Copyright: ©Author(s) 2026.
World J Exp Med. Sep 20, 2026; 16(3): 126036
Published online Sep 20, 2026. doi: 10.5493/wjem.126036
Published online Sep 20, 2026. doi: 10.5493/wjem.126036
Table 1 Standardized terminology and reporting conventions for corneal confocal microscopy nerve metrics
| Metric | Abbreviation | Standardized definition | Unit | Reporting convention |
| Corneal nerve fiber density | CNFD | Number of main nerve fibers within the analyzed corneal area | fibers/mm2 | Main nerve trunks should be distinguished from secondary branches |
| Corneal nerve branch density | CNBD | Number of primary branches arising from the main nerve fibers within the analyzed area | branches/mm² | Only branches originating directly from main nerve fibers are counted |
| Corneal total branch density | CTBD | Total number of branch points within the analyzed area, including primary and higher-order branching | branch points/mm² | The branch-order convention and analysis software should be reported |
| Corneal nerve fiber length | CNFL | Cumulative length of all visible main nerve fibers and branches divided by the analyzed area | mm/mm2 | The analyzed area, anatomical location, and analysis method should be specified |
| Corneal nerve fiber tortuosity | CNFT | Degree to which the course of a nerve fiber deviates from a straight path | Unitless coefficient, software-specific index, or ordinal grade | The calculation algorithm, grading method, and software should be specified |
| Inferior whorl length | IWL | Cumulative length of visible nerve fibers and branches within the defined inferior-whorl region divided by the analyzed area | mm/mm2 | The location and dimensions of the inferior-whorl region of interest should be reported |
Table 2 Representative quantitative evidence and patient-level diagnostic performance of corneal confocal microscopy
| Clinical setting | Representative evidence | Sample size | Reference standard/comparator | Key quantitative findings | Diagnostic performance and interpretation |
| Impaired glucose tolerance/prediabetes[1] | 3-year longitudinal cohort | 30 participants with IGT + 17 controls; 10 progressed to T2D, 15 remained with IGT, and 5 reverted to normal glucose tolerance | 3-year glycemic trajectory (progression to T2D, persistent IGT, or reversion to normoglycemia); healthy controls | Progressors showed lower baseline CNFD (20.0 ± 2.2 fibers/mm2 vs 30.7 ± 1.5 fibers/mm2), CNBD (25.6 ± 5.2 branches/mm2 vs 37.0 ± 2.7 branches/mm2), and CNFL (13.7 ± 1.2 mm/mm2 vs 20.4 ± 3.2 mm/mm2) than controls | Exploratory association with metabolic trajectory. No externally validated prediction model or neuropathy-specific prognostic threshold was developed |
| Diabetic peripheral neuropathy[5] | Systematic review and meta-analysis | 38 studies; approximately 4000 participants | Study-specific clinical and/or neurophysiological definitions of DPN across included studies | CNFL was lower in established neuropathy than in diabetes without clinically established neuropathy by a pooled MD of -3.08 mm/mm2 (95%CI: | Strong evidence for group-level differences, but the meta-analysis did not establish a pooled patient-level diagnostic threshold |
| Diabetic sensorimotor polyneuropathy[48] | Pooled multinational multicenter cross-sectional study | 998 participants with diabetes: 516 with type 1 diabetes and 482 with type 2 diabetes | Toronto consensus criteria incorporating lower-limb electrophysiological abnormality | Automated CNFL showed an AUC of 0.77 in type 1 diabetes and 0.68 in type 2 diabetes | For the overall cohort, a CNFL threshold of 12.3 mm/mm2 yielded AUC 0.71, sensitivity 67%, specificity 66%, PPV 59%, and NPV 74%. A lower threshold of 8.6 mm/mm2 provided 88% specificity, whereas CNFL > 15.3 mm/mm2 provided 88% sensitivity for exclusion. A substantial intermediate range remained unclassified |
| Predominantly mild/recent type 2 diabetic polyneuropathy[47] | Comparative cohort | 374 participants: 214 with DPN, 63 with diabetes without DPN, and 97 controls | Toronto criteria for DPN; IENFD and thermal thresholds were not included in the DPN case definition | CNFL was significantly lower in patients with DPN than in participants without DPN and controls | AUC 0.55, sensitivity 14.4%, and specificity 95.7%. IENFD showed higher sensitivity (51.1%). These findings demonstrate that significant group-level differences do not necessarily translate into useful individual screening performance |
