SEARCH

Antimicrobial Resistance Testing

Know the Resistance Before You Choose the Drug

Molecular detection identifies key resistance genes in Gram-negative bacteria directly from an isolate, often faster than a phenotypic susceptibility result, so stewardship and infection control decisions don’t have to wait.

Resistance Doesn’t Wait for a Susceptibility Result

An estimated 2.8 million antimicrobial-resistant infections occur in the United States each year, and more than 35,000 people die as a result (CDC, Antibiotic Resistance Threats in the United States, 2019). Phenotypic susceptibility testing requires its own growth-based incubation step after an organism has already been identified; molecular detection of the resistance gene itself, run directly on an isolate already in hand, completes in under an hour and names the specific gene, not just resistant or susceptible.

Where Detection Creates Value

Reporting resistant or susceptible tells a clinician what happened. Naming the gene tells them why. As the Infectious Disease Testing overview lays out, different chemistries fail at different points in the workflow — here, the failure mode isn’t a missed step but a missed gene family, since carbapenemases, ESBLs and AmpC β-lactamases are frequently carried on mobile plasmids and spread between patients, animals and the environment more readily than chromosomal resistance.

Genotype, Not Just Phenotype

Naming the specific gene and variant, rather than only reporting resistant or susceptible, supports surveillance and stewardship decisions a phenotypic result alone can’t.

Faster Than a Phenotypic Result

Detecting the resistance gene on an isolate already in hand skips the growth-based incubation step a phenotypic susceptibility result still requires.

An Earlier Signal for Infection Control

Confirming a high-consequence resistance mechanism sooner gives infection control teams an earlier window to isolate a patient appropriately, before it spreads farther within a facility.

Time From Isolate to Resistance Call

Evidence

AmpC Has No Standard Phenotypic Test

CLSI provides guidance for phenotypic detection of both carbapenemases and ESBLs, but there is no standardized phenotypic method to confirm or screen for AmpC β-lactamases, which can be chromosomally deregulated or acquired on a plasmid.

Evidence

Gene-Family Diversity Complicates Detection

The blaIMP family shows a high degree of genetic diversity, a well-documented challenge for designing primers and probes broad enough to cover the variants actually circulating. Molecular detection carries two structural advantages over phenotypic testing: turn-around time, and definitive identification of the specific resistance gene rather than an inferred phenotype.

Four Kits, One Per Resistance Mechanism

Each ARM-D® Kit targets a distinct gene family, so a lab can add coverage for the mechanisms most relevant to its patient population without adopting a new platform.

All four kits are compatible with most 4-channel real-time thermal cyclers, include a positive control for every gene target plus an internal control against inhibition and degradation, and complete in under an hour. All are for Research Use Only and are currently cataloged on streck.com under Specialized Testing.

Carbapenemases, ESBLs & Plasmid-Mediated AmpC

Streck ARM-D Kit - B-Lactamase

ARM-D® Kit, β-Lactamase

Detects over 450 allelic variants across 9 gene families: carbapenemases (KPC, NDM, OXA-48, IMP, VIM), ESBLs (CTX-M-14, CTX-M-15) and plasmid-mediated ampC genes (DHA, CMY-2).

Learn more →


Item #250045 · Independently evaluated by CDC researchers against whole genome sequencing: 100% sensitivity, 99.9% specificity across 113 isolates (Yoo et al. 2024, see Evidence below)

AmpC β-Lactamases

Streck ARM-D Kit - ampC

ARM-D® Kit, ampC

Detects over 200 allelic variants across the CMY02, DHA, ACC, EBC, FOX and MOX gene families, and differentiates plasmid-mediated from chromosomal AmpC resistance.

Learn more →


Item #250044

Oxacillinases

Streck ARM-D Kit - oxa

ARM-D® Kit, OXA

Detects over 500 allelic variants across 9 OXA gene families, including targets tied to carbapenem resistance in Acinetobacter.

Learn more →


Item #250052

Extended-Spectrum β-Lactamases

Streck ARM-D Kit TEM-SHV-GES

ARM-D® Kit, TEM/SHV/GES

Detects over 350 variants across the TEM, SHV and GES gene families, many of them extended-spectrum β-lactamases.

Learn more →


Item #250054

Instructions for Use

Package inserts, quick start guides and instrument-specific data acquisition guides for all four ARM-D® Kits.

Find your IFU →

Yoo et al. 2024

The independent CDC-authored evaluation of the β-Lactamase kit, published in J Glob Antimicrob Resist.

Read the study →

CLSI MM17

The guideline used to calculate this evaluation’s sensitivity, specificity, PPV, NPV and accuracy.

View at CLSI →

Full Molecular QC Line

Browse Streck’s molecular controls for the assays ARM-D® Kits are run alongside, across every application in this cluster.

Explore the portfolio →

Expanding Coverage Alongside Emerging Resistance

Resistance mechanisms don’t stay fixed, and a gene family that’s rare today can become clinically significant within a few years. If your lab or health system is tracking an emerging resistance target not yet covered by an existing ARM-D® Kit, Streck’s molecular team can talk through what a custom detection panel would take.

Built for Full-Process Reliability

Independently manufactured assays that include a positive control for every gene target and an internal control against inhibition, degradation and poor extraction, so a negative result means the gene truly isn’t there.