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Showing posts with label Estradiol. Show all posts
Showing posts with label Estradiol. Show all posts

Thursday 8 February 2018

DHED, delivering Estradiol only to the Brain, also Lupron and Spironolactone










The Hungarian flag, for clever Laszlo Prokai

  

Lupron – partially right, but for the wrong reason? 

In the US there undoubtedly are some quack therapies for autism, however on occasion we have seen that you can stumble upon an effective therapy for entirely the wrong reason. In the history of medicine there are drugs that were stumbled upon, or created by accident.
In the case of the “Lupron protocol” which was promoted by a father and son (Geier and Geier), an extremely expensive therapy was apparently applied to hundreds of children, before being shut down by the medical regulators.
Without going into all the details, Geier’s therapy combined chelation (antioxidants) and a drug called Lupron that causes a dramatic reduction in testosterone levels.  In the jargon, it causes hypogonadism - diminished functional activity of the gonads (the testes in males or the ovaries in females). Lupron is another of those drugs that costs ten times more in the US than in the normal world. So a single injection of Lupron, depending on the dose,  costs up to $1000 in the US. Lupron is approved for use in children, male and female, with early onset puberty.
The case attracted media attention because Geier was also heavily involved in the idea that vaccines could cause autism and because patients were reportedly paying up to $50,000 for the complete therapy.
Geier was naturally a target for the anti-quack movement and why treat autism at all movements. He features in their books and blogs. 

Autism's False Prophets: Bad Science, Risky Medicine, and the Search for a Cure  (no link provided on purpose)

Still making the news in 2018.

Regulators who targeted controversial autism doctor may pay millions for humiliating him 

In this case I think Geier stumbled upon a rather extreme, partially effective therapy but for the wrong reason. I doubt such an expensive  potent drug is needed to produce the same beneficial effect, in that sub-group that appear to respond.

The fact that Lupron is so expensive in the US, may indeed contribute to the desire parents had for it.  There is a term in economics called a “Giffen good”; it is for the type of good that the more it costs the more you want it, like those very expensive hand bags people buy.

Personally I like inexpensive autism therapies, available to all.

Having read so much about autism, I am much less critical of those putting forward alternative ideas and therapies. It is very easy to get something right for entirely the wrong reason in medicine, which is something that is highly unlikely in many areas of science.

What I do not like is the predatory nature of some people with unusual ideas and therapies who treat autism. This is almost exclusively a North American phenomenon. Some parents will pay nothing to treat autism, for example some in countries with socialized medicine, while others would sell their house for a hope of an improvement.

The name Geier comes from the German word for vulture, maybe not the ideal surname for a healthcare worker.

If you read the following article from the Baltimore Sun you will see that there likely were some responders to this therapy:-

Lupron therapy for autism at center of embattled doctor's case 

"Wessels, who lives in Rock Rapids, Iowa, took Sam to see Geier in his Indianapolis office two years ago. She said there were months of genetic and hormone tests, and then the diagnosis. She began injecting Sam with Lupron daily.
She said the diagnosis made sense to her. Sam was not only having trouble communicating and difficulty learning, but he was tall for his age, had hair on his legs and began constantly masturbating by the time he was 5.
She said there was no "wow" moment where Sam snapped out of his autism, a spectrum of disorders where sufferers lack an ability to communicate and interact properly. But in the course of the next year, Sam's reading improved from 35 words a minute to 85 and he focused in class. He stopped masturbating as much.
Wessels thought Sam was naturally advancing and planned to taper the Lupron at some point — at 9, he had reached the generally accepted age limit for a precocious puberty label.
The day came abruptly four months ago when a nationwide shortage cut off Sam's supply. Wessels said she saw Sam return to his old habits, from flapping his hands, to pacing, to forgetting how to get to his classes.
"I felt like I got a glimpse of the child my son was meant to be, not the one autism gave me," said Wessels, fighting back tears. "It's so sad to watch your child fade away again."


Lupron and RORalpha

Regular readers of this blog may have noticed an entirely different reason Lupron might be beneficial in a sub-group of people with autism. It has nothing to do with vaccines and mercury-containing thimerosal preservative.

Reducing testosterone in boys is going to have effects like increasing estradiol.
















The schematic illustrates a mechanism through which the observed reduction in RORA in autistic brain may lead to increased testosterone levels through downregulation of aromatase. Through AR, testosterone negatively modulates RORA, whereas estrogen upregulates RORA through ER. 

androgen receptor = AR 
estrogen receptor = ER 

We have seen that RORA is suggested to act like a central point/nexus that affects dozens of biological processes disturbed in autism, making it a key target for therapy.



Other drugs that affect androgen receptors and are suggested in some autism?

