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The inQuiQ, real-time binding affinity and kinetics

The inQuiQ brings integrated photonics to label-free biosensing. By placing most optics on the sensor-chip ensures signal stability, cuts warm-up time to five minutes, and keeps the instrument on the bench, with an easy modular upgrade for higher throughput.

Delta Life Science inQuiQ photonic biosensor instrument
4 channels
16 sensors
30 μL
min. sample volume
10 × 2 mL
Sample capacity
0 MW
no lower detection limit

The inQuiQ at a glance

Front view

10 samples
inQuiQ instrument, front view: ten numbered sample positions, four channels and three buffer positions.
4 channels 3 buffers

Model: inQuiQLabel-free biosensor

01Ready immediately

5 minutes warm up time

02Fits on your bench

30 × 36 × 40 cm, 18 kg

03Give slow binders more time

Injections up to 2 mL

04See the small signals

Noise below 0.1 RU RMS

05Run serum and plasma samples

Antifouling hydrogel surface

06Modular upgrade path

inQuiQ 768 autosampler

01Sample + surface chemistry

Designed around diverse samples and surface chemistries

The inQuiQ measures binding across molecule classes, from small molecules and nucleic acids to antibodies, membrane proteins, and whole particles, with no lower molecular weight limit. Pick the coupling chemistry that fits your ligand, from EDC/NHS amine coupling to biotin, Strep-tag, Protein A/G, lipid layers, and click chemistry.

Sample compatibility

Diverse molecule types across one platform

  • Small molecules
  • Nucleic acids
  • Antibodies & antigens
  • Proteins / enzymes
  • Lipids & membranes
  • Viruses & particles

Molecular scale

100 Da50 kDa150 kDaparticles

Surface chemistry

Choose the coupling strategy for your ligand

Carboxyl groups

Covalent amine coupling via EDC/NHS

Streptavidin / NeutrAvidin

Capture biotinylated ligands

Streptactin

Capture Strep-tagged proteins

Protein A/G

Immunoglobulin workflows

Lipid layers

Membrane proteins or lipid-interacting molecules

Azide groups

Click-based chemistry

02Chip + flowcell

Flexibly addressable flow channels

Sample flows across the photonic chip. Each molecule binding to a sensor surface changes the light passing underneath, and the inQuiQ label-free biosensor records this in real time as a sensorgram. Injections run one after another, and each one is read across all sensors in the path, giving affinity and kinetics (KD, kon, koff) for several targets and controls from one small sample.
  • Four channels with customizable flow paths
  • 4-plex assays with in-flow immobilisation, up to 16-plex with a spotter
  • Antifouling hydrogel surface for clean signals in complex media
  • 10 to 100 µL/min flow, up to 300 µL/min for low-viscosity samples
inQuiQ flow cell: four channels plumbed in series, sixteen sensor spots CH-01 IN 1 OUT 1 1 2 3 4 CH-02 IN 2 OUT 2 5 6 7 8 CH-03 IN 3 OUT 3 9 10 11 12 CH-04 IN 4 OUT 4 13 14 15 16

1–16 · sensor spots  ·  pink · binding event

03Detection + performance

The chip: where the magic happens

NES photonic detection

Light travels through microscopic optical waveguides on the chip.
Binding events near the sensing surface change the local refractive index.
The changes in refractive index are transformed into a real-time signal
Photonic integrated chip

performance

Continuous measurements
Regenerable surface
Signal-to-noise ratio
0.1 RU
Baseline noise Sensitivity Sensors
Typically < 0.1 RU RMS
KD range
10 pM to 10 mM
Baseline drift
Typically < 0.3 RU/min
Baseline noise High-Sensitivity Sensors
Typically < 0.03 RU RMS

