Cockroaches as Vectors of Pathogens and Antimicrobial Resistance: Evidence from Healthcare, Community, and Agricultural Settings
Simple Summary
Abstract
1. Introduction
2. Taxonomy and Major Species
3. Biology and Ecology of Medically Important Cockroaches: Development, Behaviour, and Habitat Use
4. Cockroach Microbiota and Interaction with Pathogens
5. Cockroaches as Reservoirs of Antimicrobial Resistance
5.1. Prevalence of MDR and Resistant Bacteria in Hospital Settings
| Country | Cockroach Species (If Reported) | Sample Size | Bacterial Taxa Recovered | Prevalence of Bacterial Carriage (%) | Prevalence of MDR/ESBL/Carbapenemase Isolates (%) | Ref. |
|---|---|---|---|---|---|---|
| Southern Ethiopia | B. germanica; P. americana | 245 | K. pneumoniae; E. coli; Enterobacter cloacae; P. aeruginosa; A. baumannii; other Gram-negative bacilli | >90% of samples yielded Gram-negative bacteria | 34.7% ESBL (42/121 isolates); 23.1% MβL (28/121); >90% MDR among Gram-negative isolates | [41] |
| Algeria | B. germanica | 10 | ESBL- and carbapenemase-producing Enterobacterales (E. coli, K. pneumoniae, E. cloacae) | NR (high carriage reported) | blaOXA-48; blaCTX-M-15 | [44] |
| Algeria | B. germanica | 10 | Pseudomonas putida | 10% (1/10 cockroaches yielded the focal isolate) | blaVIM-2 | [45] |
| Iran | B. germanica; P. americana | 530 | S. aureus (external and gut isolates) | NR (S. aureus frequently recovered) | MRSA: 55.4% (external isolates) and 40.5% (gut isolates); most MRSA MDR | [43] |
| Iraq | Periplaneta spp.) | 300 | K. pneumoniae; Proteus mirabilis; Enterobacter aerogenes; E. coli; A. baumannii; Serratia marcescens; Citrobacter freundii; S. aureus | 96.6% | NR | [35] |
| Bangladesh | P. americana | NR | Multiple antibiotic-resistant bacteria (NR; genomes reported) | NR | NR | [46] |
| Iran | B. germanica | 109 cockroaches | E. coli | 28.44% | blaNDM 4/31, blaOXA-48 | [42] |
| Iran | B. germanica), P. americana), B. orientalis | 660 | Streptococcus spp. | 13.48% | NR | [47] |
| Pakistan (Peshawar) | NR | 527 | MDRE/Enterobacterales (incl. E. coli, K. pneumoniae, E. cloacae, K. aerogenes, C. freundii, E. hormaechei) | 88.8% | blaCTX-M-15, blaNDM, blaOXA-48-like | [48] |
| Morocco | NR | 75 | MDR Gram-negative bacteria and/or Enterobacterales (NR) | The prevalence of ESBL-producing and carbapenemase-producing GNB was 6.7 and 1.8%, respectively | blaCTX-M-28, blaNDM-1, qnrS1 | [49] |
5.2. Prevalence of MDR and Resistant Bacteria in Community, Agricultural, and Border/Port Settings
| Country | Setting | Cockroach Species | Sample Size | Bacterial Taxa Recovered | Prevalence of Bacterial Carriage (%) | Prevalence of MDR/ESBL/Carbapenemase Isolates (%) | Key Resistance Features | Ref. |
|---|---|---|---|---|---|---|---|---|
| Ethiopia | Households in an urban community | NR (domestic cockroaches) | 60 | Salmonella spp.; Enterobacter spp.; Shigella spp.; E. coli; other Gram-negative bacilli | 181 isolates from 60 cockroaches (multiple isolates per cockroach) | Overall 64.1% MDR; Salmonella 100% MDR; Enterobacter 90.5% MDR; Shigella 76.9% MDR | MDR mainly to ampicillin, 3GCs, tetracycline, cotrimoxazole and chloramphenicol | [38] |
| Ghana | Urban households: cockroach and human stool sampling | NR | 100 households | 3GC-resistant E. coli; K. pneumoniae; Citrobacter freundii; Enterobacter agglomerans; Salmonella Choleraesuis | CRe was detected in cockroaches in 15% of households | ESBL among cockroach CRe in 5% of households; most ESBL-positive isolates are MDR; 2 carbapenemase-positive isolates are XDR | blaCTX-M-15, blaTEM-24, blaSHV-3, blaNDM-1, blaOXA-48 | [39] |
| Tunisia | Houses, collective catering facilities, and craft industries | NR | 115 cockroaches | E. coli; K. pneumoniae; other Enterobacterales | 144 Enterobacterales isolates from 115 cockroaches | 15.3% ESBL (22/144); some colistin-resistant; all mcr-1-positive isolates MDR | blaCTX-M-1; blaCTX-M-15; colistin resistance via mcr-1 | [40] |
