FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid

Product#: DCP-RPMIG-PB1X
$44.00
DCP-RPMIG-PB1X
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Ships in 1-2 Weeks

warning For Research Use Only (RUO). Not intended for clinical, diagnostic, or therapeutic use in humans.
ISO 13485 Certified Manufacturing

FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid

Contains L-Glutamine Contains Phenol Red Contains Calcium Contains Magnesium Contains Glucose Without Sodium Bicarbonate Without HEPES Without Sodium Pyruvate

Microfluidics Suitable, quadruple-stage ultra-filtered (0.1 µm ×2 + 0.04 µm ×2) 1X liquid RPMI 1640 base medium engineered for organ-on-a-chip (OoC), tissue-on-a-chip (ToC), and microphysiological system (MPS) applications. This high-glucose formulation is supplied without sodium pyruvate and without sodium bicarbonate, giving full control over carbon source and buffering strategy, and is processed through Diagnocine's four-stage 0.1 µm / 0.04 µm filtration train for microchannel-safe purity.

  • Quadruple-stage nano-filtration (0.1 µm ×2 + 0.04 µm ×2) for microchannel-safe purity
  • Endotoxin release specification: < 0.05 EU/mL (LAL, USP <85> BET), tested per manufacturing batch
  • High-glucose RPMI 1640 base (4500 mg/L / 4.5 g/L D-Glucose) formulated without sodium pyruvate and without sodium bicarbonate
  • Contains L-Glutamine (300 mg/L) and phenol red for visual pH monitoring; no HEPES or bicarbonate buffer included — buffering system to be added by the end user
  • pH 7.4 (USP <791>); osmolality reported per Certificate of Analysis
  • Manufactured under an ISO 13485:2016 quality management system; final packaging and QC at Diagnocine, Totowa, NJ
  • Custom formulations available — pH, glucose, salts, HEPES, and nutrient composition on request
DCP-RPMIG-PB1X | Cell Culture Media Available sizes: 500 mL, 1000 mL UNSPSC: 41116155 | Commodity: Molecular biology and cell culture growth media | (UNv260801)
RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid
  • Glucose4500 mg/L (4.5 g/L)
  • L-Glutamine300 mg/L
  • Sodium PyruvateNot added
  • HEPESNot added
  • pH (USP <791>)7.4
  • Osmolality (USP <785>)See CoA
  • Endotoxin (USP <85>)< 0.05 EU/mL
  • Filtration0.1 µm ×2 + 0.04 µm ×2 (Quadruple-stage)
  • Storage2–8°C, protect from light
  • Shelf Life12 months from date of manufacture, unopened
ISO 13485:2016 USP <85> <785> <788> RUO
Why FluxMPS™

Engineered where standard media fails

Conventional 0.22 µm-filtered media carry mycoplasma-sized particulates (0.2–0.3 µm), subvisible debris, and lot-to-lot endotoxin variability that accumulate inside microchannels — corrupting biosensor readings, stressing primary cultures, and shortening device lifetimes. FluxMPS™ addresses these failure modes through validated filtration and batch-level release testing.

filter_alt

Microchannel-safe purity

0.04 µm final filter stage plus USP <788> Method 1 (light obscuration) particulate compliance, verified per lot.

target

Total metabolic control

Fixed high-glucose (4.5 g/L) carbon source with precise amino acid and vitamin concentrations for metabolic flux experiments and Warburg-pathway studies; custom glucose concentrations available on request.

water_drop

Ultrapure-grade water

Prepared with Type 1 water (18.2 MΩ·cm) under tight trace-metal and total organic carbon (TOC) control for reproducible culture conditions.

visibility

Low background for imaging

Ultra-low particulate baseline (0.04 µm final filtration) reduces optical interference for confocal microscopy, live-cell biosensors, and TEER measurements. This formulation contains phenol red, which contributes assay background; a phenol-red-free version is available on request.

science

Rich, stable nutrient profile

Micro-batch precision manufacturing locks in amino acid and vitamin concentrations, supporting lot-to-lot reproducibility for long-term perfusion studies.

tune

Customization on demand

pH, glucose, salts, HEPES, sodium bicarbonate, and full nutrient composition available on request. Contact support@diagnocine.com.

