Mycologist Paul Stamets presents four medicinal mushrooms—amadou, agarikon, cordyceps, and turkey tail—each with distinct antimicrobial, antiviral, insecticidal, or immune-enhancing properties. Amadou has been documented since 450 B.C. as an anti-inflammatory; agarikon, the world's longest-living mushroom, shows anti-tubercular activity; cordyceps produce super-attractant compounds that draw disease-carrying insects and could revolutionize pest and vector control; and turkey tail mushrooms, tested in a $2.1 million NIH-funded breast cancer clinical trial, boost natural killer cell counts in immune-compromised patients on a dose-dependent basis.
Why Are Mushrooms Deep Reservoirs of Medicinal Power?
Stamets opens his talk by anchoring the discussion in ancestral knowledge: "We are now rediscovering that which our ancestors long ago knew—that mushrooms are deep reservoirs for very powerful medicines." This reframing positions modern mycology not as invention but as recovery of time-tested understanding. The four mushrooms he selects are chosen, he explains, because they are "essential for human health." The talk proceeds from historical documentation to contemporary clinical evidence, showing that the medicinal value of these organisms spans millennia and survives rigorous modern testing.
What Makes Amadou a Multifunctional Medicinal Mushroom?
Amadou, a birch polypore, appears first in Stamets' presentation because it exemplifies the dual nature of medicinal fungi—both as ancient remedy and practical technology. Hypocrates documented it in 450 B.C. as an anti-inflammatory, establishing its medical pedigree. But amadou's utility extends beyond inflammation. When hollowed and filled with fire embers, it can keep fire alive for days, making it a survival tool. More remarkably, when boiled, the mushroom delaminates into a cellular fabric. Stamets demonstrates this by wearing a hat made from amadou—a tangible proof of the material's utility and accessibility. This multi-functionality illustrates how medicinal mushrooms often operate across different domains: chemical medicine, physical material science, and immune support.
Why Is Agarikon the Longest-Living Mushroom and What Does That Mean for Medicine?
Agarikon holds the distinction of being the world's longest-living mushroom. Dioscurides documented it in 65 A.D. as "elixirium adlongem vitum"—the treatment against consumption (tuberculosis). The mushroom is endemic to old-growth forests and now thought to be extinct in Europe; it grows only in Northern California, Oregon, Washington, and British Columbia. Stamets emphasizes the rarity and difficulty of locating wild agarikon by noting that after 30 years of cultivation, his laboratory maintains "the largest library by far in the world" with 40 strains in culture. Even more striking: his colleague Dr. Michael Beug, despite searching old-growth forests for over 40 years, only discovered his first wild agarikon specimen "these past few weeks."
The reasons for agarikon's resilience illuminate how medicinal properties emerge from survival strategy. This mushroom thrives under "extremely adverse conditions"—hundreds of inches of rain per year, wind, sleet, hail, baking sun. To survive such hostile environments, agarikon's mycelium has evolved a sophisticated cellular architecture based on a "network concept." This architecture enables the mycelium to exhibit "the amazing ability to adapt" and deploy "host defense strategies against pathogens." Stamets' team has confirmed agarikon's anti-tubercular properties working with the U.S. Bioshield Biodefense Program under NIH and US AmRad guidance. The oldest agarikon specimen his team found was approximately 100 years old, harvested from a 700-year-old Douglas fir tree at 100 feet height—a testament to the extreme conditions these organisms must endure to mature.
What Are Fomitopsterols and How Do They Compare to Conventional Antivirals?
Rather than harvest entire mushrooms, Stamets' team focuses on the mycelium, which grows and produces compounds without requiring destruction of the fruiting body. The mycelium releases extracellular droplets—secretions that contain active compounds. From agarikon (Fomitopsis officinalis), the team has isolated a new class of antimicrobials and antivirals called fomitopsterols, named after the mushroom's Latin scientific name. These compounds are extraordinarily potent: at a 100-to-1 dilution, fomitopsterols are "more powerful than ribovirin" against flu viruses and herpes viruses. Ribovirin is a standard antiviral pharmaceutical, so this comparison demonstrates that diluted fungal compounds can exceed the efficacy of established drugs—suggesting that pharmaceutical research has only scratched the surface of fungal chemistry.