Are there any other alternative autism therapies that affect testosterone and so androgen receptors? The answer is yes; this time a very cheap one called Spironolactone, that has been mentioned earlier in this blog.
The MAPS doctor known to some readers of this blog, Dr Rossignol, was one of the coauthors with the late Dr Bradstreet, in a hypothesis regarding Spironolactone.


Spironolactone is a potassium sparing diuretic, but also has the effect of shifting the balance between testosterone/estradiol towards estradiol, this makes it a useful therapy to treat acne for which it is sometimes prescribed. It seems to help some with autism.

I think any drug/supplement suggested to affect RORA in the right direction, will likely be reported to also improve acne, even if that sounds rather odd. If it does not improve acne, it lacks potency. Not all acne remedies will affect RORA.
In fact there are numerous ways to affect testosterone and estradiol and they are well documented on the internet because of all the males who are trying to become females (the transgender community).
Donald Trump and his personal physician declared they take a small daily dose of the drug finasteride, which is why both of them have such a full head of hair, and why Trump can brag about his low PSA result. This drug is used to treat an enlarged prostate and at a lower dosage, hair loss.  It works by decreasing the production of dihydrotestosterone (DHT), an androgen sex hormone, in certain parts of the body like the prostate gland and the scalp. 
Lupron might be too expensive in the US for males becoming females, but the other testosterone/estradiol modifying drugs seem to be very widely used/abused, depending on your views.

“Normal” levels of male/female hormones  
One criticism of Geier was that while he did many different tests to measure testosterone in his patients, he seemed over willing to prescribe his highly potent testosterone reducing drug. It was reportedly not the case that he only used Lupron on patients with extremely elevated levels of testosterone.
In fact what are normal levels of male/female hormones?
There does not seem to be a normal level, rather a very wide range. the charts below are in adults.


Serum total T (A) and bioavailable T (B) levels as a function of age among an age-stratified sample of Rochester men (solid lines, squares) and women (dashed lines, circles).



Serum total estrogen (A) and bioavailable estrogen (B) levels as a function of age among an age-stratified sample of Rochester men (solid lines, squares) and women (dashed lines, circles).



Affecting Testosterone/Estradiol Just in the Brain
I do sometimes receive comments asking about possible future autism drugs in the pipeline, I even once had a section called “Future Drugs”. Things move so slowly I now really only focus on repurposing what is already available.
However, a really interesting new drug, DHED, is being developed to increase the level of the hormone estradiol just in the brain. Now as regular readers will know, in autism there is a lack of estradiol and a reduction in the expression of estrogen receptor beta. We know that estradiol is highly neuroprotective and that estrogen receptors in the brain modulate RORa, which is one of those switches that control a large group of genes often disturbed in autism. So a new drug developed to help post-menopausal women has potential to be repurposed to treat neurological disorders like autism and indeed Alzheimer’s. 
Interestingly for me is that the lead researcher, a Hungarian called Laszlo Prokai, also researches another hormone, TRH, that I wrote about extensively a long ago in this blog. TRH is potentially another very useful therapy inside the brain.  
Thyrotropin-releasing hormone (TRH), is a releasing hormone, produced by the hypothalamus, that stimulates the release of thyroid-stimulating hormone (TSH) and prolactin from the anterior pituitary.  Thyroid-stimulating hormone (TSH) then goes on to stimulate the thyroid gland to produce thyroxine (T4), and then triiodothyronine (T3) which stimulates the metabolism of almost every tissue in the body.
As I discovered a few years ago, TRH does much more within the brain, as a result it has antiepileptic properties and mood enhancing properties. The US Army is funding the development of a TRH nasal spray for ex-combatants with mood disorders and a risk of suicide. Antidepressants like Prozac have the odd side effect of increasing suicidal tendencies.
A TRH super-agonist (Ceredist) already exists in Japan, so I could never really understand why the US Army did not just get that drug approved by the FDA.  

More Laszlos please
The big gap in all neurological disorders is translational research, which means actually converting all the existing knowledge into usable therapies for humans.
So it looks like we need more people like Laszlo; in fact there is another - Katalin Prokai-Tatrai, I assume it is his wife.
So like we already have the very talented duo Chauhan & Chauhan, we have Prokai & Prokai. What we would ideally want is Prokai & Prokai to translate the knowledge of Chauhan & Chauhan into human therapies.
As described in one of their papers:
Our laboratory has been involved in medicinal chemistry-driven research with attention to facilitating drug delivery of central nervous system (CNS) agents via prodrug approaches.

This is important because there are clever drugs that would be useful to treat brain disorders but you cannot get them through the blood brain barrier (BBB). So making a new compound that can cross the BBB and then converts back to the original drug is a neat solution. 

Dr. Prokai's current research focuses on
(1) Novel therapies against neurodegenerative and ophthalmic diseases using site-selective prodrugs
(2) Development and use of proteomics in aging research, studying neurodegenerative diseases and cancer, with especial attention to quantitative expression profiling and oxidative stress-associated posttranslational modifications
(3) Discovering new therapeutic agents based on neuropeptides and peptidomimetics as lead molecules.