Purity Architecture

Quadruple-stage filtration system

FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid is processed through a four-pass filtration train — two dedicated 0.1 µm / 0.04 µm prefilter + final-filter pairs run in series — reaching a 0.04 µm final pore size, well below the 0.22 µm standard used for conventional cell culture media.

  1. 1

    0.1 µm Prefiltration I

    Removes large particulates and aggregates; protects the first 0.04 µm final-filter cartridge.

  2. 2

    0.04 µm Final filtration I

    First 0.04 µm pass; retains sub-micron particulates and microaggregates that pass a 0.22 µm filter.

  3. 3

    0.1 µm Prefiltration II

    Second dedicated prefilter, protecting the second 0.04 µm final-filter cartridge.

  4. 4

    0.04 µm Final filtration II — Polish

    Ultimate polishing filter; aseptic fill & finish in a controlled environment.

Performance vs. conventional media

Four sequential prefilter/final-filter passes reaching 0.04 µm provide substantially finer particulate exclusion than single-pass 0.22 µm filtration, with USP <788> Method 1 (light obscuration) particulate compliance verified on every lot.

4
Sequential filtration passes (0.1 µm ×2 + 0.04 µm ×2)
0.04
µm final filter pore size — sub-mycoplasma polishing
Sterility assurance: Every lot undergoes 14-day USP <71> sterility testing. Mycoplasma risk is controlled by 0.1 µm mycoplasma-retentive filtration (not tested per lot); this is a filtration control, not a mycoplasma detection assay result.
Grade: This product is Microfluidics Suitable, filtered to a 0.04 µm final cut-off. It is not an MPS Grade product — that designation is reserved for the 0.01 µm ultra nano-filtered line, which adds 0.02 µm and 0.01 µm stages after the 0.04 µm polish. For applications requiring the 0.01 µm cut-off, contact support@diagnocine.com.
FluxMPS RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate 1X Liquid (DCP-RPMIG-PB1X) Quadruple-stage filtration system: 0.1 micron Prefiltration I, 0.04 micron Final filtration I, 0.1 micron Prefiltration II, 0.04 micron Final filtration II for organ-on-a-chip and microfluidic cell culture applications by Diagnocine
Figure 1. FluxMPS™ Quadruple-stage filtration architecture (0.1 µm ×2 + 0.04 µm ×2).
© Diagnocine® — DCP-RPMIG-PB1X
Applications

Designed for next-generation cell culture platforms

FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid is suited for organ-on-a-chip, metabolic research, live-cell imaging, and primary cell models where particulate contamination and endotoxin variability are unacceptable.

Automated Bioreactors & Robotics

Next-Generation System Uptime

An optional 0.01 µm (10 nm) ultra nano-filtered MPS Grade variant is available for automated bioreactor and robotic perfusion systems requiring the ultimate particulate exclusion — a separate tier from this Microfluidics Suitable (0.04 µm) product.

  • Total Particulate Exclusion: 10 nm filtration for nanoscale valve and sensor protection
  • Valve & Sensor Protection: prevents particulate-induced blockage in precision fluidic systems
  • Extended Perfusion Stability: maintains flow rate consistency across multi-week automated runs

Inquiry Required: Contact support@diagnocine.com to request the MPS Grade 0.01 µm variant.

Microfluidics

Micro Physiological System (MPS) & Chip

Ultra-filtered formulation supports microchannel integrity and laminar flow in chip-based devices.

OoCToCBoCLoCMPS
Cancer Biology

Warburg Effect & Metabolic Research

High-glucose, pyruvate-free base supports precise metabolic flux and glycolysis-focused study designs.

MCF-7MDA-MB-231HeLaA549
Stem Cell Biology

iPSC-Derived Models

Ultrapure formulation supports sensitive iPSC differentiation protocols where particulate load must be minimized.

iPSC-NeuronsiPSC-CMiPSC-Hep
Vascular Biology

Endothelial & Primary Cells

Microchannel-safe purity supports endothelial barrier integrity and TEER measurement stability.

HUVECsHAECsPrimary hepatocytes
Metabolomics

Metabolic Flux Analysis

High-glucose RPMI base supports 13C isotope tracing and NMR-based metabolic flux studies. Not compatible with Agilent Seahorse XF assays, which require bicarbonate-free, phenol-red-free medium — this formulation contains phenol red.

