CASE STUDY

Childhood antibiotics and chronic diarrhea with C. difficile

Eliot's case describes the relationship between recurrent ear infections, repeated antibiotic courses, the developing gut microbiome, and C. difficile findings (antibiotics microbiome clostridium child).

The relationship between antibiotics, the developing gut microbiome, and Clostridioides difficile (antibiotics microbiome clostridium child) often appears in histories where treatment starts early and bowel symptoms persist. Eliot had diarrhea from birth. During his first year, he developed frequent infections, mainly ear infections, and received repeated antibiotic courses. At 19, he had 3 to 9 bowel movements a day, usually after meals, along with frequent belching. During his assessment, we examined early-life antibiotic exposure, the childhood gut microbiome, post-antibiotic dysbiosis, and antibiotic-associated diarrhea. Molecular stool testing detected genetic material from Clostridioides difficile, the tcdA target, and a broad absence of bacteria associated with butyrate production. Colonization resistance and the tcdA and tcdB toxin genes provided further information about the persistent symptom.

IBSyncrasy book cover

How we interpret a complex bowel history

In IBSyncrasy, we explain how we connect symptoms, microbiome findings, and daily patterns before selecting interventions. Buy IBSyncrasy

Who Eliot is and when the diarrhea began

PROFILE

Nineteen years old with a low-normal body weight

Eliot was 1.78 m tall, weighed 63 kg, and had a body mass index of 19.9 kg/m². He exercised three times a week and drank about three glasses of water a day.

FIRST YEAR

Frequent ear infections and several antibiotic courses

Soon after his birth, his mother developed mastitis and continued breastfeeding while taking an antibiotic. Eliot was breastfed for almost two years. During his first year, he had frequent infections, mainly ear infections, and received several antibiotic courses.

BOWEL MOVEMENTS

Diarrhea from birth

At 19, he had 3 to 9 bowel movements a day. Most were loose and often occurred immediately after eating. High-fat meals made the symptoms worse, while vegetables were better tolerated.

DAILY LIFE

Frequent belching and difficult flights

Belching recurred throughout the day. Air travel was associated with severe nausea and exhaustion that lasted 3 to 5 days after a flight.

DIET

Daily dairy, sweets, and wheat

His daily diet included dairy, sweets, wheat, and coffee. Fish appeared up to once a week. Eliot ate throughout the day and often had his final snack around midnight.

How childhood antibiotics relate to the molecular findings

We started with the duration of the symptom. The diarrhea had begun at birth and was still present at 19. His first-year history included two distinct exposures, maternal antibiotic use during breastfeeding and the repeated courses he received for infections and otitis. We considered these exposures separately and focused on his direct antibiotic treatment as the clearer factor associated with microbiome disruption.

Why we examined the childhood ear infections

In a study of children aged 1 to 5 years, antibiotic exposure within the previous 12 weeks was recorded in 54.4% of Clostridioides difficile infection cases and 19.4% of controls. The adjusted odds ratio was 6.25. Among children who had received a cephalosporin, 8 of 14 had an ear, sinus, or respiratory infection as the sole indication.[1] This finding explains why we requested a detailed antibiotic history and included Clostridioides difficile in the molecular assessment.

Antibiotic exposure before C. difficile infection

54.4%
19.4%
12 weeks
37.9%
9.1%
4 weeks
15.2%
9.1%
4 to 12 weeks
CasesControls

Weng et al., Epidemiology and Infection, 2019

The timeline we wanted to examine

Frequent ear infections in the first year
Repeated antibiotic courses
Disruption of the childhood gut microbiome
Persistent diarrhea
Molecular testing at 19
Clostridioides difficile and tcdA
The toxin genes of Clostridioides difficile
The PaLoc and the tcdA and tcdB molecular targets of C. difficile
PCR detected the toxin A target. The toxin B target was below the detection limit.

What may persist after early-life exposure

In a randomized trial of 147 newborns, microbiome composition differed immediately after antibiotics by R² 9.5% and remained different at 12 months by R² 1.1%. The resistome differed immediately by R² 7.5%. The researchers recorded fewer Bifidobacterium and more Klebsiella and Enterococcus after treatment.[2] The study examined neonatal exposure. Eliot had a single later measurement at age 19, so we used the study to explain the plausible biological mechanism.