In particular:
·         Molecular mechanisms of estrogen neuroprotection

·         Molecular pharmacology of thyrotropin-releasing hormone




“10β,17β-Dihydroxyestra-1,4-dien-3-one (DHED) is an orally active, centrally selective estrogen and a biosynthetic prodrug of estradiol which was discovered by Laszlo Prokai and colleagues. Upon systemic administration, regardless of route of administration, DHED has been found to selectively and rapidly convert into estradiol in the brain, whereas no such conversion occurs in the rest of the body. Moreover, DHED itself possesses no estrogenic activity, requiring transformation into estradiol for its estrogenicity. As such, the drug shows selective estrogenic effects in the brain (e.g., alleviation of hot flashes, neuroprotection) that are said to be identical to those of estradiol, whereas it does not produce estrogenic effects elsewhere in the body.  DHED has been proposed as a possible novel estrogenic treatment for neurological and psychiatric conditions associated with hypoestrogenism (e.g., menopausal hot flashes, depression, cognitive decline, Alzheimer's disease, and stroke) which uniquely lacks potentially detrimental estrogenic side effects in the periphery


Highlights


·         Treatment with 10β,17β-dihydroxyestra-1,4-dien-3-one (DHED), a brain-selective prodrug of 17β-estradiol, for 8 weeks decreased amyloid precursor protein in APPswe/PS1dE9 double-transgenic mice
·         DHED treatment reduced brain amyloid-β peptide levels
·         DHED-treated APPswe/PS1dE9 double-transgenic mice had higher cognitive performance compared to untreated control animals
·         DHED treatment faithfully replicated positive neurobiochemical effects and consequent behavioral improvement observed for 17β-estradiol
·         DHED did not stimulate uterine tissue, whereas 17β-estradiol treatment did.  

By the same author Laszlo Prokai: 

Design and Exploratory Neuropharmacological Evaluation of Novel Thyrotropin-Releasing Hormone Analogs and Their Brain-Targeting Bioprecursor Prodrugs

Medicinal Chemistry: Compound could lead to estrogen therapies with fewer side effects

Estrogen levels drop in the brains of women who have gone through menopause or had surgeries to remove their ovaries. This hormone deficiency can lead to hot flashes, depression, trouble sleeping, and memory deficits. Hormone replacement therapies can improve women’s quality of life, but taking estrogen has its own problems, such as increased risk of breast and uterine cancer.

A new compound could avoid the source of these side effects—the action of estrogen on cells outside the.

Laszlo Prokai of the University of North Texas Health Science Center and coworkers identified 10β,17β-dihydroxyestra-1,4-dien-3-one (DHED), which is converted to the main human estrogen, 17β-estradiol, in the brain and not elsewhere in the body. An enzyme expressed only in the brain reduces DHED to estradiol.

The researchers injected DHED into female rodents without ovaries and showed that estrogen levels jumped in the brain but not in other tissues. Then, through a series of experiments, they demonstrated that the compound had only neurological effects.

“It’s exactly the right strategy for avoiding the cancer risks and gaining the benefits in the brain,” says Bruce S. McEwen, a neuroendocrinologist at Rockefeller University. He thinks the next step is to show that the compound doesn’t have toxicity problems so that clinical trials in people can start.  The researchers are planning such studies in hopes of moving the compound “from the bench to the bedside,” Prokai says.



Why is Estradiol good for your brain?
You may be wondering why I give so much time on this blog to female hormones. There is a lot of evidence beyond RORa, that estrogen/estradiol and its receptors are very important to healthy brain function. 
The paper below is very interesting and worth a read. 

Sex hormones, particularly estrogens, possess potent antioxidant properties and play important roles in maintaining normal reproductive and non-reproductive functions. They exert neuroprotective actions and their loss during aging and natural or surgical menopause is associated with mitochondrial dysfunction, neuroinflammation, synaptic decline, cognitive impairment and increased risk of age-related disorders. Moreover, loss of sex hormones has been suggested to promote an accelerated aging phenotype eventually leading to the development of brain hypometabolism, a feature often observed in menopausal women and prodromal Alzheimer’s disease (AD). Although data on the relation between sex hormones and DNA repair mechanisms in the brain is still limited, various investigations have linked sex hormone levels with different DNA repair enzymes. Here, we review estrogen anti-aging and neuroprotective mechanisms, which are currently an area of intense study, together with the effect they may have on the DNA repair capacity in the brain. 
However, estrogen actions on mitochondria are not exclusively related to such mechanism. Estrogen also regulates mitochondrial functions through their classical nuclear mechanism, i.e., transcriptional regulation of nuclear-encoded mitochondrial proteins. It is known that estrogen regulates the nuclear transcription of different proteins affecting mitochondrial function such as nuclear respiratory factor-1 (NRF-1) and peroxisome proliferator-activated receptor-gamma coactivator 1 (PCG-1). Hence, this regulation is critical for the activation of nuclear genes encoding proteins involved in mitochondrial biogenesis as well as in the mitochondrial electron transport chain complexes. It also regulates the transcription of mitochondrial transcription factor A (TFAM), which translocates into mitochondria and initiates transcription and replication of mtDNA