How Do Cordyceps Transform from Entomopathogenic Fungi into Super-Attractants?
Cordyceps mushrooms present a different kind of medicinal application: they are entomopathogenic fungi—fungi that kill insects. Historically, cordyceps are known as a source of cyclosporine, which led to the FDA approval of Novartis' anti-multiple sclerosis drug Gilenya, predicted to be among the ten most commercially profitable drugs ever produced. But Stamets took cordyceps research in an unexpected direction. He discovered that cordyceps exist in two forms: a mold stage and a fruiting body stage, "like two faces of the same organism." The spores of cordyceps are highly infectious to insects, which have evolved to avoid them "with great diligence." Stamets' innovation was to culture the mold state and morph it in the laboratory to a pre-sporulating form—a stage before spores form. He then removed the spores entirely.
What happened next was, in his words, "truly amazing": insects no longer avoided the mycelium. Instead, they became "super-attractants." The mycelium without spores attracted ants, termites, and "a surprising array of other types of insects." Stamets documented this behaviorally: insects would stream directly to extract locations and tunnel specifically to where the compound was placed. When he tested this against non-social insects—flies, gnats, mosquitos—the results were dramatic. The control group (baseline) showed a flat graph of insect activity, but the addition of cordyceps mycelium extract created a striking attraction response. Most significantly, when tested against mosquitos, the extract attracted mosquitos "roughly equivalent to a human hand"—meaning the fungal compound mimicked human presence strongly enough to draw disease vectors at an impressive scale.
What Are the Implications of Fungal Super-Attractants for Disease Vector Control?
This discovery has "profound implications for disease control—for malaria, yellow fever, West Nile virus." Stamets articulates a multipronged strategy. First, these super-attractants could control disease vectors at landscape scales. Most people are unaware that H5N1 bird flu is carried by houseflies—a fact, Stamets notes, that "is not widely reported." Climate change is driving subtropical diseases into temperate zones, making vector control increasingly urgent. The ability to attract disease-carrying insects opens several possibilities: increase bug zapper efficiency, steer insect migrations across landscapes, lure disease-carrying bugs to specific locations to blend them with expired or crude antiviral and antimicrobial drugs in combinations that would prevent resistance from developing, distract insects away from human, animal, and plant populations, or concentrate them for controlled elimination.
Stamets calls this approach "a paradigm-shifting revolutionary breakthrough on the most fundamental of levels." He notes that insects and arthropods transmit diseases not only to humans but to plants as well, "so the implications of this I think are absolutely enormous." The East Coast mosquito population, for example, was ten times greater in that year than previously—illustrating the scale of the problem and the potential impact of a fungal-based attractant strategy.
How Do Turkey Tail Mushrooms Enhance Immune Function During Cancer Treatment?
The fourth mushroom, turkey tail, represents yet another medicinal pathway: immune system empowerment. Turkey tail has been used for over a thousand years in traditional medicine. Stamets' group received a $2.1 million NIH-funded breast cancer clinical study, which had recently been completed at the time of this 2011 talk. The study enrolled non-ER, non-estrogen-responsive breast cancer patients (women with triple-negative breast cancer, a particularly aggressive form). The design tested turkey tail mushroom as an adjunct therapy—"not as a substitution, but to support the immune system"—in patients undergoing radiation or chemotherapy.
The results were dose-dependent. When patients received no treatment, natural killer (NK) cells declined. At 3 grams and 6 grams per day of turkey tail, NK cells increased on a dose-dependent basis. More dramatically, post-radiation therapy—when immune systems are typically depressed—turkey tail supplementation enhanced natural killer cells over a four-week period in a dose-dependent manner. Stamets emphasizes: "This raises base immunity function, which I think is critically important." The data suggest that mushroom compounds can counteract the immunosuppression caused by cancer treatments, enabling the body's own cytotoxic lymphocytes to remain active and functional.