Microbiome and resistome changes after early-life antibiotics

Microbiome immediatelyR² 9.5%
Microbiome at 12 monthsR² 1.1%
Resistome immediatelyR² 7.5%
Resistome at 12 monthsR² 0.6%
Microbiome compositionAntibiotic resistance genes

Reyman et al., Nature Communications, 2022

Which changes we started before the results

The first interventions addressed meal timing, low water intake, and foods that appeared every day. We also arranged molecular stool testing so the next interventions could be selected from measured findings.

Last meal before 7 p.m.

We recommended finishing all food before 7 p.m. on at least five days each week. This change addressed his snacks around midnight and increased the interval between his final meal and sleep.

Reducing dairy, wheat, and sugar

We reduced dairy and sugar, removed fruit juice, and selected two days each week with substantially less wheat. These foods appeared daily, so the change provided a practical way to assess his postprandial response.

Eight glasses of water spaced away from meals

We increased the daily target from three to eight glasses of water. Fluids were placed between meals, about 60 minutes after eating, because of the frequent belching and postprandial bowel movements.

Specific preparation for flights

For the severe nausea and exhaustion associated with air travel, we recommended lighter food, adequate hydration, and a small low-fat meal before the flight.

Molecular stool testing

We requested quantitative molecular testing for Clostridioides difficile, toxin A and B targets, Clostridium perfringens, Clostridium sporogenes, protective bacteria, opportunistic species, and markers of digestion and mucosal defense.

What the molecular test found and how we organized the plan

The test provided three groups of findings. It detected Clostridioides difficile and the toxin A target, showed very limited presence of major butyrate producers, and recorded increased Gram-negative and opportunistic bacteria.

Clostridioides difficile 4.8, low
Bacterial genetic material was detected at a low level. We interpreted it alongside the 3 to 9 loose bowel movements per day.
Toxin A target 4, very low
PCR detected the molecular target associated with toxin A.
Toxin B target Below the detection limit
The two major toxin targets had different molecular findings.
Clostridium perfringens and Clostridium sporogenes Below the detection limit
Both additional Clostridium targets were below the detection limit of the method.
Major butyrate producers Six taxa below the detection limit
Akkermansia muciniphila, Bifidobacterium spp., Eubacterium rectale, Faecalibacterium prausnitzii, Roseburia hominis, and Subdoligranulum variabile were below the detection limit.
Low protective bacteria Three low taxa
Anaerostipes caccae 7.6, Lactobacillus spp. 6.5, and Ruminococcus bromii 4.8.
Increased Gram-negative and opportunistic bacteria Multiple elevations
Elevated Bacteroides spp., Escherichia coli, Hafnia alvei, Veillonella spp., and Ruminococcus gnavus were recorded.
Pancreatic elastase 474 µg/g
The value supported adequate exocrine pancreatic function.
Secretory IgA 214 µg/g
The value was within the test's reference range.
How the findings relate to frequent bowel movements
Low butyrate producers, increased Gram-negative bacteria, and C. difficile detection
The image presents the microbial findings that coexisted with chronic postprandial diarrhea.

What changes when colonization resistance decreases

A diverse microbiome consumes nutrient substrates, metabolizes bile acids, and produces compounds that restrict the germination and growth of Clostridioides difficile. Disruption of this community reduces colonization resistance and favors spore germination.[5] Many butyrate producers were below the detection limit, so we gradually increased fermentable fiber and added butyrate.

WITH COLONIZATION RESISTANCE

Diverse microbiome

More butyrate producers, competition for nutrient substrates, bile acid metabolism, and stable interaction with the mucus layer.

The main actions of Clostridioides difficile

The main actions of Clostridioides difficile in the colon
Spore germination, toxin production, and the effects of C. difficile on the intestinal epithelium
TcdA and TcdB can affect the cytoskeleton and tight junctions of epithelial cells.

Why we need the class and timing of each antibiotic

The meta-analysis by Dong and colleagues found an overall odds ratio of 1.93 for previous antibiotic use in children. The association differed markedly by class, from OR 0.42 for penicillin to OR 13.92 for clindamycin.[3] The active substances Eliot received during his first year were unknown. The chart shows why we ask for the active substance and timing of every antibiotic in a pediatric medication history.

