Abstract
The prevalence of digestive disorders has increased globally, as countries have adopted a more “Westernized” diet pattern. A Western diet, characterized as high in fat and refined carbohydrates, can also be defined as a product of increased technology and industrialization. Modern farmers rely on agrochemicals to meet the needs of a growing population, and these chemicals have shifted the Western diet’s chemical composition. While the number of individuals choosing to live a wheat-free lifestyle without a celiac disease diagnosis has increased, clinical trials have shown that gluten from wheat is not responsible for causing symptoms in healthy individuals suggesting that something else is inducing symptoms. The herbicide, glyphosate, is applied to wheat crops before harvest to encourage ripening resulting in higher glyphosate residues in commercial wheat products within North America. Glyphosate inhibits the shikimate pathway, a pathway exclusive to plants and bacteria. Glyphosate’s effect on dysbiosis was not considered when making safety recommendations. Here, we evaluate the literature surrounding glyphosate’s effects on the gut microbiome and conclude that glyphosate residues on food could cause dysbiosis, given that opportunistic pathogens are more resistant to glyphosate compared to commensal bacteria. However, research on glyphosate’s effects on the microbiome suffers from numerous methodological weaknesses, and these limitations make it impossible to draw any definitive conclusions regarding glyphosate’s influence on health through alterations in the gut microbiome. In this review, we critically evaluate the evidence currently known and discuss recommendations for future studies.
Digestive Diseases and Crop Desiccation
Digestive disorders cost North Americans an estimated $154 billion annually in healthcare costs and lost productivity (; ). Canada has the highest incidence of digestive diseases in the world, with two-thirds of Canadians suffering from a gastrointestinal condition within a given year (). Some of these disorders are chronic inflammatory conditions, including inflammatory bowel disease and celiac disease. However, many digestive disorders plaguing North Americans are non-specific, eluding diagnosis based on any one set of criteria. Over the past decade, North America has seen a growing increase in the number of individuals choosing to live a wheat-free lifestyle in the absence of a celiac disease diagnosis (Figure 1A). When surveyed, individuals who abstain from wheat-based foods report experiencing less gastrointestinal discomfort and improved digestive health, reduced inflammation, reduced joint pain, and improved mental health (). Often, individuals attribute the act of going gluten-free to their improved health and wellbeing (). However, double-blind, randomized clinical trials have implicitly shown that gluten from wheat is not responsible for symptoms in non-celiac and otherwise healthy individuals (). Is it possible that agricultural practices we have embraced in the past two decades are responsible for this dramatic increase in wheat-sensitivity?
FIGURE 1
One agricultural practice that gained popularity during the 1990s is the desiccation of crops, including wheat. Desiccation refers to the process of applying a chemical to a plant before harvest to kill vegetation. Desiccation corrects for uneven growth and is common in regions where the growing season is short and damp. Cereal grains, including wheat, are particularly prone to uneven ripening resulting in an increased prevalence of desiccation (Figure 1B). Glyphosate is a systemic desiccant with broad-spectrum herbicidal action taking weeks to dry crops. However, glyphosate has the added benefit of controlling green weeds and therefore is one of the most commonly used commercial desiccants.
Some European countries, including Italy, have banned the use of glyphosate pre-harvest while others, including France and Germany, plan to ban its use entirely by 2023. North America is one of the most prolific glyphosate users, with over 25 million kilograms purchased annually in Canada (
Glyphosate Targets Types of Bacteria Present in the Gut Microbiome
Glyphosate exhibits its herbicidal action through inhibition of the shikimate pathway, a seven-step metabolic pathway where carbon skeletons from carbohydrate metabolism are converted to chorismate. Glyphosate acts as a competitive inhibitor of the enzyme 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS), preventing the synthesis of chorismate. Chorismate is vital for many plant functions, including aromatic amino acid, hormone, and vitamin synthesis. Mammals do not possess the shikimate pathway or any of the enzymes, which is why glyphosate was considered to be non-toxic to humans. However, recent studies have highlighted the potential cytotoxic and carcinogenic effects of glyphosate both in vivo and in vitro (
FIGURE 2

Glyphosate residues present on food may cause intestinal dysbiosis. (A) Glyphosate exhibits its herbicidal action through inhibition of the shikimate pathway enzyme EPSPS. Class I EPSPS are sensitive to the effects of glyphosate and are found in all plants and bacteria. However, glyphosate resistant EPSPS (Class II) appear to be more prevalent in opportunistic pathogens and may contribute to dysbiosis. (B) Summary of the alterations in microbial composition reported in the literature when administering either glyphosate or glyphosate-based herbicides.
