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Image of blue rendered molecular structure
Sulfazyme_PaS_Complete_Logo_2025_Black

Sulfazyme™ PaS (EC 3.1.6.1) is a purified recombinant arylsulfatase from Pseudomonas aeruginosa designed to hydrolyze select sulfated compounds at 37 °C. Sulfazyme hydrolyzes the sulfate groups from metabolites that have been sulfated as part of phase II detoxification in the liver.

Sulfazyme™ PaS hydrolyzes selected sulfated compounds with higher activity than other commercially available sulfatases.

The table below compares activity levels between Sulfazyme™ PaS and other sulfatases available on the market today. Activity levels for other sulfatases were derived from data found in the literature.3

Sulfazyme Table_2025_v3_for Website

3Stevenson BJ, Waller CC, Ma P, Li K, Cawley AT, Ollis DL, and MD McLeod (2015) Pseudomonas aeruginosa arylsulfatase: a purified enzyme for the mild hydrolysis of steroid sulfates. Drug Test. and Anal. 7, 903-911.

Product Specifications How to Use Catalog Posters Journal Articles
Product Specifications

PRODUCT SPECIFICATIONS: [DOWNLOAD]

Physical Description: Clear aqueous solution
Specific Activity: ≥4.0 U/mg*
Guaranteed Shelf Life: 6 months**
Storage Temperature: 2-8 °C
*One unit is equivalent to 1.0 micromole of p-nitrocatechol sulfate hydrolyzed per minute at pH 8.0 and 25 °C.
**Enzyme solution is stable at 2-8 °C for at least 6 months after receipt. The original enzyme solution is formulated for long-term storage. Diluting the enzyme could negatively impact its shelf life. Do NOT exceed three freeze-thaw cycles.
How to Use

RECOMMENDED REACTION SETUP FOR CORTISOL 21-SULFATE HYDROLYSIS

  1. Add MilliQ water to urine samples.
  2. Add 1 M Tris-HCl, pH 8.0 Buffer.
  3. Add internal standard or additional MilliQ water.
  4. Add Sulfazyme PaS and mix gently.
  5. DO NOT VORTEX.
  6. Incubate at 37°C for 4 hours
Small Volume Hydrolysis Reaction Conditions No enzyme
(urine blank)
(µL)
Sulfazyme™
only
(µL)
B. pi β-GUS
only
(µL)
Sulfazyme™
and β-GUS
(µL)
Urine 100 100 100 100
Sulfazyme™ (PaS, DS, or β-AS) 0 20 0 20
β-glucuronidase (B. pi β-glucuronidase variant) 0 0 20 20
Sulfazyme™ Buffer (1.0 M Tris-HCl pH 8) 20 20 20 20
Internal Standard (ISTD, or use MilliQ water) 20 20 20 20
MilliQ Water 40 20 20 0
Total Volume (µL) 180 180 180 180
Catalog

Sulfazyme™ PaS

 

Product Description Catalog Number
Sulfazyme™ PaS - 5 mL  04E-270-005
Sulfazyme™ PaS - 10 mL  04E-270-010
Sulfazyme™ PaS - 50 mL  04E-270-050

Please contact us to request custom packaging or bulk orders.

Posters
  • MSACL 2024: Enzymatic Hydrolysis of Recalcitrant Steroids with Engineered Arylsulfatases

  • ASMS 2019: Hydrolysis of Sulfated Steroids, Toxic Endobiotics and Xenobiotics Using Purified Sulfatase for Quantitation of Sulfated and Unconjugated Compounds

  • ASMS 2017: Utilizing Purified β-Glucuronidase and Arylsulfatase to Accurately Quantitate Metabolites in Human Urine

