Showing posts with label milk. Show all posts
Showing posts with label milk. Show all posts

Wednesday, 30 January 2019

Milk opioid peptides and dipeptidyl peptidase-4 (DPPIV) linked to autism

So: "we have concluded that milk-derived opioid peptides and DPPIV [dipeptidyl peptidase-4 (DPPIV)] are potentially factors in determining the pathogenesis of autism."

That was the quite sweeping statement made in the paper published by Beata Jarmołowska and colleagues [1]. It continues a quite a long running research topic in autism circles (see here and see here) on whether the chemical arrangement of certain dietary components *might* have an important biological effect on at least some people diagnosed as being on the autism spectrum.

The Jarmołowska paper is open-access so there is no real need for me to go over the suggested hows-and-whys of some diets being potentially related to (some) autism. If you need some further reading on the topic, I'll direct you to other posts on this blog where I've discussed this 'gluten and casein' issue (see here) and onward, my professional interest in it for quite a few years.

The aim of the Jarmołowska study was to determine "BCM7 [β-casomorphin-7] influence on DPPIV functioning in children with ASD in comparison to healthy children." 'Healthy children' is the term for the control group used by the authors by the way, not me. They "examined content and activity of serum DPPIV, content of BCM7 in serum and urine, and studied the effect of hydrolysed bovine milk, as a source of opioid peptides, on DPPIV gene expression in peripheral blood mononuclear cells (PBMC) in both groups."

Results: "We found that the content of BCM7 in serum was significantly higher (p < 0.0001) in ASD than in the control group." Urine concentrations of BCM7 were not significantly different among those with autism compared with controls. Also: "Concentration of DPPIV was found to also be significantly higher in serum from ASD children compared to the control group (p < 0.01)."That was about the sum of the differences noted by researchers.

Caveats? Well some. So: "ELISA test enabled identification of BCM7 contents in the serum and urine from patients, as well as in tested peptide extract obtained from hydrolyzed bovine milk." Authors do mention how the testing was carried out "in triplicate" following a previously published protocol. I don't dispute the results they got but am not exactly enamoured with the ELISA method used. I'd much rather see the analysis undertaken using something like mass spectrometry or similar technology, given the precision that comes with such methods (see here) based for example, on the use of internal standards. Perhaps if the authors still have their samples, they might consider further analyses if available to them?

Although researchers provide quite a bit of information about their participant groups, I also noted one important detail to be missing: were any of their participants - diagnosed with autism or not - following any special dietary regime? Y'know, they talk about casein (milk) free diets and how such diets are supported by "numerous scientific reports." So I guess in a cohort of 86 children diagnosed with autism, at least a few of them might be following such a dietary intervention? I've searched their paper but couldn't find anything to say that they were or weren't.

Putting such issues to one side, I don't want to take anything away from the Jarmołowska findings. As they end their paper: "this issue requires further investigation." I wouldn't disagree.

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[1] Jarmołowska B. et al. Role of Milk-Derived Opioid Peptides and Proline Dipeptidyl Peptidase-4 in Autism Spectrum Disorders. Nutrients. 2019 Jan 4;11(1). pii: E87.

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Thursday, 3 May 2018

Folate receptor autoantibodies and autism... replicated (yet again)

Ah yes, scientific replication. A cornerstone of good science, when findings are independently reproduced and confidence increases that A is linked to B or Y affects Z (insert other letter from the alphabet as appropriate). No, it doesn't prove anything - proof is not something that sits well with the scientific method - but it does imply that a particular relationship is much more likely not to be just due to chance given a similar answer being found across different investigations and hopefully, different cohorts of people.

The findings reported by Jiaxiu Zhou and colleagues [1] represent scientific replication in action. Not only that, they represent scientific replication covering an increasingly important issue in relation to [some] autism: a possible role for folate receptor autoantibodies (FRAA).

I don't really want to re-type everything describing FRAAs, what they and what they mean, because I've covered such descriptions before on this blog (see here and see here). Suffice to say these are autoantibodies - where the body mounts an immune response against 'self' - that target a particular protein called folate receptor protein alpha which plays an important role in transporting something called 5-methyltetrahydrofolate (5-MTHF) into the brain. 5-MTHF is a biologically active form of folate, a pretty important nutrient by all accounts; and something with some 'significant' autism research history (see here).

Building on various other reports suggesting that FRAAs might be *over-represented* in relation to the diagnosis of autism [2], Zhou et al examined serum samples provided by 40 children diagnosed with an autism spectrum disorder (ASD) and some 42 matched not-autism controls. They were specifically looking for FRAAs as "measured by enzyme-linked immunosorbent assay" bearing in mind there are blocking FRAAs and binding FRAAs.

They reported more frequently finding FRAAs in the serum samples from those with autism compared with controls (77% vs. 54%). The difference was significant and led researchers to conclude that "children with ASDs may have defects in folic acid absorption that play a role in the onset of ASDs."

As you can see, whilst the rates of detection of FRAAs in the serum samples of those with autism are quite frequent, the presence of FRAAs are not something 'autism-specific'. I say that bearing in mind that FRAAs have been reported in various other conditions/states/diseases and are also seemingly influenced by the presence of certain dietary components too, such as milk consumption [3]. But that doesn't mean that they aren't potentially important to [some] autism...

Then to the next question: intervention. What can be done as and when FRAAs are detected? Well, I've talked before about some of the the scientific evidence on the use of folinic acid (leucovorin) in the context of autism and FRAAs (see here), investigated under double-blind, placebo-controlled conditions. Folinic acid represents an alternative way of getting a biological active folate into circulation in the context of FRAAs being detected. It needs quite a bit more investigation with autism in mind, but could be a useful intervention (minus any medical or clinical advice given or intended).

Also, a milk-free diet. I know some people don't like the idea that [some] dietary elements might 'affect' [some] autism, but again, there is some initial peer-reviewed evidence to suggest that a milk-free diet might be able to dampen down things like folate receptor autoimmunity [4]. This added to the already quite voluminous peer-reviewed science suggesting a possible 'diet-related phenotype' in relation to autism [5] that mentions milk (casein) as well as other dietary components (see here).

In short, folate receptor autoantibodies are probably important to at least some autism.

Oh, and while we're on the topic of folate, I see that someone recently has been talking about why a 'one-size-fits-all' model of folic acid use during pregnancy isn't going to cover all the biological bases (see here). The MTHFR (methylenetetrahydrofolate) gene that is mentioned, has also got quite a bit of peer-reviewed research history with autism in mind (see here)...

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[1] Zhou J. et al. High prevalence of serum folate receptor autoantibodies in children with autism spectrum disorders. Biomarkers. 2018 Mar 26:1-9.

[2] Quadros EV. et al. Folate receptor autoantibodies are prevalent in children diagnosed with autism spectrum disorder, their normal siblings and parents. Autism Res. 2018 Feb 2.

[3] Berrocal-Zaragoza MI. et al. High milk consumers have an increased risk of folate receptor blocking autoantibody production but this does not affect folate status in Spanish men and women. J Nutr. 2009 May;139(5):1037-41.