Can Turkey Tail Mushrooms Help in Advanced Breast Cancer?
This research became personal for Stamets when, in June 2009, his 84-year-old mother called him and said she had "something very serious to talk to you about." She reported that her right breast was five times the size of her left. Upon examination by her oncologist, she received a stage 4 breast cancer diagnosis—"the worst case scenario she had seen as a doctor in 20 years of practice." The prognosis was dire: she was told she was too old for radiation therapy and had limited conventional options. Faced with this reality, Stamets' mother bought a pine casket.
But then her physician suggested she try turkey tail mushroom supplements. She began taking eight capsules per day. The outcome: "Today, my mother has no detectable tumors." While Stamets does not claim the mushroom alone cured her cancer, the timing and her positive response suggest that the immune-boosting properties documented in the clinical trial may have played a role in her recovery. This personal narrative grounds the abstract clinical data in lived experience and demonstrates the potential real-world impact of these compounds.
How Does Mycelial Network Architecture Enable These Medicinal Properties?
Underlying all these applications is the mycelium's fundamental design. Stamets explains that the mycelium's cellular architecture is "based on a network concept." This network structure enables apigenesis—the mycelium's ability to adapt to changing conditions. Because the mycelium can sense and respond to environmental stressors, it evolves biochemical defenses. These host defense strategies against pathogens—the compounds and mechanisms that protect the mycelium from bacterial, viral, and fungal attack in the soil—are the same compounds that exhibit antimicrobial, antiviral, and immune-enhancing effects when extracted and studied. In other words, the medicinal molecules are byproducts of survival: the mycelium produces antimicrobial fomitopsterols because it needs to fend off competing organisms; it produces super-attractant compounds because it benefits from insect activity (either as dispersal agents or corpses that provide nutrients); it produces immune-activating polysaccharides because immune activation indirectly aids the fungus.
Where to Go From Here
For readers interested in mushroom medicine, several pathways forward are available. Research clinical trials for turkey tail supplementation, particularly in cancer supportive care—the NIH study Stamets references is a robust, peer-reviewed benchmark. Explore agarikon and amadou applications for anti-inflammatory or antimicrobial purposes, keeping in mind that agarikon's rarity means cultivation from mycelium rather than wild harvesting is the sustainable option. For pest and vector control, stay informed about emerging research on cordyceps-derived attractants and their application to malaria and other vector-borne disease management. More broadly, Stamets' work invites a reconsideration of fungi not as peripheral to human health but as central—organisms whose survival strategies encode biochemical solutions to human medical problems. The mycological frontier remains vast and largely unexplored.
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Transcript
[0:04] ♪ dreamy electronic music ♪
[0:23] applause
[0:28] We are now rediscovering
that which our ancestors
long ago knew-
[0:33] that mushrooms are deep
reservoirs for very powerful
medicines.
[0:37] In the next 10 minutes, I'm
going to describe 4 mushrooms
[0:40] which I think are essential for
human health.
[0:43] The first mushroom I want to
mention is amadou.
[0:45] Amadou is described by
Hypocrites in 450 B.C.
[0:50] as an anti-inflammitory.
[0:52] Well amadou is a birch
polypore, but has other
attributes as well.
[0:56] You can hollow this mushroom out
in the center,
[0:58] put embers of a fire inside,
[1:00] and keep fire alive for days.
[1:03] Moreover, if you boil this
mushroom,
[1:05] it delaminates into a
cellular fabric.
[1:07] And my hat is made from amadou.
[1:11] Now, another fungal friend I
have here,
[1:14] which I want to unveil is
agarikon.
[1:20] Agarikon is the longest living
mushroom in the world.
[1:24] It was described by
Diascribes in 65 A.D. as
elexirium adlongem vitum-
[1:31] the treatment against
consumption.