13C tracingNMR metabolomics
Live-Cell Imaging

Microscopy & Optical Sensing

Ultra-low particulate load supports high-content confocal imaging and biosensor workflows; phenol red is present in this formulation and may contribute assay background.

ConfocalBiosensorsTEER
Technical Specifications

Lot-release quality parameters

Every production lot of FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid undergoes the complete quality-release battery below before shipment.

Physical & Chemical Parameters
Parameter Specification
Formulation RPMI 1640 High Glucose base with L-Glutamine, Phenol Red, Calcium, Magnesium, Glucose; without Sodium Bicarbonate, HEPES, or Sodium Pyruvate
Appearance Orange-colored, clear solution
pH USP <791> 7.4
Osmolality USP <785> See CoA
Glucose 4500 mg/L (4.5 g/L)
L-Glutamine 300 mg/L
Sodium Pyruvate Not added
Phenol Red Present (5.300 mg/L)
Sterility, Purity & Safety Parameters
Parameter Specification
Endotoxin USP <85> BET < 0.05 EU/mL (batch release specification; see Manufacturing & QA)
Sterility USP <71> No growth after 14 days
Mycoplasma 0.1 µm mycoplasma-retentive filtration (not tested per lot)
Particulate ≥10 µm USP <788> Method 1 Compliant
Particulate ≥25 µm USP <788> Method 1 Compliant
Water Purity Ultrapure Type 1, 18.2 MΩ·cm
Manufacturing std. ISO 13485 ISO 13485:2016
Fill environment ISO Class 5 (Class 100)
Storage, Handling & Logistics
Parameter Specification
Storage temperature 2–8°C, protected from light
Freeze-thaw Not recommended
Shelf life 12 months from date of manufacture, unopened
Shipping condition Cold pack
CO₂ requirement No sodium bicarbonate or HEPES included; buffering system to be added by the end user — see FAQ
Raw Materials & Regulatory Traceability
Parameter Specification
Raw material grade Cell culture / reagent grade
Traceability Full lot documentation, CoA available
Manufacturing QMS ISO 13485:2016 certified
UNSPSC 41116155 — Molecular biology and cell culture growth media (UNv260801)
Regulatory alignment 21 CFR Part 820 (QMSR) aligned
Production method Micro-batch precision manufacturing
Intended use For Research Use Only (RUO)
Formulation

Full composition (mg/L)

Complete formulation with CAS numbers, reproduced from the manufacturer specification. Total: 39 ingredients (5 inorganic salts, 20 amino acids, 10 vitamins, 4 others). Custom compositions available on request.

Component CAS Number mg/L
INORGANIC SALTS
Calcium nitrate tetrahydrate 13477-34-4 100.000
Magnesium sulfate anhydrous 7487-88-9 48.840
Potassium chloride 7447-40-7 400.000
Sodium chloride 7647-14-5 6000.000
Sodium phosphate dibasic anhydrous 7558-79-4 800.000
Component CAS Number mg/L
AMINO ACIDS
Glycine 56-40-6 10.000
L-Arginine hydrochloride 1119-34-2 241.000
L-Asparagine 70-47-3 50.000
L-Aspartic acid 56-84-8 20.000
L-Cystine dihydrochloride 30189-89-0 65.200
L-Glutamic acid 56-86-0 20.000
L-Glutamine 56-85-9 300.000
L-Histidine hydrochloride monohydrate 5934-29-2 20.960
L-Hydroxyproline 51-35-4 20.000
L-Isoleucine 73-32-5 50.000
L-Leucine 61-90-5 50.000
L-Lysine hydrochloride 657-27-2 40.000
L-Methionine 63-68-3 15.000
L-Phenylalanine 63-91-2 15.000
L-Proline 147-85-3 20.000
L-Serine 56-45-1 30.000
L-Threonine 72-19-5 20.000
L-Tryptophan 73-22-3 5.000
L-Tyrosine Disodium Salt 69847-45-6 28.830
L-Valine 72-18-4 20.000
Component CAS Number mg/L
VITAMINS
Choline chloride 67-48-1 3.000
D-Biotin 58-85-5 0.200
D-Ca-Pantothenate 137-08-6 0.250
Folic acid 59-30-3 1.000
Niacinamide 98-92-0 1.00
Pyridoxine hydrochloride 58-56-0 1.00
Riboflavin 83-88-5 0.200
Thiamine hydrochloride 67-03-8 1.000
Vitamin B12 68-19-9 0.005
p-Amino benzoic acid (PABA) 150-13-0 1.000
OTHERS
D-Glucose 50-99-7 4500.000
Glutathione reduced 70-18-8 1.000
Phenol red sodium salt 34487-61-1 5.300
i-Inositol 87-89-8 35.000
Customization: pH, glucose, salt balance, HEPES, sodium bicarbonate, and full nutrient profile available on request. Contact support@diagnocine.com.
Quality Assurance