[4] Ramaekers VT. et al. A milk-free diet downregulates folate receptor autoimmunity in cerebral folate deficiency syndrome. Dev Med Child Neurol. 2008 May;50(5):346-52.

[5] Whiteley P. Nutritional management of (some) autism: a case for gluten- and casein-free diets? Proc Nutr Soc. 2015 Aug;74(3):202-7.

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Wednesday, 7 March 2018

Bone health and autism continued

It's been a while since I last wrote about the topic of bone health and autism (see here). On that particular occasion, it was the work by Ann Neumeyer and colleagues [1] that provided the blogging fodder and the observation that: "BMD [bone mineral density] is lower in peripubertal boys with ASD [autism spectrum disorder]." BMD is important because of a possible association between lower BMD and risk of fracture or indeed, something more pathological.

Today I continue with this topic as per further work from Neumeyer and colleagues [2] looking to "examine macro- and micronutrient intakes and self-reported physical activity in boys with ASD compared to TDC [typically developing controls] and the relationship of these variables with BMD."

Based on data from nearly 50 boys aged 8-17 years of age (25 diagnosed with ASD and 24 not-autism controls), researchers once again relied on the technique known as dual-energy x-ray absorptiometry (DXA) for the measurement of bone mineral density. Various measures were taken from various parts of the body -"whole body less head, hip, and spine." Alongside, food diaries provided a rough-and-ready measure of food intake, self-reported physical activity (that's self-reported) did what it said on the tin, and fasting levels of 25(OH) vitamin D and calcium were garnered. I'll come back to some of the pros-and-cons of some of these measures shortly.

Results: consistent with the peer-reviewed data that has come before, BMD z scores at the lumbar spine, femoral neck, total hip, and whole body less head were lower in those with autism compared with control participants. A BMD z score by the way, is basically a comparison of BMD with that of standardised data (i.e. an average person of the same sex and age). Added to such results, authors also observed that less calorie intake was present in the ASD group (again compared with controls) and a "lower proportion of ASD participants were categorized as "very physically active" (27% vs 79%; P<0.001)." Interestingly however: "Body mass index and serum vitamin D and calcium levels were similar."

I was rather intrigued by the Neumeyer results. Not least that vitamin D and calcium levels were 'similar' in the autism and control groups. As I've discussed before on this blog, there have been calls for preferential screening for these biological parameters as and when an autism diagnosis is received (see here) in light of other findings (see here). The Neumeyer observations perhaps reflect a wider need for such screening.

The use of self-report as a measure for physical activity, whilst useful, is slightly outdated in these times of actigraphy. Wearable technology to measure activity and rest cycles is cheap and abundant these days and, as I've mentioned on other occasions, really should be the research industry standard. I'm not saying people might not be accurate in reporting their short-term physical activity but...

I do think there are some additional 'where next?' things to consider when it comes to future work looking at BMD and autism. Noting for example, that both dietary and malabsorptive issues seem to be able to influence BMD [3] there are additional parameters to be looked at. Given previous peer-reviewed reports on lactose issues being present in relation to autism (see here), this could feature in future work. Although still possessing the ability to furrow brows in certain quarters, the observation of issues with intestinal permeability ('leaky gut') in relation to some autism (see here) also could be an additional parameter to examine. I daresay also that some initial chatter about a compound called zonulin potentially serving as a 'biomarker of impaired gut barrier function' in relation to some autism (see here) might also be revealing. And then there is the important issue of epilepsy / seizure disorder often being comorbid with autism (see here), and how certain [important] intervention measures for said issues might affect parameters such as vitamin D (see here) and what that might mean for long-term bone health...

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[1] Neumeyer AM. et al. Bone density in peripubertal boys with autism spectrum disorders. J Autism Dev Disord. 2013 Jul;43(7):1623-9.

[2] Neumeyer AM. et al. Nutrition and Bone Density in Boys with Autism Spectrum Disorder. J Acad Nutr Diet. 2018 Feb 3. pii: S2212-2672(17)31749-5.

[3] Di Stefano M. et al. Lactose malabsorption and intolerance and peak bone mass. Gastroenterology. 2002 Jun;122(7):1793-9.

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Friday, 2 March 2018

Folate receptor autoantibodies and autism... replicated

I should warn you that this is another of my long posts, so make yourself a cup of tea/coffee/other, get comfy and read on...

"Overall, 76% of the affected children, 75% of the unaffected siblings, 69% of fathers and 59% of mothers were positive for either blocking or binding Ab, whereas the prevalence of this Ab in the normal controls was 29%."

'Normal controls' is not a term that I would use in the context of autism research, but the findings reported by Edward Quadros and colleagues [1] are a cause for some excitement as the topic of folate receptor alpha (FRα) autoantibodies (Abs) and autism receives some welcome interest and importantly, scientific replication (see here).

Just in case you're new to the concept of folate receptor autoantibodies, it all starts with folate (folic acid). Folates are a pretty important range of nutrient for lots of different reasons, not least the role they play in various brain functions. There are however, a variety of conditions where folate and its various metabolites are 'atypical', one of which is called cerebral folate deficiency (CFD). CFD is characterised by low levels of 5-methyltetrahydrofolate (5-MTHF) in cerebrospinal fluid (CSF) despite fairly typical levels of circulating folates in blood. One of the ways that 5-MTHF gets to the brain is via something called the folate receptor protein alpha. It is this pathway that appears to be 'aberrant' in cases of CFD, and hence use of a compound called folinic acid (leucovorin) (also called 5-formyltetrahydrofolic acid), another 'type' of folate', is used as a result of it utilising an alternative system for getting to the brain (the reduced folate carrier, RFC).

Still here? Good. The hows-and-whys of the folate receptor protein alpha being 'dysfunctional' in relation to CFD has focused on particular autoantibodies (where the immune system starts to mount a response against 'self' tissues) called folate receptor autoantibodies. There are two types of autoantibody: blocking and binding antibodies [2]. These autoantibodies block the transport of folate metabolites to places like the CFS and brain. Finally, there are ways and means that these autoantibodies can be detected in serum samples and, outside of CFD, autism has been a focus for such analyses [3] alongside other, potentially related, diagnoses (see here).

Clear as mud right?

So: "families of 82 children with ASD [autism spectrum disorder], 53 unaffected siblings, 65 fathers, and 70 mothers, along with 52 unrelated... controls" were tested for folate receptor alpha (FRα) autoantibodies in the current Quadros study. I should also mention that Quadros is a name that comes up quite a bit with folate receptor alpha (FRα) autoantibodies in mind. As per the opening line of this post, those autoantibodies were detected in a fairly high frequency in families where autism has been diagnosed. The authors note that the presence of such antibodies "may have a familial origin but the risk of developing ASD is likely influenced by other mitigating factors since some siblings who had the antibodies were not affected." True, absolutely true bearing in mind other work on things like the broader autism phenotype for example (see here).

