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Publications

  1. Urothelial protein expression in pediatric patients with ureteropelvic junction obstruction. Pediatr Nephrol. 2026 Jul 10. View Abstract
  2. Urinary Proteome Enables Noninvasive Differentiation of Ureteropelvic Junction Obstruction from Vesicoureteral Reflux. J Urol. 2026 Jul 10; 101097JU0000000000005206. View Abstract
  3. Urine Proteins Stratify Patient Symptom Severity Phenotypes in Urologic Chronic Pelvic Pain Syndrome: A Multidisciplinary Approach to the Study of Chronic Pelvic Pain Research Network Study. Urology. 2026 Jul; 213:72-76. View Abstract
  4. Defining the urine proteome in boys with posterior urethral valves: a pilot study. Front Cell Dev Biol. 2026; 14:1752740. View Abstract
  5. Integrated transcriptomic and proteomic analyses identify novel biomarkers of bladder outlet obstruction. bioRxiv. 2026 May 04. View Abstract
  6. Multiomics analysis unveils an inosine-sensitive DNA damage response in neurogenic bladder after spinal cord injury. JCI Insight. 2025 06 23; 10(12). View Abstract
  7. Arabidopsis thaliana RHAMNOSE 1 condensate formation drives UDP-rhamnose synthesis. bioRxiv. 2024 Feb 19. View Abstract
  8. Integrated omics analysis unveils a DNA damage response to neurogenic injury. bioRxiv. 2023 Dec 10. View Abstract
  9. Association between urinary biomarkers MMP-7/TIMP-2 and reduced renal function in children with ureteropelvic junction obstruction. PLoS One. 2022; 17(7):e0270018. View Abstract
  10. The Urinary Proteomic Profile Implicates Key Regulators for Urologic Chronic Pelvic Pain Syndrome (UCPPS): A MAPP Research Network Study. Mol Cell Proteomics. 2022 01; 21(1):100176. View Abstract
  11. Proteomic Discovery of Noninvasive Biomarkers Associated With Sport-Related Concussions. Neurology. 2022 01 11; 98(2):e186-e198. View Abstract
  12. Uromodulin Isolation and Its N-Glycosylation Analysis by NanoLC-MS/MS. J Proteome Res. 2021 05 07; 20(5):2662-2672. View Abstract
  13. Characterizing Patients with Recurrent Urinary Tract Infections in Vesicoureteral Reflux: A Pilot Study of the Urinary Proteome. Mol Cell Proteomics. 2020 Mar; 19(3):456-466. View Abstract
  14. Association of Longitudinal Changes in Symptoms and Urinary Biomarkers in Patients with Urological Chronic Pelvic Pain Syndrome: A MAPP Research Network Study. J Urol. 2021 02; 205(2):514-523. View Abstract
  15. NIST Interlaboratory Study on Glycosylation Analysis of Monoclonal Antibodies: Comparison of Results from Diverse Analytical Methods. Mol Cell Proteomics. 2020 Jan; 19(1):11-30. View Abstract
  16. An in-depth Comparison of the Pediatric and Adult Urinary N-glycomes. Mol Cell Proteomics. 2020 11; 19(11):1767-1776. View Abstract
  17. Characterizing Patients with Recurrent Urinary Tract Infections in Vesicoureteral Reflux: A Pilot Study of the Urinary Proteome. Mol Cell Proteomics. 2020 03; 19(3):456-466. View Abstract
  18. NIST Interlaboratory Study on Glycosylation Analysis of Monoclonal Antibodies: Comparison of Results from Diverse Analytical Methods. Mol Cell Proteomics. 2020 01; 19(1):11-30. View Abstract
  19. Identification of novel non-invasive biomarkers of urinary chronic pelvic pain syndrome: findings from the Multidisciplinary Approach to the Study of Chronic Pelvic Pain (MAPP) Research Network. BJU Int. 2017 07; 120(1):130-142. View Abstract
  20. Urinary Proteomics Yield Pathological Insights for Ureteropelvic Junction Obstruction. Mol Cell Proteomics. 2016 08; 15(8):2607-15. View Abstract
  21. A normative study of the synovial fluid proteome from healthy porcine knee joints. J Proteome Res. 2014 Oct 03; 13(10):4377-87. View Abstract
  22. Dual modifications strategy to quantify neutral and sialylated N-glycans simultaneously by MALDI-MS. Anal Chem. 2014 Jul 01; 86(13):6277-84. View Abstract
  23. The GlycoFilter: a simple and comprehensive sample preparation platform for proteomics, N-glycomics and glycosylation site assignment. Mol Cell Proteomics. 2013 Oct; 12(10):2981-91. View Abstract
  24. An in-depth comparison of the male pediatric and adult urinary proteomes. Biochim Biophys Acta. 2014 May; 1844(5):1044-50. View Abstract
  25. SweetSEQer, simple de novo filtering and annotation of glycoconjugate mass spectra. Mol Cell Proteomics. 2013 Jun; 12(6):1735-40. View Abstract
  26. A classifier based on accurate mass measurements to aid large scale, unbiased glycoproteomics. Mol Cell Proteomics. 2013 Apr; 12(4):1017-25. View Abstract
  27. PNGase F catalyzes de-N-glycosylation in a domestic microwave. Anal Biochem. 2012 Aug 01; 427(1):33-5. View Abstract
  28. Glycosylation of human milk lactoferrin exhibits dynamic changes during early lactation enhancing its role in pathogenic bacteria-host interactions. Mol Cell Proteomics. 2012 Jun; 11(6):M111.015248. View Abstract
  29. Nano-LC-MS/MS of glycopeptides produced by nonspecific proteolysis enables rapid and extensive site-specific glycosylation determination. Anal Chem. 2011 Jul 15; 83(14):5541-7. View Abstract
  30. Label-free liquid chromatography-tandem mass spectrometry analysis with automated phosphopeptide enrichment reveals dynamic human milk protein phosphorylation during lactation. Anal Biochem. 2011 Jan 01; 408(1):136-46. View Abstract
  31. Glycoprotein expression in human milk during lactation. J Agric Food Chem. 2010 May 26; 58(10):6440-8. View Abstract
  32. Determination of glycosylation sites and site-specific heterogeneity in glycoproteins. Curr Opin Chem Biol. 2009 Oct; 13(4):421-6. View Abstract
  33. Proteomic study of the Arabidopsis thaliana chloroplastic envelope membrane utilizing alternatives to traditional two-dimensional electrophoresis. J Proteome Res. 2003 Jul-Aug; 2(4):413-25. View Abstract

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