ISO 13485:2016 manufacturing & compliance

Manufactured under ISO 13485:2016 QMS, with final packaging, testing, and customization at Diagnocine Precision in Totowa, New Jersey, USA.

verified

ISO 13485:2016 QMS

Full quality management system certification covering manufacturing, testing, and release for every production lot.

water_drop

Ultrapure Type 1 Water

Media prepared with 18.2 MΩ·cm resistivity water under tight trace-metal and TOC control.

biotech

ISO Class 5 Fill & Finish

Aseptic filling in validated ISO Class 5 laminar-flow workstations; 21 CFR Part 820 (QMSR) aligned.

assignment

Micro-Batch Precision

Small-batch manufacturing supports lot-to-lot nutrient consistency for reproducible perfusion studies.

Endotoxin — USP <85> BET

LAL assay on every manufacturing batch. Release specification: < 0.05 EU/mL.

Particulate — USP <788> Method 1

Light obscuration particle count confirms ≥10 µm and ≥25 µm compliance on every lot.

Osmolality — USP <785>

Freezing-point osmometry per USP <785>. Result reported on the Certificate of Analysis.

Documentation — CoA & Full Lot Records

Certificate of Analysis with full QC panel, raw material traceability, and release signatures for every lot.

Batch-level quality control. Endotoxin is controlled per manufacturing batch rather than per unit. Every batch is tested before release and must meet the release specification:
  • Endotoxin — LAL assay, USP <85> Bacterial Endotoxins Test; assay sensitivity 0.005 EU/mL; release specification < 0.05 EU/mL
  • pH, osmolality, conductivity, appearance and clarity
  • Sterility
A Certificate of Analysis is available on request via support@diagnocine.com.
Product Comparison

How DCP-RPMIG-PB1X (FluxMPS™) compares

Side-by-side comparison against conventional 0.22 µm-filtered alternatives of the same base formulation, plus a sourced endotoxin specification comparison.

Parameter DCP-RPMIG-PB1X (FluxMPS™) Conventional RPMI 1640 (0.22 µm) Standard RPMI 1640 alternative
Grade Microfluidics Suitable Standard grade Standard grade
Base formulation RPMI 1640 High Glucose, w/o Sodium Pyruvate & Sodium Bicarbonate: 1X Liquid RPMI 1640 Standard RPMI 1640 Equivalent
Final filtration pore size 0.04 µm 0.22 µm 0.22 µm
Number of filtration stages 4 stages 1 stage 1–2 stages
Mycoplasma barrier filtration check_circle cancel cancel
Endotoxin (release specification) < 0.05 EU/mL Corning classical liquid media — < 0.25 EU/mL
Sigma-Aldrich DMEM complete medium — ≤ 2 EU/mL
Gibco classical DMEM — Not specified (recorded per lot)
USP particulate compliance check_circle USP <788> Method 1 cancel cancel
Water quality Ultrapure Type 1 (18.2 MΩ) Purified water Purified water
Manufacturing QMS ISO 13485:2016 Variable Variable
Microfluidic compatibility check_circle Validated cancel Risk of clogging cancel Risk of clogging
Custom formulation check_circle On request cancel Limited

Comparison figures from published supplier specifications, accessed 2026-09-02. Suppliers that publish no numeric endotoxin specification are shown as "Not specified".

FAQ

Frequently asked questions

Common questions about FluxMPS™ RPMI 1640 Medium, High Glucose w/o Sodium Pyruvate, Sodium Bicarbonate: 1X Liquid.

