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Quantitative analysis of sarcosine with special emphasis on biosensors: a review

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Pages 415-422 | Received 14 Feb 2019, Accepted 20 Apr 2019, Published online: 13 May 2019

References

  • Allen, R.H., Stabler, S.P., and Lindenbaum, J., 1993. Serum betaine, N, N-dimethylglycine and N-methylglycine levels in patients with cobalamin and folate deficiency and related inborn errors of metabolism. Metabolism, 42 (11), 1448–1460.
  • Balson, E.W., Earwicker, G.A., and Lawson, A., 1935. The potentiometric determination of polypeptides and amino-acids. Biochemical journal, 29 (12), 2700–2704.
  • Bar-Joseph, I., et al., 2012. Mutations in the sarcosine dehydrogenase gene in patients with Sarcosinemia. Human genetics, 131 (11), 1805–1810.
  • Bianchi, F., et al., 2011. Fully automated solid-phase microextraction–fast gas chromatography–mass spectrometry method using a new ionic liquid column for high-throughput analysis of sarcosine and N-ethyl-glycine in human urine and urinary sediments. Analytica chimica acta, 707 (1–2), 197–203.
  • Bohm, L., et al., 2012. Plasma sarcosine does not distinguish early and advanced stages of prostate cancer. South African medical journal, 102 (8), 677.
  • Canbayi, Z.C., et al., 2015. Optimization of aptamer-based impedimetric biosensor for detection of sarcosine, 1, 26–28.
  • Cernei, N., et al., 2012. Spectrometric and electrochemical analysis of sarcosine as a potential prostate carcinoma marker. International journal of electrochemical science, 7 (5), 4286–4301.
  • Chung, T.C., et al., 2015. High-performance liquid chromatographic analysis of sarcosine as a fluorescent levofloxacin derivative. Journal of chromatographic science, 53 (8), 1310–1315.
  • Fasman, G.D., and Blout, E.R., 1963. Copolymers of L-proline and sarcosine: synthesis and physical-chemical studies. Biopolymers, 1 (2), 99–109.
  • Gray, N., et al., 2017. High-speed quantitative UPLC-MS analysis of multiple amines in human plasma and serum via precolumn derivatization with 6-aminoquinolyl-n-hydroxysuccinimidyl carbamate: application to acetaminophen induced liver failure. Analytical chemistry, 89 (4), 2478–2487.
  • Harrad, L.E., et al., 2018. Recent advances in electrochemical biosensors based on enzyme inhibition for clinical and pharmaceutical applications. Sensors, 18 (1), 164.
  • Heger, Z., et al., 2015. Paramagnetic nanoparticles as a platform for FRET-based sarcosine picomolar detection. Scientific reports, 5. Available from: https://doi.org/10.1038/srep08868
  • Heger, Z., et al., 2016. Sarcosine up-regulates expression of genes involved in cell cycle progression of metastatic models of prostate cancer. Plos one, 11 (11), e0165830.
  • Hou, S., Zhang, A., and Su, M., 2016. Nanomaterials for biosensing applications. Nanomaterials, 6 (4), 58.
  • Jackowska, K., and Krysinski, P., 2013. New trends in the electrochemical sensing of dopamine. Analytical and bioanalytical chemistry, 405 (11), 3753–3771.
  • Jiang, Y., et al., 2010. Quantitative determination of sarcosine and related compounds in urinary samples by liquid chromatography with tandem mass spectrometry. Analytical chemistry, 82 (21), 9022–9027.
  • Jiang, X.Y., et al., 2018. Hierarchical CuInS 2 -based heterostructure: application for photocathodic bioanalysis of sarcosine. Biosensors and bioelectronics, 107, 230–236.
  • Koncki, R., 2007. Recent developments in potentiometric biosensors for biomedical analysis. Analytica chimica acta, 599 (1), 7–15.
  • Kumar, P., et al., 2018. Construction and application of amperometric sarcosine biosensor based on SOxNPs/AuE for determination of prostate cancer. Biosensors and bioelectronics, 122 (30), 140–146.
  • Lad, U., Kale, G.M., and Bryaskova, R., 2014. Sarcosine oxidase encapsulated polyvinyl alcohol-silica-aunp hybrid films for sarcosine sensing electrochemical bioelectrode. Journal of the electrochemical society, 161 (5), 98–101.
  • Liu, T., et al., 2019. An electrochemical sarcosine sensor based on biomimetic recognition. Microchimica acta, 186, 136.
  • Luppa, P.B., Sokoll, L.J., and Chan, D.W., 2001. Immunosensors—principles and applications to clinical chemistry. Clinica chimica acta, 314 (1-2), 1–26.
  • Maggio, E.T., 2018. Enzyme-Immunoassay. 1st ed. CRC Press. 1–305.