| Uganda (Kampala) | Secondary schools; latrines, kitchens, and adjacent areas | Predominantly P. americana | 168 | E. coli; enterococci; Salmonella spp.; other enteric bacteria | NR | >30% MDR overall; ESBL/AmpC subset shows >90% MDR; carbapenem-resistant E. coli detected | MDR to β-lactams, fluoroquinolones, aminoglycosides, and sulfonamides; critical-priority carbapenem-resistant E. coli | [50] |
| Indonesia | Community/residential homes | P. americana | 100 | E. coli; Klebsiella spp.; P. aeruginosa; Acinetobacter spp. | NR | ESBL carriage: 14% | blaCTX-M | [51] |
| Iran | City-wide sampling (houses, restaurants and hospital environment) | P. americana; B. germanica | 150 | Bacillus spp.; E. coli; P. aeruginosa; P. mirabilis; Klebsiella spp.; Citrobacter spp.; CoNS; Enterococcus spp.; S. aureus | 97.33% | NR | Highest resistance reported to cephalothin; intermediate resistance to ceftriaxone, ampicillin, amoxicillin-clavulanate, nalidixic acid and tetracycline | [15] |
5.3. Genotypic AMR Determinants in Cockroach-Associated Isolates
6. Cockroaches as Carriers of Human Pathogens in Hospital Environments
6.1. Bacterial Pathogens
6.2. Fungi and Yeasts
6.3. Viruses and Parasites
7. Cockroaches as Carriers of Human Pathogens in Community and Agricultural Settings
7.1. Poultry Farms and Salmonella
7.2. Ports and Border Crossings
7.3. Households, Restaurants, and Warehouses
8. Mechanisms and Routes of Pathogen Transmission
8.1. Mechanical Transmission
8.2. Biological Transmission
9. Knowledge Gaps and Future Research Directions
9.1. Strengthening Epidemiological Links
9.2. Understanding AMR Ecology in Cockroaches
9.3. Optimisation of Surveillance Tools
9.4. Balancing Vector Control and Drug Discovery
10. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| Abbreviation | Definition |
| 16S rRNA | 16S ribosomal RNA gene |
| 3GC | Third-generation cephalosporin |
| AMP | Antimicrobial peptide |
| AMR | Antimicrobial resistance |
| ARG | Antimicrobial resistance gene |
| Bla g 1 | Blattella germanica allergen 1 |
| Bla g 2 | Blattella germanica allergen 2 |
| CLSI | Clinical and Laboratory Standards Institute |
| COVID-19 | Coronavirus disease 2019 |
| CRe | Cephalosporin-resistant Enterobacterales |
| ESBL | Extended-spectrum β-lactamase |
| EU | Endotoxin unit |
| EUCAST | European Committee on Antimicrobial Susceptibility Testing |
| HBV | Hepatitis B virus |
| HVAC | Heating, ventilation, and air conditioning |
| ICU | Intensive care unit |
| IMD | Immune deficiency pathway |
| IPC | Infection prevention and control |
| IPM | Integrated pest management |
| MALDI-TOF | Matrix-assisted laser desorption/ionisation time-of-flight |
| MBL/MβL | Metallo-β-lactamase |
| MDR | Multidrug-resistant |
| MRSA | Methicillin-resistant Staphylococcus aureus |
| MS | Mass spectrometry |
| NDM | New Delhi metallo-β-lactamase |
| NICU | Neonatal intensive care unit |
| PCR | Polymerase chain reaction |
| RT-PCR | Reverse-transcription polymerase chain reaction |
| RT-qPCR | Reverse-transcription quantitative PCR |
| SARS-CoV-2 | Severe acute respiratory syndrome coronavirus 2 |
| STEC | Shiga toxin–producing Escherichia coli |
| WGS | Whole-genome sequencing |
| WHO | World Health Organization |
| XDR | Extensively drug-resistant |
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Derguini, A.; Basher, N.S. Cockroaches as Vectors of Pathogens and Antimicrobial Resistance: Evidence from Healthcare, Community, and Agricultural Settings. Insects 2026, 17, 310. https://doi.org/10.3390/insects17030310
Derguini A, Basher NS. Cockroaches as Vectors of Pathogens and Antimicrobial Resistance: Evidence from Healthcare, Community, and Agricultural Settings. Insects. 2026; 17(3):310. https://doi.org/10.3390/insects17030310
Chicago/Turabian StyleDerguini, Assia, and Nosiba S. Basher. 2026. "Cockroaches as Vectors of Pathogens and Antimicrobial Resistance: Evidence from Healthcare, Community, and Agricultural Settings" Insects 17, no. 3: 310. https://doi.org/10.3390/insects17030310
APA StyleDerguini, A., & Basher, N. S. (2026). Cockroaches as Vectors of Pathogens and Antimicrobial Resistance: Evidence from Healthcare, Community, and Agricultural Settings. Insects, 17(3), 310. https://doi.org/10.3390/insects17030310