Yes. DCP-RPMIG-PB1X uses our Quadruple-stage filtration (0.1 µm ×2 + 0.04 µm ×2), delivering ultra-low particulate counts that support microchannel integrity in OoC and MPS devices.
Standard 0.22 µm filtration does not retain mycoplasma-sized organisms (0.2–0.3 µm) or fine subvisible particulates. FluxMPS™ uses four sequential prefilter/final-filter passes reaching 0.04 µm, with USP <788> Method 1 (light obscuration) particulate compliance verified on every lot.
This RPMI 1640 base is supplied without sodium pyruvate and without sodium bicarbonate so researchers can define their own energy source and buffering strategy. Sodium pyruvate is commonly added at 1 mM (110 mg/L) to support energy metabolism in pyruvate-dependent cell lines. Sodium bicarbonate (typically 2 g/L for a 5% CO₂ incubator) or HEPES can be added as the buffering system. Contact support@diagnocine.com for a pre-formulated custom version.
This formulation is supplied without sodium bicarbonate or HEPES buffer. If you add sodium bicarbonate, standard 5% CO₂ incubation is typically required to maintain physiological pH; if you use HEPES instead, CO₂ dependence is reduced. Contact support@diagnocine.com for buffering guidance specific to your system.
Yes. This medium can be supplemented with FBS, growth factors, antibiotics, sodium pyruvate, or a buffering system per standard practice. When adding serum or protein-containing supplements, filter with a 0.2 µm low-protein-binding PES or PVDF membrane immediately before use — do not use a 0.04 µm filter for supplements, as it will strip serum proteins and clog rapidly.
Endotoxin is controlled per manufacturing batch. Every batch is tested by LAL assay per USP <85> BET (assay sensitivity 0.005 EU/mL) and must meet the release specification of < 0.05 EU/mL before release. Batch results are documented in the Certificate of Analysis, available from support@diagnocine.com.
Yes. A batch-specific CoA is available for every shipment and includes: appearance, pH (USP <791>), osmolality (USP <785>), endotoxin (USP <85> BET), sterility (USP <71>), particulate matter (USP <788> Method 1), raw material traceability, manufacturing date, lot number, expiry, and authorized release signatures. Request via support@diagnocine.com.
Scientific References

Supporting literature

Peer-reviewed publications supporting the scientific rationale for ultra-filtered media and microfluidic cell culture applications.

  1. Huh D et al. (2010). Reconstituting organ-level lung functions on a chip. Science, 328(5986), 1662–1668. doi:10.1126/science.1188302
  2. Bhatia SN & Ingber DE (2014). Microfluidic organs-on-chips. Nature Biotechnology, 32(8), 760–772. doi:10.1038/nbt.2989
  3. Bhattacharya S et al. (2018). Challenges in maintaining cell viability during microfluidic experiments. Electrophoresis, 39(7), 997–1006. doi:10.1002/elps.201700375
  4. Warburg O (1956). On the origin of cancer cells. Science, 123(3191), 309–314. doi:10.1126/science.123.3191.309
  5. Kim S et al. (2012). Gut-on-a-chip microdevice replicates key functional features of the human intestine. Lab on a Chip, 12(12), 2165–2174. doi:10.1039/c2lc40074j
  6. Zhang YS et al. (2017). Multisensor-integrated organs-on-chips platform for automated in situ monitoring. PNAS, 114(12), E2293–E2302. doi:10.1073/pnas.1612906114
  7. Vernetti L et al. (2017). Functional coupling of human microphysiology systems. Scientific Reports, 7, 42296. doi:10.1038/srep42296
  8. Schuster B et al. (2020). Automated microfluidic platform for dynamic and combinatorial drug screening of tumor organoids. Nature Communications, 11, 5271. doi:10.1038/s41467-020-19058-4
  9. Zheng F et al. (2021). Organ-on-a-chip systems: microengineering to biomimic living systems. Small, 17(7), 2004175. doi:10.1002/smll.202004175
  10. Esch EW et al. (2015). Organs-on-chips at the frontiers of drug discovery. Nature Reviews Drug Discovery, 14(4), 248–260. doi:10.1038/nrd4539

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