[1:33] This mushroom is a resident of
the old growth forest.
[1:36] It is now thought to be extinct
in Europe.
[1:38] It grows in Northern
California, Oregon, Washington,
and British Columbia.
[1:42] This mushroom survives in the
old growth forest under
extremely adverse conditions-
[1:46] hundreds of inches of rain per
year, wind, sleet, hail, baking
in the sun,
[1:51] and yet it's the longest living
mushroom we know today.
[1:56] And may I have the clicker?
[2:00] Thank you
[2:02] So, my partner and wife
spend a lot of time in the
old growth forest
[2:06] looking for these mushrooms.
[2:08] And to give you some idea how
rare agarikon is,
[2:12] although we have 40 strains
of agarikon in culture after
30 years-
[2:16] the largest library by far in
the world,
[2:18] my dear professor,
Dr. Michael Beug,
[2:20] discovered his first agarikon in
the old growth forest just these
past few weeks,
[2:24] after looking for mushrooms in
the old growth forest for more
than 40 years.
[2:28] So, agarikon has anti-tubercular
properties,
[2:32] and we have now confirmed this
[2:34] working with the U.S. Bioshield
Biodefense Program
[2:36] under the guidance of NIH and
US AmRad.
[2:39] And sometimes we have to go
great extremes to find these
mushrooms.
[2:44] This is a 700-year-old douglas
fir tree.
[2:47] Our team member has sentenced
the tree.
[2:49] We go 100 feet up this tree,
[2:52] and this is the oldest agarikon
that we found so far,
approaching 100 years in age.
[2:58] Now how is it that this
mushroom can survive under
microbial attack?
[3:02] And is able to do so
because the mycelium is
this cellular architecture
[3:07] that is based on a
network concept.
[3:10] And we don't need to harvest the
mushroom- we just need a small
piece of tissue
[3:13] and the mycelium, as it
grows, utilizes what we
know as apigenesis.
[3:18] It has the amazing
ability to adapt.
[3:20] It has host defense strategies
against pathogens.
[3:24] And using this information,
we've been able to develop some
very powerful
[3:28] gateways to new medicines.
[3:31] And these are extracellular
droplets that we wash from
the mycelium
[3:35] and I'm happy to announce that
we have discovered a new class
[3:39] of antimicrobals and antivirals
called fomitopsterols-
[3:43] after the Latin name for
this mushroom which is
fomitopsis officinalis.
[3:47] So powerful are these antivirals
that when we do a
[3:50] 100 to 1 dillusion, we are more
powerful than ribovirin,
[3:55] against flu viruses and herpes.
[3:59] Now mushrooms have
other properties which
are interesting.
[4:03] So this is a group of cordyceps
mushrooms.
[4:05] They're known as
entomopathogenic fungi -
[4:08] fungi that kill insects.
[4:10] Insects are in constant dire
dance between dinner and death
[4:14] as they go through soils.
[4:16] And cordyceps is a source of
cyclosporine.
[4:19] Moreover, just recently the FDA
approved Novartis for a new
anti-MS drug called Gilenya,
[4:26] which is predicted to be one of
the 10 most profitable
commercially produced drugs
[4:31] in the history of medicine.
[4:33] But cordyceps has a
different face.
[4:36] The cordyceps is a mold, has a
mold stage,
[4:40] and they're like 2 faces of the
same organism.
[4:43] These spores are very infectious
to these insects,
[4:46] and most insects have
entomopathogenic fungi that can
harm them,
[4:49] so they avoid them with great
diligence.
[4:51] But I did something different.
[4:53] I took these cultures of the
mold state and I morphed it
in a laboratory
[4:57] to a pre-sporulating form.
[5:00] And so the insects avoid
these spores,
[5:03] but I've discovered that if
you took the mycelium without
the spores,
[5:06] something else happened which
was truly amazing-
[5:09] they became super-attractants.
[5:12] They became super-attractants to
ants, to termites,
[5:15] and a surprising array of other
types of other types of insects.