04Data + software

Real-time data with intuitive software

Affinity

Steady-state binding and KD analysis

Kinetics

ka, kd, and KD interpretation

Quantification

Concentration and biologically active concentration

Specificity

Screening, epitope binning, thermodynamics, yes/no binding

Placeholder software photo

Small molecules

Small molecule interactions

No lower MW limit for organic molecules

Biomarkers

Biomarker detection in complex matrixes

Clean signal in serum, plasma, and lysate

tight binders

Stable tight-binder measurements

Low baseline drift for slow off-rates

05inQuiQ specifications

Specifications

01 detection technology

Nanophotonic Evanescent field Sensing

Learn more about NES technology

02Channels

4 channels, each containing 4 sensors

06Sample handling

10 × 2 mL tubes
1.5 mL generic tubes compatible

04Minimum sample volume

30 µL

05Temperature control

16 °C to 40 °C

06Output

Real-time binding response

Sample handling

Channels
44 sensors each
Sample capacity
10 × generic 1.5 or 2 mL tubes
Minimum sample volume
30 µL50 µL recommended
Injection volume range
30 µL to 2 mL
Flow rate range
10 to 100 µL/minup to 300 µL/min for low-viscosity samples

Sensing

Sensor chip
HC1000M, HC30M
Data collection rate
1 Hzsensitivity chips 1, 10, 100 Hz*high-sensitivity chips
*subject to change
Baseline noise
Typically < 0.1 RU RMSsensitivity chips Typically < 0.03 RU RMSat 1 Hz, high-sensitivity chips
Baseline drift
< 0.3 RU/mintypically

Measurement range

Association rate, ka
101 to 107 M-1s-1
Dissociation rate, kd
1 to 10-6 s-1
Affinity, KD
10 pM to 10 mM
Sample refractive index range
Unlimited

Buffers and physical

Running buffer capacity
2 × 50 mL
Regeneration buffer capacity
1 × 50 mL
Temperature control
16 to 40 °Cmax 4 °C below ambient
Dimensions, W × H × D
30 × 36 × 40 cm
Net weight
18 kg

06Plan a demo

See how the inQuiQ fits your workflow

Tell us your panel, your formats, and the binding questions you need answered. We will show you the inQuiQ on an assay close to yours.

Ready to see the inQuiQ in action?

Questions researchers ask

The inQuiQ's NES technology and SPR work on the same principle: binding at a sensor surface changes the refractive index inside an evanescent field. NES puts that optical path onto a photonic chip, which brings higher sensitivity at a lower instrument cost. BLI dips a sensor tip into the sample, great for crude media, but less sensitive with off-rates. ITC is a different measurement: solution-phase thermodynamics, no immobilisation, no rate constants.

Nanophotonic evanescent field sensing (NES) is the detection method behind the inQuiQ. Light circulates in optical ring resonators on a photonic integrated circuit, and its evanescent field reaches just past the sensor surface. Binding shifts the resonance. Printing the optics onto a chip is what makes 16 stable sensors, a 5 minute warm-up, and lower instrument cost possible with the highest sensitivity.

One method covers most binding questions: affinity (KD) determination, single-cycle and multi-cycle kinetics, steady-state affinity, competitive and inhibition assays, epitope binning and cross-blocking, off-rate ranking, dose-response with IC50 and EC50, ternary complex and cooperativity assays, active concentration and titer, anti-drug antibody kinetics in matrix, and thermodynamic studies across a temperature series.

Older SPR systems reach a point where the service contract ends, spare parts get scarce, and the control software no longer fits current IT policy. The data may still be fine, but the risk sits in uptime. The inQuiQ uses a new generation technology that returns the same parameters, KD, kon, and koff, on a supported instrument, on your own bench.

For binding questions, yes. ELISA reports an endpoint after wash and detection steps, so it shows how much bound, not how fast or how tightly. The inQuiQ follows association and dissociation in real time on unmodified molecules and returns KD, kon, and koff from one sample, with no secondary antibody and no enzyme label.
Precise, accessible, flexible label-free biosensing, powered by integrated photonics.

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