional antioxidants we know of, and its potent health benefits have been clearly demonstrated over time, especially for the prevention and treatment of infectious diseases.
A perfect example of the healing power of this antioxidant vitamin is the drbiochamatic case of Allan Smith, who contracted a serious case of swine flu, and was brought back from the brink of death using a combination of IV and oral vitamin C.
While most animals have the ability to produce vitamin C internally, three species cannot. Guinea pigs, primates, and humans must obtain their vitamin C from their diet.
Vitamin C has numerous functions in the human body,1 including acting as an essential cofactor in enzymatic reactions.
In this way, it plays a role in your body's production of collagen, carnitine (which helps your body turn fat into energy), and catecholamines (hormones made by your adrenal glands).
Vitamin C is also used by your body for wound healing, repairing, and maintaining the health of your bones and teeth, and plays a role in helping your body absorb iron.
A powerful antioxidant, vitamin C also helps prevent damage caused by free radicals. Over time, free radical damage may accelerate aging and contribute to the development of heart disease and other health conditions.
It's through this antioxidant effect that it's thought vitamin C may play a role in protecting heart health.

Linus Pauling — 'The Vitamin C Man'

One of the most famous forerunners of high dose vitamin C treatment for colds and other disease was Linus Carl Pauling (1901-1994), a physical chemist and peace activist who won two Nobel Prize awards; one in chemistry in 1954, followed by a Nobel Peace Prize in 1962.
The New Scientist magazine ranked him as one of the 20 greatest scientists to ever live. He almost won a third Nobel, but Watson and Crick narrowly beat him to the discovery of the structure of DNA.
Despite being a well-respected scientist, his views on vitamin C were all firmly rebuffed by the medical community.
He detailed his discoveries in a series of books, starting with Vitamin C and the Common Cold in 1970, followed by Vitamin C, the Common Cold and the Flu (1976), Vitamin C and Cancer (1979), and How to Feel Better and Live Longer(1986).
Many felt Pauling was too far out of his field of expertise with his research into nutrition, and he was largely ignored by mainstream medicine and nutritional science.2

Was Pauling Right About Vitamin C After All?

While the recommended daily allowance (RDA) for vitamin C had been established at 40 to 60 mg per day — an amount more than sufficient to prevent scurvy — Pauling advocated amounts of 1,000 mg or even higher.
Pauling himself is said to have taken 12,000 mg per day. He noted that veterinarians recommended far higher doses of vitamin C for primates than what was recommended for people.
So he initially extrapolated the dosages from monkeys, and determined that humans likely need a minimum of six grams per day — 200 times more than the RDA.
The video above features the late Pauling and his controversial claims about the curative powers of vitamin C, which included cancer and heart disease — the latter of which he claimed was a form of pre-scurvy.
Pauling died of prostate cancer in 1994 at the age of 93. However, interest in vitamin C certainly did not die with him.
On the contrary, there's been an explosion of research into the properties of vitamin C, and newer evidence suggests there might be something to Pauling's heretical claims after all. In fact, a lot of the scientific literature published on vitamin C in the two decades since Pauling's death support his claims.3,4

UCLA Researchers Confirm Vitamin C Protects Against Heart Disease

For example, the video features Dr. Balz Frei, a researcher at Harvard University's Department of Nutrition.
According to Dr. Frei, interest in vitamin C was renewed when it became known that many degenerative diseases involve oxidation, "and it is clear that vitamin C can very effectively prevent many of these oxidation processes, because it is a very strong antioxidant," he says.
A large, decade-long research study led Dr. James Engstrom at the UCLA also found that men who took 800 mg of vitamin C per day — which is more than 10 times the RDA — had less heart disease and lived up to six years longer than those following the conventional guideline of 60 mg/day.
Another study5 that included nearly 11,200 elderly people, published in 1996, found that seniors who took high-potency vitamin C and E had an overall reduced mortality rate of 42 percent.
Low potency "one-a-day" multiple vitamins had no beneficial effect on mortality. About 40 studies have also shown that people who eat vitamin C-rich diets have a lower incidence of cancer.

