Sometimes
the most interesting autism research isn't about autism.
One of the
reasons I continue to read research far outside the autism field is that
biology does not respect the boundaries between medical specialties.
A discovery
in Alzheimer's disease can reveal something important about autism.
A
mitochondrial study can suggest a new autism hypothesis.
Research
into probiotics can uncover an unexpected signalling pathway.
And
sometimes you have to read about gum disease.
A new
clinical trial in severe periodontitis has caught my attention because it
provides an intriguing piece of human evidence for a therapeutic concept I
discussed in my recent post on FPR2 and inflammation resolution.
Epiphany:
Edging closer to targeting neuro-inflammation in autism via FPR2
There is
also already some autism-specific evidence involving both omega-3 and aspirin
individually.
The
interesting question is what happens when they are put together.
A brief
recap of the FPR2 idea
In my recent
post, I discussed a potentially important shift in how we think about
neuroinflammation in autism.
Rather than
simply trying to suppress inflammation, researchers are increasingly interested
in the body's own mechanisms for resolving inflammation and returning tissue to
a healthy state.
One of the
key players is FPR2, a receptor found on immune cells as well as microglia,
astrocytes, neurons and other cells in the brain.
FPR2 can be
activated by naturally occurring specialized pro-resolving mediators, including
Lipoxin A4 (LXA₄) and certain resolvins.
This was
particularly interesting in autism because one study found lower levels of LXA₄
in children with autism, with lower levels associated with greater autism
severity in that particular study.
I also
discussed a new experimental drug called MR-39, which directly activates FPR2.
In autism mouse models, MR-39 reduced inflammatory signalling and was
associated with improvements in synaptic proteins, dendritic spine structure
and social behaviour.
The
important idea was therefore not simply:
"Autism involves too much inflammation."
It was:
"Could some autistic people have difficulty switching
inflammation off properly?"
If so,
stimulating the body's natural resolution-and-repair system might be a more
sophisticated approach than simply suppressing inflammatory pathways.
At the time,
MR-39 was an experimental research compound and there was no obvious practical
way to activate FPR2 safely in humans.
But there
may be another way of approaching the same biological system.
And this is
where an unexpected paper about gum disease becomes interesting.
An
unexpected discovery from dentistry
The new
study was a multicentre randomized clinical trial involving 109 people with
advanced periodontitis.
All
participants received standard mechanical treatment to remove bacterial
deposits beneath the gums.
They were
then randomized to receive placebo, antibiotics, omega-3 plus low-dose aspirin,
or both treatments.
The
antibiotic group received amoxicillin and metronidazole for two weeks.
The omega-3
group received 3 grams of omega-3 per day plus 100 mg of aspirin per day for
six months.
The patients
were followed for a full year.
The
researchers defined treatment success as having no more than four remaining
deep periodontal pockets.
In everyday
language, the results mean that roughly 6 out of every 10 people receiving
antibiotics improved enough to reach the study's target.
But almost
exactly the same proportion of people taking omega-3 plus aspirin reached the
target.
The actual
figures were:
- Antibiotics: 58.6%
- Omega-3 + aspirin: 57.7%
- Antibiotics + omega-3/aspirin: 57.1%
- Placebo + mechanical treatment: 23.1%
So about 6
people in 10 reached the target with antibiotics, compared with almost 6 in 10
taking omega-3 plus aspirin, while only about 2 in 10 reached it with
mechanical treatment alone.
This does not
mean that omega-3 and aspirin are antibiotics.
They aren't.
What is
interesting is that the two approaches produced a similar clinical outcome
while acting through very different biology.
The body has
its own inflammation-resolution system
This brings
us back to the FPR2 story.
We often
think of inflammation as something that should simply be switched off.
But the
biology is more sophisticated than that.
Inflammation
is useful.
When tissue
is damaged or invaded by microbes, the immune system needs to respond. The
problem arises when the inflammatory response persists after the original
danger has been dealt with.
The body
therefore has an active system for resolving inflammation.