  • Narwal, V., et al., 2018. Fabrication of an amperometric sarcosine biosensor based on sarcosine oxidase/chitosan/CuNPs/c-MWCNT/Au electrode for detection of prostate cancer. Enzyme and microbial technology, 113, 44–51.
  • Neethirajan, S., et al., 2018. Biosensors for sustainable food engineering: challenges and perspectives. Biosensors, 8 (1), 23.
  • Porter, D.H., Cook, R.J., and Wagner, C., 1985. Enzymatic properties of dimethylglycine dehydrogenase and sarcosine dehydrogenase from rat liver. Archives of biochemistry and biophysics, 243 (2), 396–407.
  • Pundir, C.S., Kumar, P., and Jaiwal, R., 2019. Biosensing methods for determination of creatinine: a review. Biosensors & bioelectronics, 126 (1), 707–724.
  • Rebelo, T.S., et al., 2014. Sarcosine oxidase composite screen-printed electrode for sarcosine determination in biological samples. Analytica chimica acta, 850 (19), 26–32.
  • Revin, S.B., 2015. Discerning sarcosine biosensor in the presence of elevated concentrations of ascorbic acid and uric acid. International journal of chemistry and pharmaceutical sciences, 3, 2208–2212.
  • Riedel, M., et al., 2013. Photoelectrochemical sensor based on quantum dots and sarcosine oxidase. Chem phys chem, 14 (10), 2338–2342.
  • Seven, B., et al., 2013. Impedimetric biosensor for cancer cell detection. Electrochemistry communications, 37, 36–39.
  • Soliman, L.C., et al., 2012. Monitoring potential prostate cancer biomarkers in urine by capillary electrophoresis–tandem mass spectrometry. Journal of chromatography A, 1267 (7), 162–169.
  • Strzelecki, D., et al., 2015. Supplementation of antipsychotic treatment with the amino acid sarcosine influences proton magnetic resonance spectroscopy parameters in left frontal white matter in patients with schizophrenia. Nutrients, 7 (10), 8767–8782.
  • Strzelecki, D., et al., 2015. Adding sarcosine to antipsychotic treatment in patients with stable schizophrenia changes the concentrations of neuronal and glial metabolites in the left dorsolateral prefrontal cortex. International journal of molecular sciences, 16 (10), 24475–24489.
  • Tsuruoka, M., et al., 2013. Capillary electrophoresis-mass spectrometry-based metabolome analysis of serum and saliva from neurodegenerative dementia patients. Electrophoresis, 34 (19), 2865–2872.
  • Turner, A.P., 2015. Biosensors: Fundamentals and applications – Historic book now open access. Biosensors and bioelectronics, 65. Available from: https://doi.org/10.1016/j.bios.2014.10.027
  • Uniyal, S., and Sharma, R.K., 2018. Technological advancement in electrochemical biosensor-based detection of organophosphate pesticide chlorpyrifos in the environment: a review of status and prospects. Biosensors and bioelectronics, 116 (30), 37–50.
  • Valenti, G., et al., 2015. An electrochemiluminescence-supramolecular approach to sarcosine detection for early diagnosis of prostate cancer. Faraday discussions, 185, 299–309.
  • Veloso, A., Cheng, X., and Kerman, K., 2012. Electrochemical biosensors for medical applications. Biosensors for medical applications, 3–40.
  • Wolfensberger, M., et al., 1982. Gas chromatographic method for the determination of trace amounts of putative amino acid neurotransmitters from brain perfusates collected in vivo. Journal of neuroscience methods, 5 (3), 253–260.
  • Wu, P.-L., et al., 2011. Sarcosine therapy for obsessive compulsive disorder. Journal of clinical psychopharmacology, 31 (3), 369–374. www.hmdb.ca/metabolites/HMDB00271.
  • Xia, F.Y., and Hou, Y.M., 1998. Dithioformylation of sarcosine and its determination by potentiometric titration. Fenxi huaxue, 26, 331.
  • Yamkamon, V., et al., 2018. Development of sarcosine quantification in urine based on enzyme-coupled colorimetric method for prostate cancer diagnosis. Experimental and clinical science journal, 17, 467–478.
  • Yang, H., et al., 2018. Nano Pt@ZIF8 modified electrode and its application to detect sarcosine. Journal of the electrochemical society, 165 (5), 247–250.
  • Zang, Y., Lei, J., and Ju, H., 2017. Principles and applications of photoelectrochemical sensing strategies based on biofunctionalized nanostructures. Biosensors and bioelectronics, 96 (15), 8–16.
  • Zitka, O., et al., 2014. Preconcentration based on paramagnetic microparticles for the separation of sarcosine using hydrophilic interaction liquid chromatography coupled with coulometric detection. Journal of separation science, 37 (5), 465–575.

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