Note PCG-1 above, (a typo for PGC-1, I believe) for all those interested in treating mitochondrial dysfunction.  We saw previously that PGC-1α is a master regulator of mitochondrial biogenesis.
It turns out that Estrogen is key to many aspects of Mitochondria, and the paper  below from 2017 probably deserves its own post. Lack of estrogen or miss-expression of estrogen receptors in the brain is inevitably going to disrupt mitochondrial function.

Estrogens coordinate and integrate cellular metabolism and mitochondrial activities by direct and indirect mechanisms mediated by differential expression and localization of estrogen receptors (ER) in a cell-specific manner. Estrogens regulate transcription and cell signaling pathways that converge to stimulate mitochondrial function- including mitochondrial bioenergetics, mitochondrial fusion and fission, calcium homeostasis, and antioxidant defense against free radicals. Estrogens regulate nuclear gene transcription by binding and activating the classical genomic estrogen receptors α and β (ERα and ERβ) and by activating plasma membrane-associated mERα, mERβ, and G-protein coupled ER (GPER, GPER1). Localization of ERα and ERβ within mitochondria and in the mitochondrial membrane provides additional mechanisms of regulation. Here we review the mechanisms of rapid and longer-term effects of estrogens and selective ER modulators (SERMs, e.g., tamoxifen (TAM)) on mitochondrial biogenesis, morphology, and function including regulation of Nuclear Respiratory Factor-1 (NRF-1, NRF1) transcription. NRF-1 is a nuclear transcription factor that promotes transcription of mitochondrial transcription factor TFAM (mtDNA maintenance factorFA) which then regulates mtDNA-encoded genes. The nuclear effects of estrogens on gene expression directly controlling mitochondrial biogenesis, oxygen consumption, mtDNA transcription, and apoptosis are reviewed. 
Estrogens exert direct and indirect effects on mitochondrial function in a cell-specific manner through activation of membrane-initiated ERα, ER β, and GPER activity and by direct genomic binding of ERα and ERβ to regulate nuclear gene transcription. While still controversial, estrogens also activate mitochondrial localized ERα and ERβ in a celltype-dependent manner. One key nuclear gene increased by E2 is NRF-1 that regulates the transcription of nuclearencoded mitochondrial genes, including TFAM which increases transcription of mtDNA-encoded genes. Thus, E2 coordinates nuclear and mitochondrial gene transcription via NRF-1. Activation of UPRmt also activates ERα and increases NRF-1. E2 also regulates the transcription of genes regulating mitochondrial morphology, enzymes in the TCA cycle and OXPHOS pathways, and mitochondrial protein Snitrosylation. Depending on the cell type, E2 regulates mitochondrial biogenesis and bioenergetic function.   

17β-estradiol is not only a reproductive hormone that is important only in women but it is also of immense importance for development and health in men. Although there is strong evidence from both human and animal studies that estrogen is protective in various brain diseases however, its adverse effect in classic target tissues such as uterus (17β-estradiol behaves as a full agonist on both estrogen receptor (ER) isoforms) is a matter of debate. ER subtype selective ligands are valuable tools for deciphering the specific roles of ER (α and β) in physiology and diseases. These compounds have a strong potential for development as therapeutics as these initiate estrogen signaling in brain but lack the mitogenic effects in other tissues such as ovaries and breast. Moreover, the existing and newer ERsubtype selective agonists will continue to be very valuable tool for deciphering the specific roles of ERα and ERβ 

Severity of symptoms of schizophrenia is greater in males as compared to premenopausal females. Women have been shown to differ in symptom severity depending on the phase of the menstrual cycle. Higher rates of relapse in women with schizophrenia are also observed during the postpartum period (low estrogens), whereas relapse is low during pregnancy (high estrogens). During menopause, women are at risk of developing a new schizophrenic illness. Additionally, premenopausal women appear to have a superior response to typical antipsychotics compared to men and postmenopausal women. Estrogen plays a protective role in women with schizophrenia. Estrogen treatment may reduce negative symptoms in schizophrenic women. Estradiol may exert neuroprotection by several mechanism that may even vary among different brain regions.


Non drug therapies:-
Overeating and smoking will increase your level of estrogen. We saw earlier that in males testosterone is converted to estradiol in fat tissue. 