[5:19] And so the insects, in
this case an ant,
[5:21] becomes mummified and then
boing!
[5:24] of course this mushroom sprouts
out of his head.
[5:26] So it goes full circle.
[5:28] Now, we did extracts, again
watching the mycelium,
[5:32] and we were able to find
that termites
[5:33] would stream directly to the
location where the extracts
were placed
[5:36] and 3 positive controls and the
termites would tunnel
[5:39] specifically to where that
location was.
[5:42] Well, I starting trying it
against other non-social
insects -
[5:45] flys, gnats, mosquitos-
[5:47] and this is a baseline, the flat
graph there is the control,
[5:51] and the only difference
there is we added the
mycelium to the extract.
[5:56] And we have not just
attractants, but I've discovered
[5:58] super-attractants.
[6:00] So when I tried it against the
mosquitos,
[6:02] and this is where we hit the big
homerun,
[6:04] we can attract mosquitos roughly
equivalent to a human hand with
the extracts.
[6:09] This has profound implications
for disease control, for malaria
to yellow fever
[6:14] to west nile virus.
[6:15] And so, what can we do?
[6:17] There's lots that we can do.
[6:19] I think we can now control
disease vectors-
[6:22] zoonotic diseases cariied by
insects across landscapes.
[6:25] And since so many insects and
arthropods vector diseases,
[6:29] most of you may not know that
H5N1 birdflu is carried by
houseflies.
[6:34] This is something that is not
widely reported.
[6:36] But because of climate change,
sub-tropical diseases are now
[6:40] entering into temperate zones.
[6:42] So being able to control
zoonotic pathogens
[6:45] I think is one avenue that will
have a positive impact
[6:48] and helping habitats and humans
dwelling within those habitats.
[6:52] Moreover, insects and arthropods
not only transmit diseases
[6:55] that afflict humans but plants.
[6:57] So the implications of this I
think are absolutely enormous.
[7:01] So we can increase the
efficiency of bug zappers,
[7:06] we can steer insect migrations
across landscapes.
[7:11] This is a paradigm-shifting
revolutionary breakthrough
[7:15] on the most fundamental
of levels.
[7:17] And moreover, we can attract
disease-carrying bugs
[7:24] and blend them with expired
antiviral drugs,
[7:27] antimicrobial drugs,
[7:28] or the crude precursors that
made those drugs.
[7:31] We can create a panoply of a
mixture of these drugs
[7:34] so the disease resistence would
not occur.
[7:36] We can distract the insects away
from human populations,
[7:39] away from animal populations,
[7:40] away from plant populations.
[7:42] Or we can bring them to a locus
and be able to control them.
[7:45] Most of you have heard that
the mosquito population on
the east coast
[7:48] was 10 times greater this year
than it was previously.
[7:52] So another mushroom empowers the
immune system,
[7:56] and this is turkey tails.
[7:58] And turkey tail mushrooms
have also been used for
more than a thousand years.
[8:02] NIH funded our group with a
$2.1 million breast cancer
clinical study,
[8:06] which has recently been
completed.
[8:09] Now this breast cancer clinical
study
[8:10] was dealing with a non-ER, non
estrogen responsive
[8:13] breast cancer patients - ladies.
[8:16] And the study has come back with
some remarkable results.
[8:21] When the patients have radiation
therapy,
[8:24] or chemotherapy,
[8:25] their immune system is often
times impaired
[8:28] so natural killer cells are
decreased.
[8:31] Taking these mushrooms...
[8:33] the adjunct therapy,
[8:35] not as a substitution, but to
support the immune system,
[8:38] the natural killer cells
increase on a dose-dependant
basis.
[8:42] The red bar is no
treatment, with 3 grams
and 6 grams per day.
[8:48] And then post-radiation, the
immune system is depressed,
[8:51] and then a dose-dependant basis,
the natural killer cells are
[8:53] enhanced over a period
of 4 weeks.
[8:57] This raises base
immunity function,
[8:59] which I think is critically
important.