But there's another strand to this work worthwhile talking about... milk. Milk and autism has been something of real interest to my autism research career down the years (see here) and continues to be. Use of a milk-free - casein-free - diet has filled quite a few peer-reviewed science column inches in relation to both behaviour (see here for example) and physiology (see here) for some on the autism spectrum. In relation to those folate receptor alpha (FRα) autoantibodies, consumption of milk seems to have some rather interesting effects on their presence [4]. The suggestion is that there may be some kind of 'cross-reactivity' going on given the 'homology' between human folate receptor alpha (FRα) and bovine (from cows) folate receptor alpha (FRα). This biological mix-up means that "repeated exposure to milk FR in the digestive tract is the likely mechanism for autoantibody generation" [5]. I'm left wondering a few things: (a) did Quadros and colleagues ask about milk consumption and/or was it recorded? and (b) regarding the 'heritability' issue, could this be part of a wider 'autoantibody heritability' issue among families where autism is present? Y'know, based on the idea that autoantibodies and autoimmunity seems to be a recurring theme for at least some people diagnosed with autism (see here) and in their families (see here)?

And finally, a few research direction suggestions to perhaps take this area forward: (a) wide-scale screening for those for those folate receptor autoantibodies when autism is diagnosed to see if the pretty high 'positives' numbers continue, (b) the requirement for a large (LARGE) study looking at both supplementation with folinic acid and use of a milk-free diet to ascertain exactly what symptoms/traits can potentially be impacted, and finally (c) the inclusion of other parameters when looking at the familial element to folate receptor autoantibodies, such as everyone's favourite 'leaky gut' (also reported in other family members [6]) as a 'vehicle' for possible antibody production. Speculative, yes. Testable, also yes.

Oh, and perhaps a little more inquiry into the thyroid connection (see here) too (with links to yet another autoimmune condition mentioned with autism in mind)...

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[1] Quadros EV. et al. Folate receptor autoantibodies are prevalent in children diagnosed with autism spectrum disorder, their normal siblings and parents. Autism Res. 2018 Feb 2.

[2] Frye RE. et al. Blocking and Binding Folate Receptor Alpha Autoantibodies Identify Novel Autism Spectrum Disorder Subgroups. Frontiers in Neuroscience. 2016;10:80.

[3] Ramaekers V. et al. Clinical recognition and aspects of the cerebral folate deficiency syndromes. Clin Chem Lab Med. 2013 Mar 1;51(3):497-511.

[4] Berrocal-Zaragoza MI. et al. High milk consumers have an increased risk of folate receptor blocking autoantibody production but this does not affect folate status in Spanish men and women. J Nutr. 2009 May;139(5):1037-41.

[5] Ramaekers VT. et al. A milk-free diet downregulates folate receptor autoimmunity in cerebral folate deficiency syndrome. Developmental medicine and child neurology. 2008;50(5):346-352.

[6] de Magistris L. et al. Alterations of the intestinal barrier in patients with autism spectrum disorders and in their first-degree relatives. J Pediatr Gastroenterol Nutr. 2010 Oct;51(4):418-24.

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Friday, 12 January 2018

Allergic disease and ADHD yet again...

Although words like 'first' and 'largest' were used in the paper by Chia-Feng Yang and colleagues [1] (open-access available here) observing that "AD [atopic dermatitis] and asthma with allergic sensitization are associated with ADHD [attention-deficit hyperactivity disorder] in children", I'm minded to be a little cautious with such 'we're the first/best' assertions.

Cautious because, on quite a few peer-reviewed research occasions (see here for example), a possible *link* between various allergic disease and ADHD has already been noted; even potentially extending to studies talking about how treatment for allergic disease might on some occasions also impact on presented ADHD symptoms (see here) (with no medical advice given or intended).

Yang et al relied on data from a research favourite country, Taiwan, derived from an initiative called the Childhood Environment and Allergic diseases Study (CEAS). The clue is in the name of the initiative in terms of what they were looking for/at, as per other publications derived from the initiative [2]. From the 3200-odd participants eligible for participation, researchers relied on data from over 2700 children. Questions about allergic disease history were asked to parents of said participants, alongside other 'environmental' factors such as family income, tobacco exposure and breastfeeding history. I note also a question about 'incensing at home' is also included relating to the use of burning incense typically linked to religious practices in certain cultures.

When it came to a diagnosis of ADHD, it's not entirely clear about how this was ascertained but it looks like diagnosis was given by a clinician: "The conditions of disease in children were confirmed by board-certified child psychiatrists or pediatric neurologists, according to the clinical evaluation." I should also mention that participants also received skin prick tests (SPTs) covering a range of potential allergens: "house dust mites (HDMs mix, including Der p, Der f, Der m, and Blot allergens), cockroaches, dog dander, milk, egg, and crab allergens" as way of defining allergic sensitisation.

Results: there was a "strong positive association between ADHD and allergic sensitization as diagnosed by positive SPTs." In other words, despite finding a fairly low level of ADHD in their sample (1%), those who 'reacted' to one or more of the allergens tested for via the skin prick test seemed to be at some increased risk of ADHD. Such an enhanced risk spanned both those presenting with "AD with allergic sensitization and asthma with allergic sensitization."

The authors provide some further results and details on the possible hows-and-whys of their results. Obviously the immune system figures quite strongly given what for example, they were testing for with the SPT and their focus on AD and asthma. The word 'inflammation' also figures quite heavily. I note too that the authors reiterate previous suggestions that: "Control of allergens exposure might be a critical factor influencing the development of ADHD."

There is a further scheme of work to follow in this area, not just dealing with mechanisms but also in relation to 'treating' allergies also potentially 'treating' [some] ADHD. I say this on the basis that other independent research has observed that before reaching for the antihistamine as a potential ADHD-modifier, there may actually be a connection between early antihistamine exposure and the development of ADHD [3] (albeit with potential confounders) to keep in mind. Other work also supporting a link between ADHD and atopic disease [4] provides some other 'clues' that may require further investigation; not least "cow's milk intolerance", which ties into similar findings (see here) and could also be one route from which ADHD heightens the risk of subsequent future psychiatric disorder (see here) in light of other 'milk' associations (see here).

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[1] Yang CF. et al. Association between allergic diseases, allergic sensitization and attention-deficit/hyperactivity disorder in children: A large-scale, population-based study. J Chin Med Assoc. 2017 Nov 24. pii: S1726-4901(17)30304-0.

[2] Wang IJ. et al. Allergens, air pollutants, and childhood allergic diseases. Int J Hyg Environ Health. 2016 Jan;219(1):66-71.

[3] Schmitt J. et al. Increased attention-deficit/hyperactivity symptoms in atopic dermatitis are associated with history of antihistamine use. Allergy. 2017 Oct 4.

[4] Hak E. et al. Association of childhood attention-deficit/hyperactivity disorder with atopic diseases and skin infections? A matched case-control study using the General Practice Research Database. Ann Allergy Asthma Immunol. 2013 Aug;111(2):102-106.e2.