Not to forget the other part of the Mediterranean Diet:-



Conclusion
Just as we saw that using high doses of antioxidants is beneficial in numerous medical conditions, where nobody calls it chelation, drugs that reduce testosterone or increase estradiol in the brain are not quack therapies, even when proposed by apparent vultures. It pays to keep an open mind.
Hormone replacement therapy (HRT) is a big business and if you can introduce a drug with less side effects, it should sell at a premium price, meaning DHED really should get commercialized.
DHED should be more effective than estradiol for treating neurological disorders because it can be given at a higher dose. In males there is no risk of feminization.
Contrary to what is sometimes quoted, estradiol lowers the risk of prostate cancer and is used to treat aggressive forms of it. High levels of testosterone are linked to prostate cancer and that is why Lupron is sometimes used.
Circulating levels of estradiol vary dramatically. People with a low level of estradiol might well be able to safely increase body-wide 17β-estradiol, rather than waiting a decade for DHED.
High levels of estrogen/estradiol in males may contribute to the extended healthy life expectancy in those with a soy-rich diet, as we will see in the forthcoming post on the Okinawan Diet and aging.



Spironolactone does have the advantage of increasing potassium levels, so someone with autism who responds to bumetanide and has high testosterone/ low estradiol and/or reduced expression of ERβ might see a benefit; I think it might require a high dose.
DHED looks interesting particularly for those with higher plasma estradiol but reduced ERβ in the brain.
I think the lady from Rock Rapids, Iowa in the earlier press report on Lupron, whose son had very hairy legs and responded to Lupron, should try some estradiol, or just get him to drink a great deal of soy milk.  This really should have a similar kind of effect.
It appears that some mitochondrial disease is linked to estradiol and estrogen receptors ERα and ERβ. DHED might be a very clever treatment to what is otherwise pretty much un-curable. So there will be a post on estrogens regulating life and death in mitochondria.
The implication is pretty simple – more estrogen/estradiol please, if you want to live a bit longer, or if your brain does not work so well.





Wednesday 10 January 2018

A RORα Agonist for Autism?


Today’s post is again about RORα, which was suggested to be a nexus where different biological dysfunctions that lead to autism may converge. I think you can consider RORα like a dimmer switch on your lights, you need to adjust the brightness to give the effect you want.



Fine tuning RORα to tune autism gene expression

I recently came across some research where the scientist clearly has the same idea. He has been working on a synthetic RORα/γ agonist for some years and has investigated its use as both a cancer therapy and an autism therapy.
I have become rather interested in cancer therapies because there are so many overlaps between what can lead to cancer and what exists in autism. The big research money is of course in cancer research.
Tumor suppressor genes/proteins like PTEN and p53 have been shown to be disturbed in autism, as is Bcl-2. The Bcl-2 family of proteins regulate cell death (apoptosis); some members induce cell death and other inhibit it; the balance is important.
Generally it seems that most people with autism might benefit from more PTEN and Bcl-2. 

Autism is a developmental disorder of the nervous system associated with impaired social communication and interactions as well excessive repetitive behaviors. There are no drug therapies that directly target the pathology of this disease. The retinoic acid receptor-related orphan receptor α (RORα) is a nuclear receptor that has been demonstrated to have reduced expression in many individuals with autism spectrum disorder (ASD). Several genes that have been shown to be downregulated in individuals with ASD have also been identified as putative RORα target genes. Utilizing a synthetic RORα/γ agonist, SR1078, that we identified previously, we demonstrate that treatment of BTBR mice (a model of autism) with SR1078 results in reduced repetitive behavior. Furthermore, these mice display increased expression of ASD-associated RORα target genes in both the brains of the BTBR mice and in a human neuroblastoma cell line treated with SR1078. These data suggest that pharmacological activation of RORα may be a method for treatment of autism. 
The RORs have been linked to autism in human in several studies. In 2010, Nguyen and co-workers reported that RORα protein expression was significantly reduced in the brains of autistic patients and this decrease in expression was attributed to epigenetic alterations in the RORA gene. Additional work from this group demonstrated that multiple genes associated with autism spectrum disorder are direct RORα target genes and suggested that reduction of RORα expression results in reduced expression of these genes associated with the disorder leading to the disease. Independently, Devanna and Vernes demonstrated that miR-137, a microRNA implicated in neuropsychiatric disorders, targets a number of genes associated with autism spectrum disorder including RORA. There are also additional links between RORα and autism. Deficiency of Purkinje cells is one of the most consistently identified neuroanatomical abnormalities in brains from autistic individuals, and RORα is critical in development of the Purkinje cells. Significant circadian disruptions have also been recognized in autistic patients, and RORs play a critical role in regulation of the circadian rhythm., Additionally, the staggerer mouse displays behaviors that are associated with autism including abnormal spatial learning, reduced exploration, limited maze patrolling, and perseverative behavior relative to wt mice.