[9:01] Now this hit home to me very
personally.
[9:04] In June of 2009, when my
84-year-old mother called me up,
[9:09] and says Paul, I have
something very serious to
talk to you about,
[9:12] but you're always so busy.
[9:14] It's a terrible thing to hear
from a mom.
[9:17] I said Mom, what wrong?
[9:19] She's a very happy, genuine
person.
[9:21] And she goes I'm worried.
[9:23] And my mother's deeply
religious -
[9:24] has not seen a doctor
since 1968.
[9:27] She said my right breast is 5
times the size of my left.
[9:31] I have 6 swollen lymph glands
the size of walnuts.
[9:35] And her voice started shaking,
[9:36] and I'm not ashamed to admit
that I started crying.
[9:39] Why didn't you tell me sooner?
[9:40] We spent a large part of June at
the Swedish Breast Cancer Clinic
in Seattle.
[9:45] The oncologist examined her, and
upon the second examination,
[9:50] she had a 5.5 centimeter in
diameter tumor.
[9:53] It metasticized - it went
to her sternum, it went
to her liver.
[9:57] She had stage 4 breast cancer.
[10:00] The doctor gave her less than 3
months to live.
[10:03] He stated it was the second
worse case of breast cancer
[10:06] she had seen as a doctor in 20
years of practice.
[10:10] We had the circle family
meeting.
[10:11] Many of you have
gone through this.
[10:13] My mom announced that she
bought a pine casket,
[10:16] the cheapest one that
she could find,
[10:17] because she was going to heaven.
[10:20] But then the doctor said
you're too old to have
radiation therapy,
[10:24] you can't have your
breast removed,
[10:26] but there's an interesting
study on turkey tail mushrooms
at Bastyr Medical School.
[10:30] You might want to
try taking those.
[10:33] Well my son's supplying those!
[10:35] So she was put on Taxol and
Herceptin - wonderful drugs -
[10:40] and she started taking 8 turkey
tail capsules a day -
[10:42] 4 in the morning and 4 in the
evening.
[10:45] And that was in June of 2009.
[10:49] And today, my mother has no
detectable tumors.
Mycologist and advocate who has dedicated his life to studying mushrooms and their transformative potential to heal people and restore the planet through medicine, agriculture, and…
Yes, according to Stamets' research, cordyceps mycelium extracts (without spores) act as super-attractants to mosquitos, drawing them at a strength roughly equivalent to human presence. This has applications for concentrating disease vectors for control rather than relying on conventional insecticides.
In an NIH-funded clinical trial, turkey tail supplementation increased natural killer cells (immune cells that fight cancer) on a dose-dependent basis in breast cancer patients undergoing chemotherapy or radiation, helping restore immune function that these treatments typically suppress.
At a 100-to-1 dilution, fomitopsterols (antimicrobial compounds isolated from agarikon mycelium) have shown greater antiviral potency than ribovirin against flu and herpes viruses in laboratory testing, though human clinical trials would be needed to confirm therapeutic benefit.
Agarikon grows only in old-growth forests under extreme conditions (heavy rain, wind, sleet, sun exposure) and matures slowly; it is now extinct in Europe and found only in Pacific Northwest forests. A leading mycologist searched for over 40 years before finding his first specimen, illustrating the rarity.
Amadou, a birch polypore, can be hollowed out and filled with fire embers, and it will keep the fire alive for days due to its dense, slow-burning cellular structure. When boiled, it delaminates into a flexible fabric suitable for clothing or other applications.
Mycelium is the root-like network of fungal threads that grows through soil or wood. It is the primary source of medicinal compounds (like fomitopsterols and immune-activating polysaccharides) and can be cultivated indefinitely without harvesting the fruiting body, making it a sustainable source for pharmaceutical development.
Potentially yes—cordyceps-derived super-attractants could lure mosquitos and other disease vectors to specific locations where they can be eliminated or treated with antimicrobial compounds, offering a biological alternative to conventional pesticides across landscapes.