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Thursday, 9 February 2017

On dietary and nutritional therapies for ME/CFS

ME/CFS in case you don't already know refers to Myalgic Encephalomyelitis / Chronic Fatigue Syndrome and, according to the findings reported by Nadia Campagnolo and colleagues [1], is in need of quite a bit more scientific investigation when it comes to the application of dietary changes and nutritional supplements to potentially alter the course of the condition(s).

Surveying the peer-reviewed literature "from 1994 to May 2016" the authors looked for peer-reviewed studies where "CFS/ME patients modified their diet or supplemented their habitual diet on patient-centred outcomes (fatigue, quality of life, physical activity and/or psychological wellbeing)." They found 17 studies that included 14 different interventions. Unfortunately they concluded that: "Many studies did not show therapeutic benefit on CFS/ME" alongside the observation that the methodological quality of the research in this areas 'could do better'.

But it was not all research doom-and-gloom as some approaches seemed to show promise: "Improvements in fatigue were observed for nicotinamide adenine dinucleotide hydride (NADH), probiotics, high cocoa polyphenol rich chocolate, and a combination of NADH and coenzyme Q10." Without wishing to toot my blogging trumpet, some of these approaches have been discussed before on this blog (Coenzyme Q10 and NADH supplementation for Chronic Fatigue Syndrome? and Coenzyme Q10 and NADH supplementation for Chronic Fatigue Syndrome continued) and beyond that, the target organ of something like the use of probiotics for CFS has made an appearance more than once too (see here for example). I might also add that just outside of the search dates used by Campagnolo et al was the suggestion that issues with a staple foodstuff - cows milk - might be over-represented in cases of CFS (see here) and that a milk-free diet could be useful [2] for some at least. By saying all that, I'm not giving any medical or clinical advice...

As science starts to move further away from the the biopsychosocial (BPS) model of CFS/ME (see here) and starts looking at genetics, biology and somatic disease processes with regards to the various presentations included under the banner of ME/CFS (see here) I foresee some interesting developments further down the line. Granted, dietary and nutritional approaches to CFS/ME are probably not considered 'mainstream' in terms of management strategies but that does not mean they aren't important or at least important in the context of a diagnosis of ME/CFS seemingly being protective of nothing. Central to any future studies in this or any related area is the idea that there may be lots going on under the 'plural' diagnostic umbrella of ME/CFS (see here). Indeed, something that even the PACE trial is starting to take on board [3].

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[1] Campagnolo N. et al. Dietary and nutrition interventions for the therapeutic treatment of chronic fatigue syndrome/myalgic encephalomyelitis: a systematic review. J Hum Nutr Diet. 2017 Jan 22.

[2] Rowe PC. et al. Cow's milk protein intolerance in adolescents and young adults with chronic fatigue syndrome. Acta Paediatr. 2016 Sep;105(9):e412-8.

[3] Williams TE. et al. Heterogeneity in chronic fatigue syndrome - empirically defined subgroups from the PACE trial. Psychol Med. 2017 Jan 23:1-12.

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ResearchBlogging.org Campagnolo N, Johnston S, Collatz A, Staines D, & Marshall-Gradisnik S (2017). Dietary and nutrition interventions for the therapeutic treatment of chronic fatigue syndrome/myalgic encephalomyelitis: a systematic review. Journal of human nutrition and dietetics : the official journal of the British Dietetic Association PMID: 28111818

Friday, 8 July 2016

Cow's milk allergy and risk of psychiatric disorder

"Psychiatric disorders are frequent and severe in pre-school children with cow's milk allergy."

That research 'bottom line' reported by Topal and colleagues [1] looking at the possibility of behavioural correlations accompanying an immune response to milk caught my eye recently. Building on the idea that atopic or allergic disease might elevate the risk of various behavioural outcomes (see here) or vice-versa, researchers set about comparing rates of various behavioural conditions using the "Early Childhood Inventory-4 form" in cases of cow's milk allergy (n=40) vs asymptomatic (not cow's milk allergy) controls (n=41).

With little demographic difference between the groups in terms of gender and age, we are told that: "65% of the group with cow's milk allergy received at least one psychiatric diagnosis, while 36.6% of the control group received at least one psychiatric diagnosis." Specifically, attention-deficit hyperactivity disorder (ADHD) and oppositional defiant disorder (ODD) were more likely reported in the cow's milk allergy group. Based also on "psychiatric symptom severity scores" researchers also reported that both ADHD and ODD severity were higher in the cow's milk allergy group.

It is a little ironic that I'm actually writing this post on World Milk Day (1 June) and certainly I don't want to dampen down any rejoicing about the virtues of milk (see here). It is however important to highlight how not everyone can enjoy a glass of the white stuff (for various reasons) and that, when it comes to how a particular type of immune system meets something like milk and its various constituents, there may be outcomes further than that of the typical somatic ones linked to classical milk allergy. Obviously, replication is the name of the research game following the Topal results and perhaps with a little more detailed inspection of behaviours pertinent to ADHD and ODD in what was a very young sample population (mean ages: 44-47 months).

In terms of the mechanism behind the Topal findings, well, there is still work to be done there. I could turn speculative and suggest that set within an emerging idea that food might, under certain circumstances, be able to affect behaviour for some (see here) one might entertain the idea that gut and brain might show a greater link than has perhaps been hitherto accepted. ADHD already falls into that category of food potentially affecting presentation as per older research in this area (see here). Indeed, if one wants to get really speculative, how about connecting early cow's milk allergy to ADHD and ADHD as raising the risk for something like schizophrenia (see here) as potentially accounting for other immune-related findings on milk and schizophrenia for example (see here)? Yes, I know that immunoglobulins are different across allergy and 'intolerance' and one has to be careful about using the singular definition of schizophrenia in modern times (see here) but one might forsee some kind of connection at least for some?

I might also at this point direct you to the findings reported by Wu and colleagues [2] and the suggestion that "mTOR [mammalian target of rapamycin] activation may be central to both the intestinal, immunological, and psychiatric ASD [autism spectrum disorder]-like symptoms seen in CMA [cow's milk allergic] mice." Whilst not trying to force clinical endpoints like autism into the Topal findings, the idea from Wu et al about looking at "whether mTOR can be seen as a therapeutic target in cow's milk allergic children suffering from ASD-like symptoms" seems very testable in the context of possible ADHD or ODD presentation also being linked to cow's milk allergy...

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[1] Topal E. et al. Psychiatric disorders and symptoms severity in pre-school children with cow's milk allergy. Allergol Immunopathol (Madr). 2016 May 27. pii: S0301-0546(16)30043-X.

[2] Wu J. et al. mTOR plays an important role in cow's milk allergy-associated behavioral and immunological deficits. Neuropharmacology. 2015 Oct;97:220-32.