Association between antibiotic classes and pediatric C. difficile infection

Previous antibiotic useOR 1.93, 95% CI 1.25 to 2.97
ClindamycinOR 13.92, 95% CI 2.84 to 68.26
CephalosporinsOR 2.26, 95% CI 1.45 to 3.50
Amoxicillin and clavulanateOR 1.93, 95% CI 1.20 to 3.12
FluoroquinolonesOR 3.10, 95% CI 0.12 to 82.15
PenicillinOR 0.42, 95% CI 0.03 to 5.14
First-generation cephalosporinOR 2.11, 95% CI 1.35 to 3.30
Third-generation cephalosporinOR 3.83, 95% CI 1.32 to 11.12
Fourth-generation cephalosporinOR 2.33, 95% CI 1.84 to 2.94

Dong et al., Journal of Hospital Infection, 2022, logarithmic OR scale 0.03 to 100

The active substances and why we selected them

InterventionFinding and rationale
Rifaximin, 1 capsule in the morning and 1 in the evening for 10 daysFinding Clostridioides difficile, tcdA, and increased opportunistic bacteria.
Rationale An antimicrobial that acts within the intestine and has low systemic absorption.
Twelve probiotic strains, 1/3 teaspoon 20 minutes before breakfast for 60 daysFinding Bifidobacterium spp. below the detection limit and low Lactobacillus spp.
Composition Lactobacillus rhamnosus, Bifidobacterium bifidum, Lactobacillus acidophilus, Lactobacillus casei, Lactobacillus plantarum, Lactobacillus salivarius, Bifidobacterium longum, Streptococcus thermophilus, Lactobacillus delbrueckii subsp. bulgaricus, Lactobacillus paracasei, Bifidobacterium animalis subsp. lactis, and Bifidobacterium breve.
L-glutamine and mucosal support blend, 1 teaspoon with breakfast for 60 daysFinding Chronic postprandial diarrhea and extensive dysbiosis.
Active substances L-glutamine, N-acetyl-D-glucosamine, citrus pectin, deglycyrrhizinated licorice, aloe, slippery elm bark, mucin, marshmallow, chamomile, okra, Uncaria tomentosa, methylsulfonylmethane, quercetin, prune, zinc, and L-carnosine.
Sodium and potassium butyrate 500 mg, 1 capsule with lunch and 1 with dinnerFinding Multiple butyrate producers below the detection limit.
Rationale Butyrate is a short-chain fatty acid and a major energy substrate for colonic cells.
Ascorbic acid, magnesium carbonate, and pyridoxine, approximately 0.8 g three times a dayFinding Elevated lipoprotein(a) and elevated iron.
Amount per dose Approximately 600 mg ascorbic acid, 33 mg elemental magnesium, and 0.5 mg pyridoxine, with iron retesting after one month.
L-lysine and accompanying active substances, 1 capsule with ascorbic acid three times a dayFinding Elevated lipoprotein(a) and diarrhea.
Active substances per capsule Approximately 400 mg L-lysine HCl, 20 mg calcium ascorbate, 15 mg zinc, extracts of Hypericum perforatum, Melissa officinalis, Astragalus membranaceus, Berberis aquifolium, and Commiphora molmol resin.
Methylcobalamin 1,000 µg and L-5-methyltetrahydrofolate 800 µg with breakfastFinding Homocysteine 13.1 µmol/L and beta-thalassemia minor.
Rationale Both methylated vitamins participate in homocysteine metabolism.

Diet for two months

We removed dairy, sugar, sweets, fruit juice, and sugar-sweetened soft drinks for two months. We substantially reduced wheat. We set the final meal at least four hours before sleep and placed fluid intake 45 minutes after meals. After the first week of antimicrobial treatment, we added a small daily amount of cucumber and carrot. We then increased sources of soluble fiber gradually, including oats, barley, legumes, strawberries, and apple.

Exercise with controlled duration

The weekly plan included walking or running at least 4 km four times a week. We added strength training two to three times a week, with a five-minute warm-up, two sets of 10 to 12 repetitions for the major muscle groups, and 2 to 3 minutes of rest between sets. We also added yoga twice a week. Aerobic sessions remained moderate in duration because of the frequent bowel movements.

Sleep before midnight

The target was at least 7.5 hours of sleep with bedtime before midnight. We selected two to three days each week with an earlier bedtime and reduced artificial light in the evening. The final meal ended at least four hours before sleep.

REAL QUESTION

When does C. difficile testing have diagnostic value in a child with persistent diarrhea and repeated antibiotic exposure?