When determining glyphosate’s toxicity, the highest level that does not produce harmful effects is referred to as the no-observed-effect-level (NOEL) (
Glyphosate Exposure Induces Gut Dysbiosis
All bacteria contain glyphosate-sensitive Class I EPSPS enzymes; however, the degree to which bacteria succumb to its effect differs considerably. Opportunistic pathogens in the gut, are more likely to contain Class II EPSPS enzymes that are resistant to glyphosate. Studies using high-dose glyphosate exposure drives dysbiosis increasing opportunistic pathogens, including members of the phyla Fusobacteria (
The extinction of commensal bacteria also contributes to gut dysbiosis. Indeed, animal studies examining the impact of glyphosate on the microbiome at doses ranging from 5 mg–500 mg/kg body weight/day have shown that glyphosate decreases bacterial species commonly hypothesized to be beneficial, including Lactobacillus spp. (
Commercial Herbicide Adjuvants Further Drive Dysbiosis
The literature has shown that some bacterial communities that are resistant to glyphosate exposure are less able to withstand commercial herbicide exposure. Indeed, glyphosate and GBH share some similarities, like decreases in Lactobacillus spp. (
Pre and Post-Natal Glyphosate and Glyphosate-Based Herbicide Exposure May Influence Early Microbiome Development
Early-life exposure to EPA approved levels of glyphosate or GBH, results in significant changes to the developing neonatal microbiome in a mouse model (
Glyphosate and Glyphosate- Based Herbicide Exposure May Alter Behavior Through Changes in the Gut Microbiome
While there are many consequences to glyphosate-induced dysbiosis, one of the more pressing effects may be on our mental health. Recent studies show that dysbiosis can affect the gut-brain axis (
Sheafing It Together
Over the past two decades, there has been a dramatic increase in the number of individuals reporting beneficial health effects when eliminating wheat from their diets. Exposure to glyphosate alone or through the administration of herbicide appears to promote gut dysbiosis through a reduction in commensal bacteria species, including Lactobacillus spp., (
While the current review focused on the agricultural practice of desiccating wheat, it should be noted that many crops, including legumes, corn, and soy, have been shown to contain high glyphosate residues due to desiccation and the advancement of glyphosate-resistant crops. Eliminating wheat from one’s diet does not guarantee the elimination of glyphosate exposure. However, wheat products have been shown in independent testing to contain higher residues post-processing (
Research surrounding glyphosate’s effect on the gut microbiome has yielded conflicting results, with studies suggesting glyphosate has a limited impact on the gut microbiome (
Arguably, the best way to determine the effect of desiccated crops on the microbiome would be to examine the effects of consuming commercially available desiccated and non-desiccated crops on the microbiome composition. The duration of the experimental intervention may also have profound implications for microbial diversity. The studies included in the current review had exposure durations ranging from 2 weeks (
Conclusion
Glyphosate exposure, either through active ingredient alone or commercial herbicide formulations, has the potential to induce dysbiosis by creating an imbalance between commensal members of the gastrointestinal microbiome and opportunistic pathogens. Glyphosate may be a critical environmental trigger in the etiology of several disease states associated with dysbiosis, including celiac disease, inflammatory bowel disease and irritable bowel syndrome. Glyphosate exposure may also have consequences for mental health, including anxiety and depression, through alterations in the gut microbiome. However, the research surrounding glyphosate’s effects on the gut microbiome also suffers from numerous methodological weaknesses including artificially high-doses, insufficient duration, proprietary ingredients and an over reliance on animal models. Future long-term studies examining physiologically relevant doses in both healthy and genetically susceptible populations are warranted to determine the real risk posed to human health.
Statements
Author contributions
JB critically reviewed and summarized all literature, drafted the figures and the manuscript. DG conceived of the study with insights from JB, provided oversight, supervised the project, and critically evaluated the manuscript. JB and DG edited the manuscript and approved the final version. Both authors contributed to the article and approved the submitted version.
Funding
JB is funded by a PGS-D from the Natural Sciences and Engineering Research Council (NSERC.) DG is funded by Crohn’s and Colitis Canada, NSERC and the Michael Smith Foundation for Health Research.
Acknowledgments
We thank Dr. M. Hart for thoughtful discussions and ideas contributing to this project and Kevin Fraser for the artwork featured in Figure 2A.
