Related Experiment Video
Updated: Aug 8, 2025

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Analysis of urine Raman spectra differences from patients with diabetes mellitus and renal pathologies
Varun Kavuru1,2, Ryan S Senger3,4, John L Robertson4,5
1Virginia Tech Carilion School of Medicine, Roanoke, VA, United States.
Insights
Raman spectroscopy of urine can non-invasively differentiate between diabetic kidney disease (DKD) and other kidney diseases. This novel method shows promise for diagnosing various glomerular pathologies, aiding in better patient management.
Area of Science:
- Nephrology
- Analytical Chemistry
- Spectroscopy
Background:
- Chronic kidney disease (CKD) is a significant public health issue, with diabetes mellitus (DM) being a primary cause.
- Distinguishing diabetic kidney disease (DKD) from other glomerular damage in diabetic patients is clinically challenging.
- Renal biopsy is definitive but invasive; non-invasive methods are needed for diagnosis.
Purpose of the Study:
- To evaluate Raman spectroscopy and chemometric modeling as a non-invasive method for differentiating renal pathologies in CKD patients.
- To assess the diagnostic accuracy of this technique for diabetic kidney disease (DKD) and immune-mediated nephropathy (IMN).
Main Methods:
- Urine samples from CKD patients (diabetic and non-diabetic) and healthy volunteers were analyzed using Raman spectroscopy.
- Statistical and chemometric modeling, including the ISREA algorithm and leave-one-out cross-validation, was applied.
- The model's predictive capabilities were assessed for distinguishing between various kidney diseases.
Main Results:
- Raman spectroscopy differentiated DKD from immune-mediated nephropathy (IMN) with 82% accuracy.
- Renal neoplasia and membranous nephropathy were identified with high accuracy (100% and 66.7%-96.4%, respectively).
- DKD was identified with 36.4% sensitivity and 97.8% specificity among a mixed population; IMN was identified with high accuracy in both diabetic and non-diabetic patients.
Conclusions:
- Raman spectroscopy of urine combined with chemometric analysis shows potential for differentiating DKD, IMN, and other glomerular diseases.
- This non-invasive approach may offer a valuable alternative to renal biopsy for diagnosing kidney pathologies.
- Further research is needed to refine the method for various CKD stages and comorbidities.
Background:
Chronic kidney disease (CKD) poses a major public health burden. Diabetes mellitus (DM) is one of the major causes of CKD. In patients with DM, it can be difficult to differentiate diabetic kidney disease (DKD) from other causes of glomerular damage; it should not be assumed that all DM patients with decreased eGFR and/or proteinuria have DKD. Renal biopsy is the standard for definitive diagnosis, but other less invasive methods may provide clinical benefit. As previously reported, Raman spectroscopy of CKD patient urine with statistical and chemometric modeling may provide a novel, non-invasive methodology for discriminating between renal pathologies.
Methods:
Urine samples were collected from renal biopsied and non-biopsied patients presenting with CKD secondary to DM and non-diabetic kidney disease. Samples were analyzed by Raman spectroscopy, baselined with the ISREA algorithm, and subjected to chemometric modeling. Leave-one-out cross-validation was used to assess the predictive capabilities of the model.
Results:
This proof-of-concept study consisted of 263 samples, including renal biopsied, non-biopsied diabetic and non-diabetic CKD patients, healthy volunteers, and the Surine™ urinalysis control. Urine samples of DKD patients and those with immune-mediated nephropathy (IMN) were distinguished from one another with 82% sensitivity, specificity, positive-predictive value (PPV), and negative-predictive value (NPV). Among urine samples from all biopsied CKD patients, renal neoplasia was identified in urine with 100% sensitivity, specificity, PPV, and NPV, and membranous nephropathy was identified with 66.7% sensitivity, 96.4% specificity, 80.0% PPV, and 93.1% NPV. Finally, DKD was identified among a population of 150 patient urine samples containing biopsy-confirmed DKD, other biopsy-confirmed glomerular pathologies, un-biopsied non-diabetic CKD patients (no DKD), healthy volunteers, and Surine™ with 36.4% sensitivity, 97.8% specificity, 57.1% PPV, and 95.1% NPV. The model was used to screen un-biopsied diabetic CKD patients and identified DKD in more than 8% of this population. IMN in diabetic patients was identified among a similarly sized and diverse population with 83.3% sensitivity, 97.7% specificity, 62.5% PPV, and 99.2% NPV. Finally, IMN in non-diabetic patients was identified with 50.0% sensitivity, 99.4% specificity, 75.0% PPV, and 98.3% NPV.
Conclusions:
Raman spectroscopy of urine with chemometric analysis may be able to differentiate between DKD, IMN, and other glomerular diseases. Future work will further characterize CKD stages and glomerular pathology, while assessing and controlling for differences in factors such as comorbidities, disease severity, and other lab parameters.
Related Concept Videos
Urine Studies I: Urinalysis
Raman Spectroscopy: Overview
However, a small fraction of the scattered light exhibits a frequency shift due to the exchange of energy between the incident photons and...
Raman Spectroscopy Instrumentation: Overview
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
Serum Studies: Renal Function Tests
Renal Corpuscle
Glomerulus: Structure and Function
The glomerulus is a tiny, intricate network of capillaries located at the beginning of the nephron. It's enveloped by the Bowman's capsule and receives its blood supply from an afferent arteriole, which divides into numerous...
Nephrotic Syndrome II : Assessment and Medical Management