In children aged 2 years and older, prolonged or worsening diarrhea together with recent antibiotic exposure increases the usefulness of testing for Clostridioides difficile. Asymptomatic carriage is very common in infants, so age changes the interpretation. Testing has greater value when it uses an unformed stool sample and is interpreted alongside bowel movement frequency, toxin targets, and other possible causes.[4]

REAL QUESTION

What does it mean when PCR detects Clostridioides difficile genetic material and the toxin A target while the toxin B target is below the detection limit?

The result describes a specific molecular profile. PCR identifies genetic targets and indicates toxigenic potential. Active intestinal effects are assessed alongside bowel movements, sample consistency, and the rest of the microbiome test. The PaLoc includes tcdA and tcdB together with regulatory genes, and variants with different target patterns have been described.[6]

During the assessment, we examine childhood antibiotic exposure, current bowel movements, and the molecular targets reported by the test. Book an appointment

What we knew before and after molecular testing

The comparison shows what we knew beforehand and what molecular testing added. We organized the intervention plan after receiving these findings.

Clostridioides difficile
Quantitative measurement unavailable

Toxin targets
Molecular result unavailable

Colonization resistance
Protective taxa awaiting mapping

What Eliot's case shows

Eliot's diarrhea began at birth, and repeated antibiotic courses started during his first year. At 19, molecular testing found Clostridioides difficile, tcdA, and a broad lack of protective bacteria. These findings guided our selection of antimicrobial treatment, butyrate, probiotic strains, and a gradual increase in fiber.

Age determines when testing has value

During the first 12 months, frequent asymptomatic carriage reduces test specificity. From age 2, prolonged diarrhea together with antibiotic exposure provides a clearer indication for testing.[4] In Eliot's case, persistent diarrhea throughout childhood supported earlier investigation. At 19, we interpreted the measurement alongside his history, the toxin genes, and the microbiome profile.

NEXT STEP

When diarrhea persists, we examine the history and the microbiome

The assessment considers bowel movement frequency, antibiotic history, and molecular microbiome targets together.

Book an appointment

Frequently asked questions

In children aged 2 years and older, testing has greater diagnostic value when prolonged or worsening diarrhea occurs with a relevant exposure, such as recent antibiotic use. Asymptomatic carriage is common during the first 12 months, so age changes the interpretation.

The tcdA and tcdB targets are genes that encode the two major toxins of Clostridioides difficile. Their detection indicates the genetic capacity for toxin production. Assessment combines the molecular result with diarrhea, sample consistency, and the other findings.

Antibiotics can reduce diversity and alter the relative abundance of protective and opportunistic bacteria. In a randomized trial of 147 newborns, researchers recorded immediate changes in microbiome composition and the resistome, with smaller differences at 12 months.

References

  1. Weng MK, Adkins SH, Bamberg W, et al. (2019). Risk factors for community-associated Clostridioides difficile infection in young children. Epidemiology and Infection, 147, e172.
  2. Reyman M, van Houten MA, Watson RL, et al. (2022). Effects of early-life antibiotics on the developing infant gut microbiome and resistome: a randomized trial. Nature Communications, 13, 893.
  3. Dong N, Li JYR, Zhao JH, et al. (2022). Risk factors for Clostridioides difficile infection in children: A systematic review and meta-analysis. Journal of Hospital Infection, 130, 112-121.
  4. McDonald LC, Gerding DN, Johnson S, et al. (2018). Clinical Practice Guidelines for Clostridium difficile Infection in Adults and Children. Clinical Infectious Diseases, 66(7), e1-e48.
  5. Seekatz AM, Young VB. (2014). Clostridium difficile and the microbiota. Journal of Clinical Investigation, 124(10), 4182-4189.
  6. Monot M, Eckert C, Lemire A, et al. (2015). Clostridium difficile: New insights into the evolution of the pathogenicity locus. Scientific Reports, 5, 15023.
Theodoros Prevedoros
MSC BIOCHEMISTRY

THEODOROS PREVEDOROS

I work alongside gastroenterologists, pediatricians and endocrinologists. Since 2007 I have been training doctors, dietitians and health professionals across the full range of functional-medicine testing (Metabolomics, Microbiome and more).

Assessment and analysis of more than 2,500 cases since 2007. Author of IBSyncrasy. Book an appointment or find me on Instagram.