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ResearchBlogging.org Topal E, Catal F, Soylu N, Ozcan OO, Celiksoy MH, Babayiğit A, Erge D, Karakoç HT, & Sancak R (2016). Psychiatric disorders and symptoms severity in pre-school children with cow's milk allergy. Allergologia et immunopathologia PMID: 27240441

Monday, 27 June 2016

Eating difficulties in adolescents with CFS/ME

I tread quite carefully when discussing the paper by Sarah Harris and colleagues [1] (open-access available here) on the potential causes and effects of 'eating difficulties' when it comes to adolescent chronic fatigue syndrome/myalgic encephalomyelitis (CFS/ME).

Careful because (i) I don't want to confuse eating difficulties with eating disorder (they are not one and the same) and (ii) the suggestion that some of the young adults included for study "recognised how their eating difficulties were exacerbated and maintained by psychological factors of low mood and anxiety" could potentially play into the concept of 'psychosomatic', something that quite a few people are trying to move on from when it comes to ME/CFS. I count myself in the camp describing CFS/ME as a real organic disease (or spectrum of diseases) potentially manifesting in various physiological and [secondary] psychological ways (see here).

A few details first: 11 teens were included for study (aged between 13-17 years). All had a diagnosis of CFS/ME but I'm not exactly sure which of the numerous criteria around were used to make that diagnosis. They were all "drawn from a CFS/ME specialist hospital service providing regional support for assessment and treatment of over 300 children a year" so I am assuming that someone, somewhere had confirmed the diagnosis (somehow). Interviews were arranged around the topics of "the adolescents’ experience of eating; the factors they felt caused and exacerbate eating difficulties and what they believed were helpful strategies" and various primary themes were pulled out from the transcripts.

Results: some interesting issues emerged, not least that quite a few participants "perceived their eating difficulties were caused by abdominal symptoms." 'Abdominal symptoms' is quite a nebulous term but specifically issues like bloating, indigestion and stomach cramps/pain were frequently mentioned. Also: "Nausea prior to eating often caused the adolescents to perceive that eating would make it worse or induce vomiting." My first thoughts on reading about these symptoms was a previous post on some research suggesting that 'abdominal discomfort syndrome' might be part and parcel of a subgroup of those with ME/CFS (see here). That and a possible role for certain foods [2] (see here also)...

Next: "Seven adolescents noticed a change in smell or taste (or both)" potentially impacting on their eating behaviours. Alongside perceived changes in the sensation of food texture said to accompany the onset of their CFS/ME, this also seemed to tie into some of the eating difficulties described. As odd as it might sound, the sorts of changes being described by this small participant group with CFS/ME to me sounded very similar to what has been talked about with the autism spectrum in mind. Many (many) moons ago I published a small opinion piece on eating difficulties associated with autism [3] and well, let's just say some not dissimilar themes cropped up. I'm not saying CFS/ME is autism or vice-versa, but it does intrigue me about the possibility of overlap (see here).

When it came to the idea of 'intervention' for such eating difficulties, the Harris paper also includes some information. "Adolescents frequently excluded various dietary items such as diary, gluten and sugar, claiming these created greater digestive disturbances, although they had not been given a medical explanation for this." Having already mentioned the Rowe paper on cow's milk protein intolerance, I don't want to stick too long on this aspect of intervention. All I will say is that there is nothing in the peer-reviewed literature at present to say that a diagnosis of CFS/ME is protective against genetic/biological issues with certain foods... and that also includes dietary gluten for example (see here).

Insofar as the other techniques possibly helpful with the eating difficulties described in this group, the authors talk about distraction and relaxation strategies as being potentially useful and also the involvement of healthcare professionals such as dietitians to help overcome some of the difficulties experienced. These all sound pretty reasonable intervention options. Again, drawing on some of the autism research literature (again, with no wild claims of association being made) I wonder if there might be some 'connection' between those sensory issues previously described and other clinical aspects such as anxiety as part and parcel of abdominal manifestations for example (see here)?

If there is a bottom line from the Harris data it is that a diagnosis of CFS/ME is certainly not protective against eating difficulties when it comes to young adults. I would like to see this research built upon in future in various ways; first and perhaps foremost is the testing of those presenting with abdominal symptoms for various digestion and/or food-related conditions (i.e. coeliac disease and the rather 'shades of grey' borders of non-coeliac gluten sensitivity for example). I don't want to make connections when none might exist but I'd also be minded to suggest that those trillions of wee beasties that call our gut home (the gut microbiota) might also be a target for further inspection too (see here) in light of their potential connection to all-things gut related. The sensory aspects hinted at in the Harris data are also deserving of quite a bit more study too. Without blowing my own trumpet too much, sensory features accompanying 'overlapping fatigue syndromes' is something else I've also discussed in the peer-reviewed literature [4].

In short, don't dismiss eating difficulties and their potential correlates when it comes to CFS/ME...

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[1] Harris S. et al. A qualitative investigation of eating difficulties in adolescents with chronic fatigue syndrome/myalgic encephalomyelitis. Clin Child Psychol Psychiatry. 2016 May 23. pii: 1359104516646813.

[2] Rowe PC. et al. Cow's Milk Protein Intolerance in Adolescents and Young Adults with Chronic Fatigue Syndrome. Acta Paediatr. 2016 May 13.

[3] Whiteley P. et al. Feeding patterns in autism. Autism. 2000; 4: 207-211.

[4] Whiteley P. et al. Correlates of Overlapping Fatigue Syndromes. Journal of Nutritional & Environmental Medicine. 2004; 14:

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ResearchBlogging.org Harris S, Gilbert M, Beasant L, Linney C, Broughton J, & Crawley E (2016). A qualitative investigation of eating difficulties in adolescents with chronic fatigue syndrome/myalgic encephalomyelitis. Clinical child psychology and psychiatry PMID: 27215228

Tuesday, 31 May 2016

Cows milk protein intolerance and chronic fatigue syndrome

"Cow's milk protein intolerance is a common problem in young people with chronic fatigue syndrome, and is a treatable contributor to their symptoms."

So said the paper by Peter Rowe and colleagues [1] who looked prospectively for signs of cow's milk protein intolerance (CMPI) in "55 adolescents and young adults with chronic fatigue syndrome" over the course of 2 years. Defining CMPI using 4 factors: "(1) no evidence of immediate or anaphylactic reactions to milk, (2) at least 2 of the following 3 chronic symptoms: gastroesophageal reflux, early satiety, and epigastric/abdominal pain, (3) improvement in upper gastrointestinal symptoms on a milk protein elimination diet, and (4) at least 2 recurrences of upper gastrointestinal symptoms > 2 hours following open re-exposure to milk protein" researchers set about on this fairly unusual study course to ascertain some preliminary prevalence data and to see what impact such food issues might have on self-reported quality of life.

Nearly a third of their quite small participant group (17/55) hit their thresholds for CMPI and we are told that in comparison to non-CMPI participants, those with milk issues "had significantly worse health-related quality of life at baseline but not at 6 months (after institution of the milk-free diet)." As per that opening quote, prevalence of CMPI might be common in cases of CFS and might play some not insignificant role on quality of life.