Journal Articles
  1. Eitaki Y, Nakano M, Omae K, Takebayashi T. (2026). Comprehensive urinary metabolite profiles of workers exposed to aniline, 2,4-dimethylaniline, and 2-methylaniline. Journal of Occupational Health. 68:uiaf072. doi: 10.1093/joccuh/uiaf072
  2. Lessard-Lord J, Auger S, Demers S, Plante P-L, Picard P, Desjardins Y. (2023). Automated high-throughput quantification of phenyl-γ-valerolactones and creatinine in urine by laser diode thermal desorption. Journal of Agricultural and Food Chemistry. 71:16787-16796. doi: 10.1021/acs.jafc.3c03888
  3. Helmer E, Karimian N, Van Assche K, Seghers I, Le Tallec S, Cherala G, Scott G, Namour FS. (2022). Ziritaxestat Drug–Drug Interaction with Oral Contraceptives: Role of SULT1E1 Inhibition. Clinical Pharmacology & Therapeutics. doi: 10.1002/cpt.2689
  4. Lessard-Lord J, Plante PL, Desjardins Y. (2022). Purified recombinant enzymes efficiently hydrolyze conjugated urinary (poly)phenol metabolites. Food & Function. doi: 10.1039/d2fo02229j
  5. Wang FR, Fei J, Yu XL, Zhao XC, Wang Q, Metavarayuth K. (2018). Advancing the Analysis of Terbutaline in Urine Samples Using Novel Enzyme Hydrolysis. Bioanalysis. doi: 10.4155/bio-2018-0145
    • A summary of "Advancing the analysis of terbutaline in urine samples using novel enzyme hydrolysis"
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Why use Sulfazyme™?

The majority of commercially available sulfatase enzymes are sourced from organisms like snails, limpets, or abalone, which may contain interfering metabolites and enzymatic activities that can lead to inaccurate results. Sulfazyme™ PaS is recombinant and has >90% purity. This enzyme has been shown to exclusively exhibit sulfatase activity, ensuring highly specific and accurate hydrolysis.

<strong>Figure 1.</strong> Chromogenic assays to detect relative activities of Sulfazyme and crude snail enzyme (<em>Helix pomatia</em>). <strong>(a)</strong> Glucuronidase activity using phenolphthalein glucuronide at 25°C. <strong>(b)</strong> Sulfatase activity using para-nitrocatechol sulfate at 37°C. <strong>(c)</strong> Esterase activity using Calcein-AM at 37°C. Relative activity was determined by normalizing against the lowest activity.

Figure 1. Chromogenic assays to detect relative activities of Sulfazyme and crude snail enzyme (Helix pomatia). (a) Glucuronidase activity using phenolphthalein glucuronide at 25 °C. (b) Sulfatase activity using para-nitrocatechol sulfate at 37 °C. (c) Esterase activity using Calcein-AM at 37 °C. Relative activity was determined by normalizing against the lowest activity. [From Sitasuwan N, McGee A, Lee LA. (2019). Hydrolysis of sulfated steroids, toxic endobiotics and xenobiotics using purified sulfatase for quantitation of sulfated and unconjugated compounds. Proceedings of the 67th ASMS Conference on Mass Spectrometry and Allied Topics, Atlanta, GA. June 2-6, 2019.]

<strong>Figure 2.</strong> Hydrolysis profiles up to 24 hours of sulfated metabolites at known concentrations. <strong>(a)</strong> Cortisol sulfate in synthetic urine (Surine™) incubated with Sulfazyme. <strong>(b)</strong> Tapentadol sulfate in synthetic urine (Surine™) incubated with Sulfazyme. <strong>(c)</strong> Tapentadol sulfate in human plasma incubated with Sulfazyme.

Figure 2. Hydrolysis profiles up to 24 hours of sulfated metabolites at known concentrations. (a) Cortisol sulfate in synthetic urine (Surine™) incubated with Sulfazyme. (b) Tapentadol sulfate in synthetic urine (Surine™) incubated with Sulfazyme. (c) Tapentadol sulfate in human plasma incubated with Sulfazyme. [From Sitasuwan N, McGee A, Lee LA. (2019). Hydrolysis of sulfated steroids, toxic endobiotics and xenobiotics using purified sulfatase for quantitation of sulfated and unconjugated compounds. Proceedings of the 67th ASMS Conference on Mass Spectrometry and Allied Topics, Atlanta, GA. June 2-6, 2019.]

Another study compared the deconjugation efficiencies of three enzymes for hydrolyzing terbutaline metabolites in human urine samples. IMCSzyme® and Sulfazyme™ PaS (referred to as IMCS-PSF in the article) were compared to Helix pomatia β-glucuronidase (Sigma). Urine samples from healthy volunteers were collected before and after oral administration of terbutaline tablets. Samples were subjected to four enzyme and sample mixture conditions (Table 1). This study demonstrated that Sulfazyme™ PaS shows higher hydrolysis efficiency than other enzymes typically used for the analysis of terbutaline (Figure 3).