Specialized
pro-resolving mediators, or SPMs, help coordinate this process.
They
include:
- lipoxins
- resolvins
- protectins
- maresins
These
molecules do not simply suppress the immune system.
They help
tell it:
"The job is done. Stop fighting and start
repairing."
That
distinction is important.
The goal is
to allow the inflammatory response to finish properly.
Omega-3
is already an interesting molecule in autism
It is
important to make clear that omega-3 is not a new idea in autism.
There have
been numerous studies investigating EPA and DHA in people with autism or ADHD.
The clinical results have been inconsistent, so omega-3 cannot currently be
regarded as an established treatment for the core characteristics of autism.
Nevertheless,
there are several reasons why researchers have been interested in it.
EPA and DHA
have important roles in the brain and are also precursors for specialized
pro-resolving mediators.
So omega-3
is potentially doing something more interesting than simply acting as a
conventional "anti-inflammatory."
It provides
some of the raw material from which the body's inflammation-resolution system
makes its signalling molecules.
Aspirin is
also not a completely new idea
Aspirin is not
being introduced here as an entirely new autism treatment either.
A 2024 study
investigated chronic low-dose aspirin in rats exposed prenatally to valproic
acid, an established animal model used to produce autism-like behaviours.
The
researchers reported that aspirin:
- improved social behaviour
- reduced repetitive grooming
- reduced anxiety-like behaviour
- increased AMPK activity in the
hippocampus.
The study
therefore provides an autism-specific experimental reason to be interested in
aspirin, although obviously a rat study cannot establish that aspirin improves
autism in humans.
AMPK is
particularly interesting because it is one of the cell's major energy sensors
and regulates processes involved in cellular energy metabolism, mitochondrial
function, autophagy and cellular stress responses.
So aspirin
already has an independent connection to autism research.
So what
is new? The interesting part is the
combination
What
interests me is the specific biological reason for combining them.
And that
reason comes directly from the FPR2 hypothesis discussed in my previous post.
Omega-3
provides the ingredients
EPA and DHA
are precursors for several specialized pro-resolving mediators.
But aspirin
introduces an additional biochemical effect.
Aspirin can
modify the activity of COX enzymes and redirect some lipid metabolism towards aspirin-triggered
specialized pro-resolving mediators.
These
include aspirin-triggered forms of resolvins.
Some of
these resolution signals can activate FPR2.
This gives
us a potential sequence:
This is why
the combination is more interesting than either component considered in
isolation.
The
hypothesis is not simply:
"Omega-3
is anti-inflammatory, so perhaps it helps autism."
It is much
more specific:
"If
impaired inflammation resolution is relevant to a subset of autistic people,
could omega-3 plus aspirin increase endogenous pro-resolving signalling and
thereby activate pathways such as FPR2?"
That is a
testable biological hypothesis.
This
connects directly to my previous FPR2 post
In my
previous post I discussed research reporting lower circulating Lipoxin A4
(LXA₄) in children with autism, with lower LXA₄ associated with greater autism
severity in that particular study.
LXA₄ is
itself a specialized pro-resolving mediator and an important FPR2 ligand.
I also
discussed the experimental FPR2 agonist MR-39.
MR-39
attempts to activate the resolution system directly through FPR2.
The
omega-3/aspirin approach would be different.
Rather than
directly activating FPR2 with a synthetic drug, it would attempt to increase
the body's own production of pro-resolving signals upstream.
So there are
now two conceptually different approaches to the same biological system:
MR-39 → direct FPR2 activation
versus
omega-3 + aspirin → increased pro-resolving lipid mediator
production → FPR2 and related pathways
The latter
is obviously much less specific than a dedicated FPR2 agonist.
But
biologically, the two ideas converge.
Why might
this matter to some autistic adults?
A treatment
given during early brain development is not necessarily going to have the same
effect in an adult.
However, the
fact that autism is developmental does not mean that all associated biological
abnormalities become permanently fixed once development ends.
An autistic
adult can still have differences in:
- immune signalling
- microglial activity
- mitochondrial function
- cellular energy metabolism
- synaptic plasticity
- inflammatory signalling.