Wearing my 'diet and behaviour' hat (see here for example) the Rowe results make for interesting reading. The fact that some of the authors have quite a lot of research standing when it comes to chronic fatigue syndrome (CFS) adds to my interest in these results; specifically with another of their papers in mind on orthostatic intolerance and gastrointestinal (GI) symptoms [2] for example (orthostatic intolerance = development of symptoms when standing upright, and is thought to be linked to quite a few cases of CFS).

Quality of life (health-related) when applied to CFS is something else that has already been covered on this blog (see here) and the observation that its presentation can be about as bad as it gets for some people in comparison to various other diagnostic labels. Anything therefore that can improve [elements of] such an important measure has to be taken seriously, particularly when it is something as 'treatable' as potentially eliminating milk from ones diet (I say this with no medical or clinical advice given or intended).

But just before anyone decides to embark of a milk-free diet solely on the basis of Rowe results, a bit of a research 'to-do' list to think about in this area: (a) The sample size was quite small and we need to know more with larger sample sizes and perhaps more strenuous research methodologies. (b) The measures used to assess CMPI didn't appear to include anything 'biological'. I know this is still a bit of a grey area in terms of 'intolerance vs' allergy' but I'd like to think that more could be attempted during future study including that related to those bowel symptoms [3] given previous discussions in this area (see here). (c) Given that this was a study of CFS I think most people would like to know whether CFS symptoms were impacted by a milk-free diet as well as quality of life measures. Again, measuring CFS is not the easiest of tasks given the number of definitions (see here) but it's not impossible. (d) Acknowledging that not all milk is the same (see here and see here) and that protein is but one element of milk, I have to wonder whether it might be worthwhile doing some further study on this too. Given also that institution of a milk-free diet is not without potential complications, the question is once again: is there more science to be done?

But that doesn't mean that the Rowe results are not interesting...

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[1] Rowe PC. et al. Cow's Milk Protein Intolerance in Adolescents and Young Adults with Chronic Fatigue Syndrome. Acta Paediatr. 2016 May 13.

[2] Sullivan SD. et al. Gastrointestinal symptoms associated with orthostatic intolerance. J Pediatr Gastroenterol Nutr. 2005 Apr;40(4):425-8.

[3] Frissora CL. & Koch KL. Symptom overlap and comorbidity of irritable bowel syndrome with other conditions. Curr Gastroenterol Rep. 2005 Aug;7(4):264-71.

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ResearchBlogging.org Rowe, P., Marden, C., Jasion, S., Cranston, E., Flaherty, M., & Kelly, K. (2016). Cow's Milk Protein Intolerance in Adolescents and Young Adults with Chronic Fatigue Syndrome Acta Paediatrica DOI: 10.1111/apa.13476

Monday, 7 December 2015

Camel milk and autism: two humps or three?

In a previous post with the cringe-worthy title: 'Camel milk for autism: one hump or two?' (you can see why I could never be a comedian) I talked about some rather intriguing research [1] asking whether, under double-blind, placebo-controlled conditions, camel milk could affect various clinical measures of severity when it comes to the label of autism, some autism. The answer was very possibly, yes; with the strong requirement for quite a bit more follow-up research in this area.

Lo and behold, yet more data has emerged from the research pen of one Laila Al-Ayadhi and colleagues [2] (open-access available here) on the topic of camel milk and autism and specifically the idea that: "camel milk could be [a] very promising therapeutic intervention in ASD [autism spectrum disorder]." Again, under double-blind, placebo-controlled conditions, Al-Ayadhi et al describe how 2 weeks of camel milk (raw or boiled) seemed to show some 'significant differences' on schedules such as the CARS (Childhood Autism Rating Scale), SRS (Social Responsiveness Scale) and the ATEC (Autism Treatment Evaluation Checklist). The placebo (cow milk) group by contrast, didn't show anything at all in terms of significant changes between baseline and post-intervention testing occasions.  The ATEC in particular, is something I'm quite keen to see more autism investigations using (see here).

I have some time for Dr/Prof. Al-Ayadhi and colleagues given some previous musings on their wide and varied research with autism in mind (see here). This recent work continues one of their important themes based on the idea that not all mammalian milk forms are alike (see here) and hence, following a tradition potentially implicating milk and dairy products in some autism (see here), a switch to other varieties of milk outside of those normally populating our diet might be beneficial for at least some. Other more 'N=1' reports [3] have offered similar discussions on this topic.

As per my previous musings on this topic, I can't readily offer a substantial and/or universal reason for what it is about camel milk that may be important to some people on the autism spectrum. Lactose content, milk protein structure or nutritional content are perhaps some of the most pertinent variables to consider given that all have some research 'history' when it comes to at least some autism (see here for some discussion on the seemingly forgotten work by Tim Buie et al on lactose issues and autism for example). In other peer-reviewed publications, Dr/Prof. Al-Ayadhi has talked about the antioxidant properties of camel milk as being key [4]. I'm hoping that in future times I might be able to discuss further this area of investigation as and when some research ideas in my own day job reach fruition.

And just in case you think I'm advocating camel milk for all autism, no I'm not. As we've seen from other research outside of autism recently, personalised nutrition is the way forward [5] not sweeping generalisations...

Music to close and a song that's growing on me (I think I need some earworm therapy).
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[1] Al-Ayadhi LY. et al. Behavioral Benefits of Camel Milk in Subjects with Autism Spectrum Disorder. J Coll Physicians Surg Pak. 2015 Nov;25(11):819-823.

[2] Bashir S. & Al-Ayadhi LY. Effect of camel milk on thymus and activation-regulated chemokine in autistic children: double-blind study. Pediatr Res. 2014 Apr;75(4):559-63.

[3] Adams CM. Patient report: autism spectrum disorder treated with camel milk. Glob Adv Health Med. 2013 Nov;2(6):78-80.

[4] Al-Ayadhi LY. & Elamin NE. Camel Milk as a Potential Therapy as an Antioxidant in Autism Spectrum Disorder (ASD). Evid Based Complement Alternat Med. 2013;2013:602834.

[5] Zeevi D. et al. Personalized Nutrition by Prediction of Glycemic Responses. Cell. 2015 Nov 19;163(5):1079-1094.

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ResearchBlogging.org Al-Ayadhi LY, Halepoto DM, Al-Dress AM, Mitwali Y, & Zainah R (2015). Behavioral Benefits of Camel Milk in Subjects with Autism Spectrum Disorder. Journal of the College of Physicians and Surgeons--Pakistan : JCPSP, 25 (11), 819-823 PMID: 26577969

Wednesday, 19 August 2015

Breast milk protects against GI symptoms in high risk autism?

Happy house @ Paul Whiteley
"Late weaning and EBM [exclusive breast milk] were associated with protection against GI [gastrointestinal] symptoms in High-risk infants."

That was one of the conclusions presented in the paper by Alexander Penn and colleagues [1] who asked some pretty important questions when it comes to the increasingly strong relationship between bowel issues and autism spectrum disorder (ASD) (see here).