Vitamin C Shown to Be Selectively Cytotoxic to Cancer Cells


Total Video Length: 0:56:35


Five years ago, I interviewed Dr. Ronald Hunninghake about his experience with high-dose vitamin C treatments. He's an internationally recognized expert on vitamin C who at the time had personally supervised more than 60,000 intravenous (IV) vitamin C administrations.
He got his start in this field some 27 years ago when he teamed up with Dr. Hugh Riordan, who conducted research on intravenous (I.V.) vitamin C for cancer patients.6 Dr. Riordan discovered that most cancer patients are deficient in vitamin C, especially those in advanced stages of cancer.
Dr. Riordan carried out a 15-year long research project called RECNAC (cancer spelled backwards). His groundbreaking research in cell cultures showed that vitamin C was selectively cytotoxic against cancer cells. The mechanism for this is summarized in an article by Dr. Hunninghake on Orthomolecular.org:7
"Cancer cells were actively taking up vitamin C in a way that depleted tissue reserves of C. PET scans are commonly ordered by oncologists to evaluate their cancer patients for metastases (cancer spread to other organs).
What is actually injected into the patient at the start of the scan is radioactive glucose. Cancer cells... depend upon glucose as their primary source of metabolic fuel... [and] employ transport mechanisms called glucose transporters to actively pull in glucose.
In the vast majority of animals, vitamin C is synthesized from glucose in only four metabolic steps. Hence, the molecular shape of vitamin C is remarkably similar to glucose. Cancer cells will actively transport vitamin C into themselves, possibly because they mistake it for glucose. Another plausible explanation is that they are using the vitamin C as an antioxidant. Regardless, the vitamin C accumulates in cancer cells.
If large amounts of vitamin C are presented to cancer cells, large amounts will be absorbed. In these unusually large concentrations, the antioxidant vitamin C will start behaving as a pro-oxidant as it interacts with intracellular copper and iron. This chemical interaction produces small amounts of hydrogen peroxide.
Because cancer cells are relatively low in an intracellular anti-oxidant enzyme called catalase, the high dose vitamin C induction of peroxide will continue to build up until it eventually lyses the cancer cell from the inside out! This effectively makes high dose IVC a non-toxic chemotherapeutic agent that can be given in conjunction with conventional cancer treatments.

Based on the work of several vitamin C pioneers before him, Dr. Riordan was able to prove that vitamin C was selectively toxic to cancer cells if given intravenously. This research was recently reproduced and published by Dr. Mark Levine at the National Institutes of Health."

Vitamin C As an Adjunct to Cancer Therapy

Most recently, researchers at the Lewis Cantley of Weill Cornell Medicine in New York published a paper8 showing that high doses of vitamin C help kill and eliminate colorectal cancer cells with certain genetic mutations. According to the International Business Times:9
"Since over half of the colorectal cancer cases in humans are linked to mutations in the KRAS and BRAF genes, the researchers believe that their study findings call for more research into the therapeutic use of vitamin C for colorectal cancer cases."
According to the National Cancer Institute,10 other studies have shown high-dose vitamin C can help slow the growth of prostate, pancreatic, liver, and colon cancer cells. The institute also recognizes human studies showing IV vitamin C can help improve symptoms associated with cancer and cancer treatment, such as fatigue, nausea, vomiting, pain, and loss of appetite.
Despite all of these benefits, the US Food and Drug Administration (FDA) has not approved IV high-dose vitamin C for the treatment of cancer or any other disease.

A More Potent and Foundational Treatment for Cancer

The treatment of cancer, neurodegenerative diseases like Alzheimer's, ALS, and Parkinson, and anti-aging have become one of my new passions. Why? Because they all share the same primary metabolic defect — dysfunctional mitochondria. Dr. Otto Warburg was an M.D., Ph.D. and most experts consider him to be the most brilliant biochemist of the 20th century.
He received his Nobel Prize in 1931 for discovering that virtually every cancer cell does not use oxygen to create energy, but it ferments glucose to provide all its energy.
Interestingly, this use of glucose may contribute to a relative vitamin C deficiency since it is produced from glucose, and may explain some of its benefits in the treatment of cancer. However I am firmly convinced that vitamin C does not treat the primary defect responsible for most cancers, which is mitochondrial dysfunction.
The best way to address this mitochondrial damage that I am aware of is a ketogenic diet. This is achieved typically by a reduced calorie and carbohydrate diet that limits all sugars, grains, and most fruits. I am currently in the process of connecting with the leading experts in the world on this and will greatly expand on this exciting news in the near future.

Vitamin C Deficiency May Be an Independent Risk Factor for Stroke

While scurvy is the most well-known side effect of vitamin C deficiency, French researchers have also reported that those with vitamin C deficiency are at an increased risk for a lethal hemorrhagic stroke.11 According to the authors, vitamin C deficiency "should be considered a risk factor for this severe type of stroke."
They also pointed out that previous studies have found vitamin C may help regulate blood pressure, and that higher blood levels of vitamin C have been found to reduce stroke risk by more than 40 percent.
A 20-year long prospective cohort study12 in Japan found that those with the highest serum levels of vitamin C had a 29 percent lower risk for stroke compared to those with the lowest serum levels. Moreover, people who ate vegetables six to seven days a week had a 54 percent reduced risk of stroke compared to those who only ate vegetables two days or less per week.
A common denominator here is the way vitamin C affects your blood vessels. Vitamin C helps dilate blood vessels, and is required for the biosynthesis of collagen, which helps keep your blood vessels strong and intact. Lack of vitamin C can therefore lead to a weakening of your blood vessels, resulting in scurvy symptoms like subcutaneous bleeding, or the lethal hemorrhaging associated with hemorrhagic stroke.