<strong>Figure 3.</strong> Comparison of the temporal hydrolysis profile of terbutaline metabolites upon hydrolysis with no enzyme, IMCSZyme, IMCS-PSF (Sulfazyme PaS) and crude enzyme. The data are expressed as mean ± SD (n = 3). ***p ≤ 0.001 is based on ANOVA. ANOVA: Analysis of variance; SD: Standard deviation.

Figure 3. Comparison of the temporal hydrolysis profile of terbutaline metabolites upon hydrolysis with no enzyme, IMCSZyme, IMCS-PSF (Sulfazyme PaS) and crude enzyme. The data are expressed as mean ± SD (n = 3). ***p ≤ 0.001 is based on ANOVA. ANOVA: Analysis of variance; SD: Standard deviation. [From Wang FR, Fei J, Yu XL, Zhao XC, Wang Q, Metavarayuth K. (2018). Advancing the Analysis of Terbutaline in Urine Samples Using Novel Enzyme Hydrolysis. Bioanalysis. doi: 10.4155/bio-2018-0145.]

When used in conjunction with IMCSzyme®, Sulfazyme™ facilitates faster and more efficient discoveries of conjugated metabolites which would be otherwise difficult to detect by mass spectrometry.

Combining IMCSzyme® and Sulfazyme™ PaS below enables the rapid detection of phenyl-γ-valerolactones (PVLs) in urine. The traditional method requires 6 hours while hydrolysis with the combined IMCSzyme® and Sulfazyme™ enzymes requires only 30 minutes.4,5

Using IMCSzyme beta-glucuronidase alongside Sulfazyme PaS enables the rapid hydrolysis of PVLs

4Lessard-Lord J, Auger S, Plante P-L, Picard P, Dudonné S, Desjardins Y. (2021). Ultra-fast determination of the capacity to degrade proanthocyanidins from cranberries into phenyl-γ-valerolactones by Luxon-MS/MS. Proceedings of the 69th ASMS Conference on Mass Spectrometry and Allied Topics, Philadelphia, PA. October 31 – November 4, 2021

5Lessard-Lord J, Auger S, Demers S, Plante P-L, Picard P, Desjardins Y (2023). Automated high-throughput quantification of phenyl-γ-valerolactones and creatinine in urine by laser diode thermal desorption. Journal of Agricultural and Food Chemistry. 71:16787-16796. doi:10.1021/acs.jafc.3c03888

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Both Sulfazyme variants perform exceptionally well when it comes to hydrolyzing sulfated compounds that the original Sulfazyme PaS excelled in. On top of that, each variant is genetically modified to efficiently hydrolyze specific recalcitrant steroid substrates. Please select one or both.
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Caleb R. Schlachter, Ph.D.

Principal Scientist
Caleb R. Schlachter, Ph.D., as the Principal Scientist at IMCS, leads and provides guidance for several research and development projects that involve proteins, including enzymes for glycan hydrolysis and glycan synthesis. He has co-authored multiple patents, posters, and peer-reviewed articles on β-glucuronidases and sulfatases.
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Gray D. Amick, Ph.D.

Director of Operations
Gray D. Amick, Ph.D., is the Director of Operations at IMCS with over 26 years of experience in forensic DNA analysis and toxicology. Prior to joining IMCS, he led forensic DNA testing for the Richland County Sheriff’s Department as technical leader and lab director. He has been court-qualified as an expert over 100 times and has authored and co-authored multiple posters and peer-reviewed articles.
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Amanda C. McGee

Research Scientist
Amanda C. McGee is a Research Scientist at IMCS involved with enzyme characterizations, new analytical method developments, and advanced technical support. She joined IMCS with several years of experience in analytical testing for active pharmaceutical ingredients as per cGMP, USP and ICH guidelines. She has co-authored peer reviewed articles in the Journal of Analytical Toxicology and presented research at national and international conferences.
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L. Andrew Lee, Ph.D.

Co-Founder and Chief Scientific Officer
L. Andrew Lee, Ph.D. co-founded IMCS and leads research and development efforts in enzyme engineering and automated micro-chromatography workflows. He directs new market efforts in glycan synthesis, supported by three NIH Fast-Track awards.

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