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
References
1
AitbaliY.Ba-M’hamedS.ElhidarN.NafisA.SoraaN.BennisM. (2018). Glyphosate based herbicide exposure affects gut microbiota, anxiety anddepression-like behaviors in mice.Neurotoxicol. Teratol.6744–49. 10.1016/j.ntt.2018.04.002
2
BeaumontM.GoodrichJ. K.JacksonM. A.YetI.DavenportE. R.Vieira-SilvaS.et al (2016). Heritable components of the human fecal microbiomeare associated with visceral fat.Genome Biol.17:189. 10.1186/s13059-016-1052-7
3
BenbrookC. M. (2016). Trends in glyphosate herbicide use in the united states andglobally.Environ. Sci. Eur.281–15. 10.1186/s12302-0160070-0
4
BoteK.PöppeJ.MerleR.MakarovaO.RoeslerU. (2019). Minimum inhibitoryconcentration of glyphosate and of a glyphosate-containing herbicide formulationfor Escherichia coli isolates - differences between pathogenic and non-pathogenicisolates and between host species.Front. Microbiol.10:932. 10.3389/fmicb.2019.00932
5
Canadian Food Inspection Agency (2017). Safeguarding with Science: GlyphosateTestingin 2015-2016.Ottawa: Canadian Food Inspection Agency.
6
CananiR. B.CostanzoM. D.LeoneL.PedataM.MeliR.CalignanoA. (2011). Potential beneficial effects of butyrate inintestinal and extraintestinal diseases.World J. Gastroenterol.171519–1528. 10.3748/wjg.v17.i12.1519
7
CaoG.LiuY.ZhangS.YangX.ChenR.ZhangY.et al (2012). A novel5 enolpyruvylshikimate-3-phosphate synthase shows high glyphosate tolerance in Escherichia coli and tobacco plants.PLoS One7:e38718. 10.1371/journal.pone.0038718
8
CarabottiM.SciroccoA.MaselliM. A.SeveriC. (2015). The gut-brain axis:Interactions between enteric microbiota, central and enteric nervous systems.Ann. Gastroenterol.28203–209.
9
ChoungR. S.Unalp-AridaA.RuhlC. E.BrantnerT. L.EverhartJ. E.MurrayJ. A. (2017). Less hidden celiac disease but increased gluten avoidance withouta diagnosis inthe united states: findings from the national health and nutritionexamination surveys from 2009 to 2014.Mayo Clin. Proc.92:30. 10.1016/j.mayocp.2016.10.012
10
CroallI. D.AzizI.TrottN.TosiP.HoggardN.SandersD. S. (2019). Glutendoes not induce gastrointestinal symptoms in healthy volunteers: a double-blindrandomized placebo trial.Gastroenterology157881–883. 10.1053/j.gastro.2019.05.015
11
DechartresJ.PawluskiJ. L.GueguenM.JablaouiA.MaguinE.RhimiM.et al (2019). Glyphosate and glyphosate-based herbicide exposureduring the peripartum period affects maternal brain plasticity, maternal behaviourand microbiome.J. Neuroendocrinol.31:e12731. 10.1111/jne.12731
12
FedorakR. N.SwitzerC. M.BridgesR. J. (2012). Canadian digestive healthfoundation public impact series.Can. J. Gastroenterol.26350–352. 10.1155/2012/384787
13
FungT. C.VuongH. E.LunaC. D. G.PronovostG. N.AleksandrovaA. A.RileyN. G.et al (2019). Intestinal serotonin and fluoxetine exposuremodulate bacterial colonization in the gut.Nat. Microbiol.4:20642073. 10.1038/s41564-019-0540-4
14
GaoX.JiaR.XieL.KuangL.FengL.WanC. (2015). Obesity in school-agedchildren andits correlation with gut E.coli and bifidobacteria: a case-controlstudy.BMC Pediatr.15:64. 10.1186/s12887-015-0384-x
15
GoodrichJ. K.WatersJ. L.PooleA. C.SutterJ. L.KorenO.BlekhmanR.et al (2014). Human genetics shape the gut microbiome.Cell159:789799. 10.1016/j.cell.2014.09.053
16
GunatilakeS.SeneffS.OrlandoL. (2019). Glyphosate’s synergistic toxicity incombination with other factors as a cause of chronic kidney disease of unknownorigin.Int. J. Environ. Res. Public Health16:2734. 10.3390/ijerph16152734
17
Health Canada (2015). Maximum Residue Limits for Pesticides Database. Available online at: https://pr-rp.hcsc.gc.ca/mrl-lrm/index-eng.php.