If
persistent neuroinflammation or metabolic stress is present in a particular
person, it is conceivable that changing that biology could improve how the
existing neural network functions.
It might
mean improving particular domains of function.
For example:
executive function
cognitive flexibility
social engagement
repetitive behaviour
Whether this
actually happens in humans remains unknown.
Perhaps
omega-3 alone is not the whole story
There have
already been numerous studies of omega-3 supplementation in autism.
The
inconsistent results are interesting.
Perhaps
simply supplying more EPA and DHA is not sufficient.
The
important question might instead be:
Can the
individual efficiently convert those fatty acids into the pro-resolving
mediators needed to terminate inflammation?
If the
bottleneck is downstream of the fatty acid itself, increasing omega-3 intake
may have limited effects.
Aspirin
could potentially change the metabolic pathway and increase formation of
certain aspirin-triggered pro-resolving mediators.
The
dental study provides an important human clue
This is
where the periodontitis trial becomes relevant.
The
researchers were not trying to treat autism.
They were
trying to treat severe gum disease.
Yet omega-3
plus low-dose aspirin produced a clinical result remarkably similar to the
antibiotic treatment.
That does not
prove anything about autism.
Periodontal
inflammation and neuroinflammation are obviously not the same thing.
But it does
provide human evidence that manipulating the body's resolution pathways can
produce a substantial clinical effect in a chronic inflammatory disease.
That makes
the underlying concept more interesting.
And the fact
that the treatment did not appear to provide additional benefit when simply
added to antibiotics is also intriguing.
The
omega-3/aspirin intervention was not just acting as another antibiotic.
It appears
to have been addressing a different part of the disease process.
Who might
respond?
I would not
expect every autistic person to respond.
If the
mechanism is correct, the likely responders might be people with some
combination of:
- persistent inflammatory
signalling
- altered immune regulation
- oxidative or metabolic stress
- impaired inflammation resolution
- altered lipid mediator profiles.
That
immediately suggests a precision-medicine approach.
Rather than
giving the treatment to everybody with an autism diagnosis, identify people
whose biology suggests that this particular pathway is abnormal.
An
important warning about aspirin
There is an
obvious reason to be cautious here.
Aspirin is a
drug, not a nutritional supplement.
It affects
platelet function and can increase bleeding risk. It also has important
age-specific safety considerations.
In
particular, aspirin should not routinely be given to children or teenagers
because of the risk of Reye's syndrome associated with aspirin exposure during
certain viral illnesses.
The
discussion here is therefore particularly relevant to the question of adult
autism, and even there it remains a research hypothesis rather than a treatment
recommendation.
Why
reading outside autism matters
This is
perhaps the most important lesson from this whole exercise.
The autism
research gave us one piece:
reduced LXA₄ and the possibility of impaired resolution
The FPR2
research gave us another:
direct activation of an inflammation-resolution receptor can
improve inflammatory and synaptic abnormalities in autism animal models.
The
aspirin/autism animal study gave us another:
low-dose aspirin can alter AMPK signalling and improve
autism-like behaviours in rats.
And then a
group of researchers studying gum disease unexpectedly supplied another:
omega-3 plus low-dose aspirin can produce a clinical outcome
comparable to antibiotics in severe periodontal disease.
But biology
does not care whether a paper is published in a dental journal, an autism
journal, a neuroscience journal or a mitochondrial journal.
The same
molecules and signalling pathways operate across different diseases.
This is why
I think anyone seriously interested in autism needs to read far beyond autism
research.
Occasionally,
it is in a paper about gum disease!
For the
moment, I would regard omega-3 plus low-dose aspirin as an intriguing
hypothesis for a subset of autistic adults, not as an established autism
treatment.
But given
the existing evidence for omega-3, the experimental evidence for aspirin, the
FPR2/LXA₄ hypothesis, and now the unexpected human findings in periodontitis, I
think it is a hypothesis worth testing if you want an OTC anti-inflammatory therapy.
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