SR1078 is a relatively low potency compound with limited RORα efficacy (3–5 μM EC50Emax 40%), but the efficacy compares favorably to other classes of compounds that have been optimized such as a 38% decrease in the same model induced by the mGluR5 allosteric modulator GRN-529 and a 47% reduction by the mGluR5 antagonist MPEP. Both of these compounds have been optimized and display high potency (single digit nanomolar range at mGluR5) and strong efficacy., Thus, we believe that focused optimization of RORα ligands will provide compounds that will have improved efficacy in this model. It should also be noted that SR1078 has both RORα and RORγ agonist activity and a RORα selective agonist has not yet been developed. Thus, it is possible that the RORγ activity of this compound may also play a role in its efficacy in this model of autism. In summary, we have demonstrated that a synthetic RORα/γ agonist is able to increase the expression of key genes whose decrease in expression is associated with ASD both in cell culture and in vivo. Furthermore, the agonist decreases repetitive behavior in an animal model of autism suggesting that it is possible that ROR agonists may hold utility in treatment ASD. 

Activation of p53 function leading to cell-cycle arrest and/or apoptosis is a promising strategy for development of anti-cancer therapeutic agents. Here, we describe a novel mechanism for stabilization of p53 protein expression via activation of the orphan nuclear receptor, RORα. We demonstrate that treatment of cancer cells with a newly described synthetic ROR agonist, SR1078, leads to p53 stabilization and induction of apoptosis. These data suggest that synthetic ROR agonists may hold utility in the treatment of cancer.  

Results showed that levels of Bcl-2 decreased by 38% and 36% in autistic superior frontal and cerebellar cortices, respectively when compared to control tissues. By the same token, levels of P53 increased by 67.5% and 38% in the same brain areas in autistic subjects vs. controls respectively. Calculations of ratios of Bcl-2/P53 values also decreased by 75% and 43% in autistic frontal and cerebellar cortices vs. controls respectively. The autistic cerebellar values were significantly reduced (p < 0.08) vs. control only. There were no significant differences in levels of β-actin between the two groups. Additionally, there were no correlations between Bcl-2, P53, and β-actin concentrations vs. age or PMI in either group.
These results confirm and extend previous data that levels of Bcl-2 and P53 are altered in three important brain tissues, i.e. frontal, parietal, and cerebellar cortices of autistic subjects, alluding to deranged apoptotic mechanisms in autism.  

Conclusion
Increasing PTEN and Bcl-2 is already part of my Polypill, via the use of Atorvastatin.
There are of course many other genes miss-expressed in autism and we cannot give a drug for each one. We need to identify a handful of nexus, where multiple anomalies can be resolved with a single intervention.
It is good that Thomas Burris, the lead researcher, has been working on SR1078 for at least 6 years, let’s hope he continues to persevere.
I think it highly likely that some types of autism will need the opposite therapy, a RORα antagonist.
My method of attempting to modulate RORα will be different. I come back to my earlier gross simplification of autism :- 

As we have seen in earlier posts, the hormonal dysfunction, this time the balance between testosterone and estradiol, has a direct effect on RORα (and vice versa).



The schematic illustrates a mechanism through which the observed reduction in RORA in autistic brain may lead to increased testosterone levels through downregulation of aromatase. Through AR, testosterone negatively modulates RORA, whereas estrogen upregulates RORA through ER.

androgen receptor = AR 

estrogen receptor = ER

As you might know, many hormones are interrelated, so what are thought of as male/female sex hormones have much wider effects. They impact growth hormones and play a big role in calcium metabolism. They also affect serotonin.
We know that in most autism aromatase is reduced, estradiol is reduced and that there is reduced expression of estrogen receptor beta.
In the ideal world it might indeed be best to use an agonist or antagonist to fine tune RORα.
We have a chicken and the egg situation. Is RORα out of tune in autism because the hormones are disturbed, or vice versa?
We do know that hormones generally have feedback loops, but we also know that increasing a hormone like estradiol via obesity is not fully matched by a corresponding reduction in aromatase. So it looks highly plausible that you can tune RORα via estradiol, and that this could be a long term strategy, not just a short term strategy.
In the case of people with low T3 thyroid hormone centrally (in the brain), giving exogenous T3 may help initially, but in the long term it does not because feedback loops to the thyroid will reduce production of the pro-hormone T4. In the extreme you will make the thyroid gland shut down, this does happen to people using thyroid hormones for depression and even weight loss. 
T3 is quite commonly prescribed by alternative practitioners in the US for autism and also for depression in older people. In Europe this hormone is rarely even available. 
Many phytoestrogens are used as OTC autism therapies. These are dietary estrogens that are structurally similar to the human hormone estradiol and so produce estrogen-like effects. They include soy products, fenugreek, kudzu, EGCG etc.