"Using questionnaires, diet history and gastrointestinal problems were tracked prospectively and retrospectively in 57 High-risk infants, and for comparison, in 114 Low-risk infants (infants from families without ASD history)." The main aims of this study were to examine whether those at an enhanced risk for autism by virtue of having a sibling already diagnosed were at any greater risk of presenting with functional bowel symptoms, and whether such bowel issues were "associated with diet and age at weaning from breast milk."

Early weaning - the introduction of solid foods to an infant - seemed to be more frequently present in high-risk infants with bowel issues as did "a no breast milk (NBM) diet" compared with an exclusive breast milk diet. This was particularly true for the bowel symptom constipation and especially for those who were weaned earlier than 6 months of age.

The authors suggest that their data indicate that weaning and breast milk diet practices might have some bearing for the presentation of bowel symptoms in those at high-risk for autism. Further: "The greater prevalence of GI symptoms in High-risk infants suggests that GI dysfunction during early infant development may be a part of the ASD endophenotype." That all sounds rather important.

I'm drawing back from making too many sweeping statements about this research bearing in mind the participant number, the use of the term 'high-risk' and elements of the questionnaire design of the study. There is quite a bit more research required in this area.

That all being said, I do think there are more than a few future studies that might come from such findings. So, thinking back to the paper by Afzal and colleagues [2] and the idea that "consumption of milk to be the strongest predictor of constipation" among their cohort diagnosed with autism, is the suggestion that more attention might be needed for specific elements of the diet such as cows milk. Added to the findings from Kushak and colleagues [3] (see here for a past post on this work) regarding lactose intolerance as being pretty rife in their cohort with autism (importantly, "not identified by clinical history"), and clues start to emerge alongside possible alternative strategies (see here and see here)...

Music: Stevie Wonder - Superstition.

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[1] Penn AH. et al. Breast Milk Protects Against Gastrointestinal Symptoms in Infants at High Risk for Autism During Early Development. J Pediatr Gastroenterol Nutr. 2015 Jul 29.

[2] Afzal N. et al. Constipation with acquired megarectum in children with autism. Pediatrics. 2003 Oct;112(4):939-42.

[3] Kushak RI. et al. Intestinal disaccharidase activity in patients with autism: effect of age, gender, and intestinal inflammation. Autism. 2011 May;15(3):285-94.

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ResearchBlogging.org Penn AH, Carver LJ, Herbert CA, Lai TS, McIntire MJ, Howard JT, Taylor SF, Schmid-Schönbein GW, & Dobkins KR (2015). Breast Milk Protects Against Gastrointestinal Symptoms in Infants at High Risk for Autism During Early Development. Journal of pediatric gastroenterology and nutrition PMID: 26230900

Saturday, 15 November 2014

Milk has gotta lotta bottle?

"High milk intake was associated with higher mortality in one cohort of women and in another cohort of men, and with higher fracture incidence in women". Those were some of the conclusions reached in the study by Karl Michaëlsson and colleagues [1] (open-access) looking at milk consumption and "mortality and fractures in women and men". The BBC among other media have covered the study (see here).
Take me out tonight

Based on quite a large participant group (two actually) who completed a food frequency questionnaire among other things, researchers followed over 100,000 people some 10-20 years later to ascertain details on "fracture events" and mortality. For a smaller subgroup, they also reported on: "the urine oxidative stress marker 8-iso-PGF2α, a dominant F2-isoprostane and an ideal standard biomarker of oxidative stress in vivo" on the basis of analysing any connection between: "D-galactose in milk with theoretical influences on processes such as oxidative stress and inflammation". Oh, and a familiar cytokine also gets a mention: interleukin-6.

Authors, with caveats, reported something of a possible connection between milk intake and outcomes: "a dose dependent higher rate of both mortality and fracture in women and a higher rate of mortality in men with milk intake, a pattern not discerned with other dairy products" and "positive associations between milk intake and concentrations of markers for oxidative stress and inflammation". IL-6 levels were also correlated with milk intake (although surprisingly little is made of this association in my opinion bearing in mind some of the other literature in this area [2]). For quite a thorough review of the study and findings, I will refer you to the NHS Choices take on it (see here).

Milk has been something of some interest to this blog down the year based on my preoccupation with diet and [some] autism [3] (see here and see here for examples) and further a possible relationship with other behaviourally-defined conditions (see here). I have tried not to come down too heavy on the white stuff (see here) given that it's not all doom and gloom when it comes to the benefits of milk for quite a few people albeit with the sunshine vitamin/hormone also needing to be considered. As an aside, the recent coverage of the the Caerphilly Cohort Study and their 'roadmap to healthy ageing' (see here) previously also talked about milk products and "a markedly reduced prevalence of the metabolic syndrome" [4], so one has to be slightly cautious about demonising milk generally.

The Michaëlsson results however cannot be readily ignored given the impressive participant size and prospective design of study used. The fact that authors reported findings pertinent to milk consumption but that "intake of fermented milk products such as yogurt and soured milk and cheese were associated with lower rates of fracture and mortality" is also potentially important. I could start going on about how processing might affect lactose / galactose content in some cheeses [5] and yoghurts [6] but this is perhaps fodder for another day. Likewise the findings reported by Ji and colleagues [7] suggesting "people with lactose intolerance, characterised by low consumption of milk and other dairy products, had decreased risks of lung, breast, and ovarian cancers" might also be relevant. I note also that chatter about casein (the protein in milk) content as a function of researchers findings are largely absent from the discussions but are perhaps also potentially relevant in light of the whole A1-A2 milk issue rising in prominence these days (also including mention of oxidative stress too).

Music to close: Lorde - Yellow Flicker Beat.

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[1] Michaëlsson K. et al. Milk intake and risk of mortality and fractures in women and men: cohort studies. BMJ. 2014; 349.

[2] Labonté MÈ. et al. Dairy Product Consumption Has No Impact on Biomarkers of Inflammation among Men and Women with Low-Grade Systemic Inflammation. J Nutr. 2014 Nov;144(11):1760-7.

[3] Whiteley P. Nutritional management of (some) autism: a case for gluten- and casein-free diets? Proc Nutr Soc. 2014 Oct 14:1-6.

[4] Elwood PC. et al. Milk and dairy consumption, diabetes and the metabolic syndrome: the Caerphilly prospective study. J Epidemiol Community Health. Aug 2007; 61(8): 695–698.

[5] Portnoi PA. & MacDonald A. Determination of the lactose and galactose content of cheese for use in the galactosaemia diet. J Hum Nutr Diet. 2009 Oct;22(5):400-8.

[6] Alm L. Effect of fermentation on lactose, glucose, and galactose content in milk and suitability of fermented milk products for lactose intolerant individuals. J Dairy Sci. 1982 Mar;65(3):346-52.

[7] Ji J. et al. Lactose intolerance and risk of lung, breast and ovarian cancers: aetiological clues from a population-based study in Sweden. Br J Cancer. 2014. October 14.