18
Health Canada (2012). Pest Control Products Sales Report for 2012.Ottawa, ON: Health Canada.
19
Health Canada (2014). “Gluten Free” Claims in the Marketplace.Ottawa, ON: Health Canada.
20
JangH.LeeK.LeeH.KimD. (2018). Immobilization stress-induced Escherichia coli causes anxiety by inducing NF-κB activation through gut microbiotadisturbance.Sci. Rep.813897–13914. 10.1038/s41598-018-31764-0
21
KaakoushN. O. (2015). Insights into the role of erysipelotrichaceae in the humanhost.Front. Cell. Infect. Microbiol.5:84. 10.3389/fcimb.2015.00084
22
KittanaH.Gomes-NetoJ. C.HeckK.GeisA. L.Segura MuñozR. R.CodyL. A.et al (2018). Commensal Escherichia coli strains can promoteintestinal inflammation via differential interleukin-6 production.Front. Inimmunol.9:2318. 10.3389/fimmu.2018.02318
23
KoliadaA.SyzenkoG.MoseikoV.BudovskaL.PuchkovK.PerederiyV.et al (2017). Association between body mass index andFirmicutes/Bacteroidetes ratio in an adult ukrainian population.BMC Microbiol.17:120. 10.1186/s12866-017-1027-1
24
KonigJ.WellsJ.CaniP. D.Garcia-RodenasC. L.MacDonaldT.MercenierA.et al (2016). Institutionen för medicinska vetenskaper. Human intestinal barrierfunction in health anddisease.Clin. Transl. Gastroenterol.7:e196. 10.1038/ctg.2016.54
25
LernerA.ArleevskayaM.SchmiedlA.MatthiasT. (2017). Microbes and virusesare bugging the gut in celiac disease. are they friends or foes?.Front. Microbiol.8:1392. 10.3389/fmicb.2017.01392
26
LozanoV. L.DefargeN.RocqueL.MesnageR.HennequinD.CassierR.et al (2018). Sex-dependent impact of roundup on the rat gutmicrobiome.Toxicol. Rep.596–107. 10.1016/j.toxrep.2017.12.005
27
MaoQ.ManservisiF.PanzacchiS.MandrioliD.MenghettiI.VornoliA.et al (2018). Theramazzini institute 13-week pilot study on glyphosate and roundup administered at human equivalent dose to sprague dawley rats: effects on themicrobiome.Environ. Health17:5012. 10.1186/s12940-018-0394-x
28
MartinucciI.De BortoliN.SavarinoE.FranchiR.BertaniL.UrbanoM. T.et al (2014). p.10.26 distal and proximal esophageal impedance basal valuesin patients with nonerosive reflux disease and functional heartburn.Digest. Liver Dis.46:S93. 10.1016/S1590-8658(14)60275-9
29
MazmanianS. K.RoundJ. L. (2009). The gut microbiota shapes intestinal immuneresponses during health and disease.Nat. Rev. Immunol.9:600. 10.1038/nri2614
30
MeehanC. J.BeikoR. G. (2014). A phylogenomic view of ecological specializationin thelachnospiraceae, a family of digestive tract-associated bacteria.Genome Biol. Evol.6703–713. 10.1093/gbe/evu050
31
MolinW. T. (1998). Glyphosate, a unique global herbicide.Weed Technol.12:564565. 10.1017/S0890037X0004433X
32
NielsenL. N.RoagerH. M.CasasM. E.FrandsenH. L.GosewinkelU.BesterK.et al (2018). Glyphosate has limited short-term effects on commensalbacterial community composition in the gut environment due to sufficientaromatic amino acid levels.Environ. Pollut.233364–376. 10.1016/j.envpol.2017.10.016
33
NilandB.CashB. D. (2018). Health benefits and adverse effects of a gluten-free dietin non-celiac disease patients.Gastroenterol. Hepatol.1482–91.