Vitamin C Performs Many Functions That Boost Health

Vitamin C has two major functions that help explain its potent health benefits. First, it acts as a powerful antioxidant. It also acts as a cofactor for enzymatic processes. In addition to that, vitamin C is a "reducing agent," which means it donates electrons to other molecules, thereby reducing oxidation. As explained by the Linus Pauling Institute:13
"Vitamin C is the primary water-soluble, non-enzymatic antioxidant in plasma and tissues. Even in small amounts vitamin C can protect indispensable molecules in the body, such as proteins, lipids (fats), carbohydrates, and nucleic acids (DNA and RNA), from damage by free radicals and reactive oxygen species (ROS) that are generated during normal metabolism, by active immune cells, and through exposure to toxins and pollutants..."
Vitamin C also helps regenerate vitamin E from its oxidized form, and is involved in the metabolism of cholesterol to bile acids, the latter of which may help reduce cholesterol and gallstones. Vitamin C also boosts your body's ability to absorb iron from the foods you eat, and plays a role in detoxification, as it helps neutralize and eliminate a range of toxins from your body.14

Signs and Symptoms of Vitamin C Deficiency

In the U.S., serious vitamin C deficiency is rare; however many people do have low levels. If you're elderly, for instance, you may have higher requirements for vitamin C, as aging may inhibit absorption. Smokers may also require more vitamin C due to the increased oxidative stress from cigarette smoke. Signs that you may need more vitamin C include:
Dry and splitting hairNosebleedsDecreased wound-healing rateBleeding gums
Rough, dry or scaly skinGingivitis (inflammation of your gums)Decreased ability to ward off infectionEasy bruising

What's the Best Way to Optimize Your Vitamin C?

The ideal way to optimize your vitamin C stores is by eating a wide variety of fresh whole organic locally grown foods, primarily vegetables and fruits. A number of people, primarily with the naturopathic perspective, believe that in order to be truly effective, ascorbic acid alone is not enough. They believe it's the synergistic action of the ascorbic acid in combinationwith its associated micronutrients, such as bioflavonoids and other components that produce the full range of benefits.
Eating a colorful diet (i.e. plenty of vegetables) helps ensure you're naturally getting the phytonutrient synergism needed. Particularly rich sources of vitamin C include those in the following list. One of the easiest ways to ensure you're getting enough vegetables in your diet is by juicing them. For more information, please see my juicing page. You can also squeeze some fresh lemon or lime juice into some water for a vitamin C rich beverage.
Sweet peppersChili peppersBrussels sprouts
BroccoliArtichokeSweet potato
TomatoCauliflowerKale
PapayaStrawberriesOranges
KiwiGrapefruitCantaloupe

What You Need to Know About Vitamin C Supplements

In some cases, it may still be wise to take supplemental vitamin C. The most effective form of oral vitamin C supplementation is liposomal vitamin C, which I was introduced to by Dr. Thomas Levy, who is one of the leaders in this area. Liposomal vitamin C bypasses many of the complications of traditional vitamin C or ascorbic acid (such as gastrointestinal distress), thereby allowing you to achieve far higher intracellular concentrations.
There are also other forms of vitamin C on the market, such as buffered forms of sodium ascorbate. One example would be Ester-C. These buffered forms are also effective and do not cause the gastrointestinal distress associated with conventional ascorbic acid.
When taking an oral vitamin C, be mindful of your dosing frequency. A researcher with a Ph.D. in medical biophysics, Steve Hickey, wrote the book "Ascorbate", which shows that if you take vitamin C frequently throughout the day, you can achieve much higher plasma levels. So even though your kidneys will tend to rapidly excrete the vitamin C, by taking it every hour or two, you can maintain a much higher plasma level than if you take one mega-dose all at once (unless you're taking an extended release form of vitamin C).
As noted by the Linus Pauling Institute,15 experiments have demonstrated that plasma vitamin C concentration is controlled by three primary mechanisms: intestinal absorption, tissue transport, and renal reabsorption. You can expect a significant rise in plasma vitamin C concentration at doses between 30 and 100 mg/day.
At 200 to 400 mg/day, healthy young adults reach a steady-state concentration of 60 to 80 micromoles/L, and ingesting doses of 200 mg at a time has been shown to maximize absorption efficiency.
According to Dr. Andrew Saul, editor of the Orthomolecular Medicine News Service, if everyone were to take 500 mg of vitamin C per day — the dose typically required to reach a healthy level of 80 µmol/L — an estimated 216,000 lives could be spared each year.
http://articles.mercola.com/sites/articles/archive/2015/11/23/vitamin-c-curative-power.aspx

This post is on Healthwise