Saturday 16 December 2017

Turner Syndrome, Estradiol and Autism-lessons from the X Chromosome

This post is best read if you have reviewed the earlier ones regarding the estradiol/testosterone disturbances in autism and how they govern the RORα “switch” that then triggers a torrent of other dysfunctions. So the hormonal disturbance, if present, is a key point at which to make a potent intervention. 



Beauty is in the eye of the beholder


In the mass media it is now popular to dismiss the fact that autism is far more prevalent on boys than girls. In the scientific literature, fortunately, they stick to the facts and much is written about the sex differences in autism.
As we have seen in earlier posts, females have some natural defences against autism. They have two X chromosomes and of course they have those all-important neuroprotective female hormones (estrogen/estradiol, progesterone etc.). In effect, the more female you are, the more protection you have against idiopathic autism and any X-chromosome linked single gene autism. So a girl with Fragile-X syndrome is likely to be far less affected than her brother with same condition.
Recall that we all have 23 pairs of chromosomes and that the 23rd set contains two Xs in girls and in boys one X and one Y. The girls’ “spare” X chromosome is also what gives them their feminine features.  

It is interesting to look what happens to females who lack part of their second set of X- chromosomes. This diagnosis is called Turner Syndrome. As you might have guessed people with Turner Syndrome have much lower levels of female hormones and a higher incidence of autism, although some people find this controversial. The autism-like characteristics of TS include:-

·      Impairments in social functioning

·      Impairments in face and emotion processing

·      Spatial executive deficits

·      Poor social coping skills and increased immaturity

·      Hyperactivity and impulsivity

Turner syndrome occurs in 50 per 100,000 live-born females. Autism occurs about ten times for frequently, so about 500 per 100,000 live-born females.  Turner syndrome provides the extreme case of what happens when females have too little estrogen/estradiol.
I think you will find a large group of females with idiopathic autism (no identified genetic defects) have/had low levels of estradiol. I think this is the reason that facial recognition studies show that some females with idiopathic autism look different, (as do many boys, of course). We already know that most single gene types of autism produce tell-tale signs, often on the face (big ears, wide face, big/small head etc).

I am not suggesting that there is anything wrong with looking different; rather it may be a useful diagnostic tool and not an expensive or invasive one. Physical variation has long been used to identify genetic syndromes, before genetic testing became widely available.

Physical variation inside your head
We saw in an earlier post that MRI scans of the autistic brains actually do often show subtle differences, particularly when you use software to read them, rather than the naked eye. Traditionally doctors say that MRIs are “normal” in autism and cannot be used to diagnose it. Yet in a recent studies machine reading of MRIs was able to identify 70%-96% of autism cases.  Some of these are scans taken before birth.

This is interesting, because ultimately you might bypass the current very slow and subjective observational diagnosis process.




MRIs show a brain anomaly in nearly 70 percent of babies at high risk of developing the condition who go on to be diagnosed, laying the groundwork for a predictive aid for pediatricians and the search for a potential treatment



Predicting the future with brain imaging

In a new study, Emerson et al. show that brain function in infancy can be used to accurately predict which high-risk infants will later receive an autism diagnosis. Using machine learning techniques that identify patterns in the brain’s functional connections, Emerson and colleagues were able to predict with greater than 96% accuracy whether a 6-month-old infant would develop autism at 24 months of age. These findings must be replicated, but they represent an important step toward the early identification of individuals with autism before its characteristic symptoms develop.


MRI scanners are very widely used, but you do have to keep very still inside when they are in operation. The even harder part is the reading of the data. It is clear that some standardized machine reading (A/I artificial intelligence) process is required to notice every possible variation. You could have a centralized location where you just submit your MRI data, the center gets to keep the data and learn from it; and you get their insight as to what differences there might be.

Facial Differences vs MRI Brain Differences
I like to keep things simple and under my control.  In the short term we have to settle for facial differences, since any well-managed MRI process will be decades away.

Hormonal Variation in Autism
Hormonal differences were one of the key areas I identified years ago in this blog. Big/small heads result from disturbances in pro-growth signalling pathways. We should expect variations in bone-age, early/late onset of puberty and indeed big variations in height and weight.

In Turner Syndrome, the girls tend to be very short and they are often treated with growth hormones, as well as female/feminizing hormones.  
Great caution has to be taken when treating children with any hormones. When children are treated, it is for serious reasons like not achieving puberty, or having a serious growth delay (being very short).

Hormone Therapy During Pregnancy
In some countries hormones are given during pregnancy although I think this would be seen as odd/risky in some advanced countries.