34
O’MahonyS. M.ClarkeG.BorreY. E.DinanT. G.CryanJ. F. (2015). Serotonin, tryptophan metabolism and the brain-gut-microbiomeaxis.Behav. Brain Res.27732–48. 10.1016/j.bbr.2014.07.027
35
OuG.HedbergM.HörstedtP.BaranovV.ForsbergG.DrobniM. (2009). Proximal small intestinal microbiota and identification of rod-shapedbacteria associated with childhood celiac disease.Am. J. Gastroenterol.1043058–3067. 10.1038/ajg.2009.524
36
ParkC. H.HanD. S.OhY.LeeA.LeeY.EunC. S. (2016). Role offusobacteria in the serrated pathway of colorectal carcinogenesis.Sci. Rep.6:25271. 10.1038/srep25271
37
PeeryA. F.CrockettS. D.MurphyC. C.LundJ. L.DellonE. S.WilliamsJ. L.et al (2019). Burden and cost of gastrointestinal, liver, and pancreaticdiseases in the united states: update 2018.Gastroenterology156254.e11–272.e11. 10.1053/j.gastro.2018.08.063
38
PittayanonR.LauJ. T.YuanY.LeontiadisG. I.TseF.SuretteM.et al (2019). Gutmicrobiota in patients with irritable bowel Syndrome—Asystematic review.Gastroenterology15797–108. 10.1053/j.gastro.2019.03.049
39
ReigstadC. S.SalmonsonC. E.RaineyJ. F.IIISzurszewskiJ. H.LindenD. R.SonnenburgJ. L.et al (2015). Gut microbes promote colonicserotonin production through an effect of short-chain fatty acids onenterochromaffin cells.FASEB J.291395–1403. 10.1096/fj.14259598
40
RenwickA. G. (1993). Data-derived safety factors for the evaluation of food additivesand environmental contaminants.Food Additives Contaminants10:275. 10.1080/02652039309374152
41
ReynaM. (1985). Twelve-Month Study of Glyphosate Administered by Gelatin Capsule to Beagledogs.Unpublished Report no. 830116, project no. ML-83-13, submittedto U.S.Environmental Protection Agency by Monsanto Company EnvironmentalHealth. Reregistration Eligibility Decision (RED) Glyphosate; EPA-738-F-93011. Washington, DC: U. S. Environmental Protection Agency.
42
SannasiddappaT. H.CostabileA.GibsonG. R.ClarkeS. R. (2011). The influenceof staphylococcus aureus on gut microbial ecology in an in vitro continuousculture humancolonicmodel system.PLoS One6:e23227. 10.1371/journal.pone.0023227
43
SuttonK. A.BreenJ.RussoT. A.SchultzL. W.UmlandT. C. (2016). Crystal structure of 5-enolpyruvylshikimate-3-phosphate (EPSP)synthase from the ESKAPE pathogen Acinetobacter baumannii.Acta Crystallogr. Sect. F72179–187. 10.1107/S2053230X16001114
44
TangQ.TangJ.RenX.LiC. (2020). Glyphosate exposure induces inflammatoryresponses in the small intestine and alters gut microbial composition inrats.Environ. Pollut.261:114129. 10.1016/j.envpol.2020.114129
45
Van BruggenA. H. C.HeM. M.ShinK.MaiV.JeongK. C.FinckhM. R.et al (2018). Environmental and health effects of the herbicideglyphosate.Sci. Total Environ.616-617255–268. 10.1016/j.scitotenv.2017.10.309
46
WalterJ. (2008). Ecological role of lactobacilli in the gastrointestinal tract: implicationsfor fundamental and biomedical research.Appl. Environ. Microbiol.744985–4996. 10.1128/aem.00753-08
47
ZamakhchariM.WeiG.DewhirstF.LeeJ.SchuppanD.OppenheimF. G.et al (2011). Identification of rothia bacteria as gluten-degradingnatural colonizers of the upper gastro-intestinal tract.PLoS One6:e24455. 10.1371/journal.pone.0024455
Summary
Keywords
gut microbiome, dysbiosis, glyphosate, Roundup, crop-desiccation, mental health, wheat intolerance, non-celiac gluten sensitivity
Citation
Barnett JA and Gibson DL (2020) Separating the Empirical Wheat From the Pseudoscientific Chaff: A Critical Review of the Literature Surrounding Glyphosate, Dysbiosis and Wheat-Sensitivity. Front. Microbiol. 11:556729. doi: 10.3389/fmicb.2020.556729
Received
28 April 2020
Accepted
24 August 2020
Published
25 September 2020
Volume
11 - 2020
Edited by
Ana Rivas, University of Granada, Spain
Reviewed by
Aymé Spor, INRA UMR1347 Agroécologie, France; Uri Gophna, Tel Aviv University, Israel
Updates

Check for updates
Copyright
© 2020 Barnett and Gibson.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: Deanna L. Gibson, Deanna.Gibson@ubc.ca
This article was submitted to Food Microbiology, a section of the journal Frontiers in Microbiology
Disclaimer
All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article or claim that may be made by its manufacturer is not guaranteed or endorsed by the publisher.