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ResearchBlogging.org Michaelsson, K., Wolk, A., Langenskiold, S., Basu, S., Warensjo Lemming, E., Melhus, H., & Byberg, L. (2014). Milk intake and risk of mortality and fractures in women and men: cohort studies BMJ, 349 (oct27 1) DOI: 10.1136/bmj.g6015

Wednesday, 6 August 2014

Gastrointestinal response to A1 vs A2 milk

I want to talk about the findings from Ho and colleagues [1] today, and in particular their observation of: "differences in gastrointestinal responses in some adult humans consuming milk containing beta-casein of either the A1 or the A2 beta-casein type". If you're wondering why such a paper finds it's way on to a blog predominantly about autism research, well stay with me on this rather long blogging entry...

Start your engines... @ Wikipedia 
Before progressing, I am going to put a sort of COI (conflict of interest) statement into this blog post. As part of my day job, I have, down the years, been party to some conversations on A2 milk and how one might scientifically test some of the claims / assumptions made about this milk with specific populations in mind. That also our lab has been looking at analytical ways of differentiating A1 and A2 milk from each other is another COI, allowing for the fact that I am neither a consumer of, nor advocate for, anything to do with any of the white stuff.

In case you're not up to speed with A1 and A2 milk, well, it all boils down to type of cow and type of milk produced. Anyone with a handle on autism research history will have probably heard about the opioid-excess hypothesis [2]. The long-and-short-of-it is that casein, the protein found in milk and dairy products, is eventually metabolised into it's constituent amino acids. Along the way, short chains of amino acids called peptides are formed. Some of these peptides look (chemically) similar to compounds like morphine and are hence referred to as the casomorphins (casein derived morphine-like). The opioid-excess hypothesis suggested that these exogenously derived peptides mimic some of our own naturally occurring morphine-like compounds that we all have, and disrupt typical functioning in this area to such an extent that it may correlate with some of the signs and symptoms called autism. I talked about something similar quite recently.

Granted, such a model looks a little simplistic these days knowing what we think we know about the very plural autisms and the ESSENCE of cormorbidity. Still, such a hypothesis did seem to fit in well with the suggested effectiveness of a casein-free (and gluten-free) diet for some on the autism spectrum, and also some work looking at the opioid receptor blocker that is naltrexone (see here) and autism. It is with the structure of those peptides in mind that we come to the differences suggested for A1 and A2 milk. Y'see not every cow or other mammal produces the same kind of casein protein in their milk and hence peptide formulations can vary also. For A2 casein, the idea is that beta-casomorphin fragment 1-7 (BC 1-7), a peptide formed during digestion is not the same as the BC1-7 from A1 milk (see here) particularly when it comes to a single amino acid change (proline over histidine) [3].

After such a long-winded explanation, we come back to the Ho paper and some interesting findings...

  • First things first, this was a double-blind, randomised cross-over study looking at "gastrointestinal effects" in adults under conditions of either A1 or A2 milk consumption. Two weeks of either A1 or A2 milk consumption (with an appropriate washout period in between) were completed.
  • The very informative Bristol Stool Chart was used to grade poop (stool) consistency alongside other more physiological measures such as faecal calprotectin.
  • Results: "The A1 beta-casein milk led to significantly higher stool consistency values". That and a correlation between stool consistency and reports of abdominal pain for participants when on the A1 milk compared with when on A2 milk. Ergo, it didn't seem that A2 milk did anything over and above A1 milk, rather that consumption didn't seem to be linked to the symptoms noted when drinking A1 milk. 

Appreciating the authors' call for further study in this area, I was intrigued by these results. Not so many moons ago, I came across the paper by Barnett and colleagues [4] talking about greater gastrointestinal (GI) transit time in rats fed A1 milk over A2 milk (see here for some additional commentary from one of the study authors). One might very well overlap those rodent reports with the more recent Ho results in terms of how longer transit time from A1 milk might mean greater discomfort bearing in mind some of the literature on longer transit time and "pain and distension" [5] in certain conditions. Interestingly, the authors ask that research not only focus on confirmation of their results but: "confirmation in a larger study of participants with perceived intolerance to ordinary A1 beta-casein-containing milk" which begs the question: who and what ailments are being reported?

That all being said, not all the literature on A2 milk is so directional. Take for example the paper by Crowley and colleagues [6] (open-access) looking at the question of milk consumption correlating with the functional bowel issue constipation. They concluded that: "that removal of CMP [cow's milk protein] from the diet of children with CFC [chronic functional constipation] significantly increased the number of bowel motions and improved constipation". Their results however did not show any significant effect based on casein type when looking at A1 and A2 milk. Constipation, by the way, is also something talked about with some autism in mind (see here) and particularly the findings from Afzal and colleagues [7] which concluded: "Multivariate regression analysis showed consumption of milk to be the strongest predictor of constipation in the autistic group".

I am quite interested in this whole area of different milks from different animals potentially possessing different qualities which might impact on physiology particularly if eventually applied to conditions like autism, or at least some comorbidity. I think back to the post I did on milk derived opioid peptides and methylation status (see here) as also being important, as might be the work on something like the use of camel milk (see here) bearing in mind the adverse publicity our humped friends have received recently. As per my previous caveat, I don't think we are in a position yet to advocate changes in milk drinking practices for specific groups based on the available literature, but there might be quite a bit more research to do in this important area...

To close, I know this might sound a little odd but am I the only father with young children who know Barry Scott on sight?

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[1] Ho S. et al. Comparative effects of A1 versus A2 beta-casein on gastrointestinal measures: a blinded randomised cross-over pilot study. Eur J Clin Nutr. 2014 Jul 2.

[2] Shattock P. & Whiteley P. Biochemical aspects in autism spectrum disorders: updating the opioid-excess theory and presenting new opportunities for biomedical intervention. Expert Opin Ther Targets. 2002 Apr;6(2):175-83.

[3] Truswell AS. The A2 milk case: a critical review. Eur J Clin Nutr. 2005 May;59(5):623-31.

[4] Barnett MP. et al. Dietary A1 β-casein affects gastrointestinal transit time, dipeptidyl peptidase-4 activity, and inflammatory status relative to A2 β-casein in Wistar rats. Int J Food Sci Nutr. 2014 Mar 20.

[5] Cann PA. et al. Irritable bowel syndrome: relationship of disorders in the transit of a single solid meal to symptom patterns. Gut. May 1983; 24(5): 405–411.

[6] Crowley ET. et al. Does Milk Cause Constipation? A Crossover Dietary Trial. Nutrients 2013; 5: 253-266

[7] Afzal N. et al. Constipation with acquired megarectum in children with autism. Pediatrics. 2003 Oct;112(4):939-42.

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ResearchBlogging.org Ho, S., Woodford, K., Kukuljan, S., & Pal, S. (2014). Comparative effects of A1 versus A2 beta-casein on gastrointestinal measures: a blinded randomised cross-over pilot study European Journal of Clinical Nutrition DOI: 10.1038/ejcn.2014.127