We have already seen that couples who have difficulty producing a child often have a family history that includes autism. It was proposed by one serious fertility expert that what helps prevent miscarriage also helps prevent autism. This did sound odd when I first read about, but when you look in more depth there is a basis for this idea.
That expert has these two websites:-



Progesterone supplements have been recommended for more than 50 years for women struggling with infertility, but research now shows they can also help prevent miscarriage.


Tamoxifen, an estrogen receptor (ER) antagonist, is also used to treat infertility.
Estradiol is sometimes prescribed during pregnancy.
Testosterone is produced naturally during pregnancy.

All this is clearly beyond the scope of this blog, but perhaps altered female/male hormones during pregnancy might be a biomarker of some future autism and female hormones might be a protective therapy in the subgroup of pregnant mothers with low levels of these hormones and/or high levels of testosterone. Recall that human trials in the hospital ER have shown certain substances are highly neuroprotective (progesterone, atorvastatin etc) and when administered immediately after a traumatic brain injury markedly improve the outcome.                                         

Hormone Therapy for Autism
Hormone therapy in people with autism would be controversial, but we saw in an earlier post that via RORα the balance between testosterone and estradiol affects numerous biological relevant to autism.

Many pictures of girls/women with autism, that you can view online, suggest reduced levels of estradiol. Faces look more boy-like. Many males with autism are reported to have physical features of high testosterone and low estradiol. 
One example of many:-


Both faces in the above article show clear indications of autism. Since both young people do have autism, this should not surprise anyone.
My own conclusion is that if you have autism or Asperger’s, a little extra estradiol could therapeutic, particularly if you have physical features that reinforce this.
There are of course many males and females with autism who are physically indistinguishable from the rest of the world. The point of this post is to highlight that visible differences may help to define the sub-type of autism and indicate possibly effective therapies, that exist today.

Obesity and Estradiol
In an earlier post on estradiol, I pointed out that in males estradiol is made in your adipose (fat) tissue. In the US many people with autism are overweight, in part due to side effects from their likely un-needed psychiatric medications; this has the hidden benefit of increasing their estradiol levels, feminizing their behavior slightly and shifting RORalpha in the right direction.
This also means that losing weight should be helpful to obese females with estrogen receptor positive breast cancer.  Research does support this.


Asperger’s and too much Estradiol?
We saw in earlier posts that much autism is associated with reduced expression of estrogen receptor beta and low aromatase, so high testosterone and low estradiol.

We have seen on many occasions that when one extreme exists in autism, so usually does the other; so many big heads, but also some tiny ones, NMDAR hypofunction, but also hyperfunction.

There was a lot of talk a while back in the media about children undergoing therapy to change their gender, and it was highlighted that Asperger’s was much over-represented in this group. One expert got into trouble for suggesting that their autism was causing them to obsess about their identity and so mistakenly convince a boy that he would rather be a girl.  It seems that these days some clinicians are then all too willing to provide drug therapy and then operate on them, to make them female.  I do wonder if perhaps some of these boys with Asperger’s might have the other extreme of aromatise. That would give them too little testosterone and too much Estradiol.
I think measuring these hormones is quite a good idea, as I keep repeating, they go on to affect the critical “switch”  RORα, which then impacts a large number of biological processes implicated in autism.  In other words you can try to normalize a wide range of important autism variables, just be tweaking RORα, via estradiol/testosterone.

A boy with high testosterone, and so low estradiol, will likely exhibit physical signs of this, just like the girl with low estradiol. These are just pieces of the puzzle, in plain view, that can be used to understand each specific case of autism. And no machine reading of an MRI is required.






For those left wanting more:
A very thorough paper on Turner Syndrome:-

Turner syndrome (TS) is a neurogenetic disorder characterized by partial or complete monosomy-X. TS is associated with certain physical and medical features including estrogen deficiency, short stature and increased risk for several diseases with cardiac conditions being among the most serious. Girls with TS are typically treated with growth hormone and estrogen replacement therapies to address short stature and estrogen deficiency. The cognitive-behavioral phenotype associated with TS includes strengths in verbal domains with impairments in visual-spatial, executive function and emotion processing. Genetic analyses have identified the short stature homeobox (SHOX) gene as being a candidate gene for short stature and other skeletal abnormalities associated with TS but currently the gene or genes associated with cognitive impairments remain unknown. However, significant progress has been made in describing neurodevelopmental and neurobiologic factors underlying these impairments and potential interventions are on the horizon

We utilized an ultrasensitive assay to study estradiol levels in 34 girls with TS and 34 normal age-matched prepubertal girls between the ages of 5 and 12 years. The average estradiol level in the girls with TS (6.4 +/- 4.9 pmol/l estradiol equivalents) was significantly lower than in the normal prepubertal girls (12.7 +/- 10.8 pmol/l estradiol equivalents; p < 0.01). Girls with TS were significantly shorter, and weighed less than the normal prepubertal girls, as expected. The estradiol level was not significantly correlated with height, bone age,