| Small- or mixed-fiber neuropathy[51] | Prospective unselected neurological cohort | 680 patients assessed; 244 with small- or mixed-fiber neuropathy were included in the primary sensitivity analysis, and 179 patients with established alternative diagnoses were used for specificity calculations | Predefined clinical criteria for SFN/MFN; comparison with IENFD and cold-detection threshold | Limited concordance was observed between CCM and skin biopsy. Among the 244 affected patients, only 41 were abnormal on both tests, whereas 66 had abnormal CCM alone and 63 had abnormal skin biopsy alone | CCM sensitivity 44% (95%CI: 38%-51%), specificity 75% (95%CI: 69%-81%), and AUC 0.63. Skin biopsy showed sensitivity 43%, specificity 99%, and AUC 0.74. CCM therefore cannot be considered a direct substitute for skin biopsy |
| Parkinson’s disease with autonomic involvement[8] | Cross-sectional phenotyping study | 71 patients with PD and 30 healthy controls: 14 without autonomic symptoms, 14 with single-domain autonomic involvement, and 43 with multiple-domain autonomic involvement | SCOPA-AUT autonomic-domain classification; healthy controls | CNFD decreased from 30.88 ± 2.42 fibers/mm2 in patients without autonomic symptoms to 23.63 ± 3.93 fibers/mm2 in those with multiple-domain autonomic involvement. CNFL decreased from 17.54 ± 2.03 mm/mm2 to 12.85 ± 2.55 mm/mm2 | The combination of CNFD, CNBD, and CNFL yielded an AUC of 0.872 for distinguishing single-domain autonomic involvement from no autonomic involvement (n = 14 vs n = 14; sensitivity 85.7%, specificity 92.9%) and an AUC of 0.915 for distinguishing multiple-domain from single-domain autonomic involvement (n = 43 vs n = 14; sensitivity 79.1%, specificity 92.9%). These values represent cross-sectional phenotype discrimination rather than diagnosis of Parkinson’s disease or prediction of future progression |
| Chemotherapy-induced peripheral neuropathy[11] | Prospective longitudinal study | 95 patients recruited; 73 included in the post-treatment analysis, 32 completed paired clinical Total Neuropathy Score assessments, and 14 underwent paired skin-biopsy and CCM assessment | Longitudinal clinical Total Neuropathy Score; paired skin biopsy available in a subgroup | Longitudinal reductions in corneal nerve density and density-to-tortuosity measures were reported following neurotoxic chemotherapy, whereas CNFL did not uniformly decrease | No validated disease-specific AUC, sensitivity/specificity threshold, or diagnostic cutoff is currently available. Findings support potential sensitivity to longitudinal treatment-related nerve changes but remain exploratory |
Table 3 Strengths, current limitations, and future priorities in corneal nerve imaging
| Domain | Strengths | Current limitations | Future priorities |
| Imaging technique[18,39,40] | Rapid, noninvasive, and repeatable visualization of the corneal subbasal nerve plexus | Requires dedicated equipment and trained operators; image quality may be affected by focus, illumination, motion, tissue compression, and limited sampling area | Wider access to the technique; standardized operator training, acquisition protocols, image-quality criteria, and anatomical sampling strategies |
| Biological significance[24,25,29,30] | Direct quantitative evaluation of small sensory nerve fibers in an easily accessible tissue | Corneal nerve abnormalities are not disease-specific and similar morphometric changes may occur across different systemic, neurological, and ocular conditions | Interpretation of CCM findings within the appropriate systemic, neurological, and ocular clinical context |
| Quantitative analysis[15,21,22,39,45] | Objective morphometric assessment of CNFL, CNFD, CNBD, CTBD, IWL, and other structural nerve parameters | Considerable heterogeneity in devices, sampling strategies, image-selection procedures, parameter definitions, and manual, semiautomated, or automated analysis methods | Harmonization of acquisition, sampling, parameter definitions, image selection, analysis software, and reporting standards |
| Clinical utility[5,47,48,51] | Potential role in detecting subclinical small-fiber abnormalities, longitudinal follow-up, patient phenotyping, and assessment of nerve regeneration | Group-level differences do not necessarily translate into accurate classification of individual patients; correlations with neuropathy severity and established reference tests are variable | Prospective multicenter diagnostic-accuracy and longitudinal studies using prespecified thresholds, representative populations, and clinically meaningful patient-level outcomes |
| Relationship with established tests[47,50,51] | May provide complementary structural information alongside clinical examination, quantitative sensory testing, neurophysiological assessment, and skin biopsy | Agreement with skin biopsy and functional small-fiber assessments is incomplete; CCM may capture partially overlapping but distinct aspects of nerve injury and cannot currently replace established diagnostic tests | Define the incremental clinical value of CCM and its optimal position within multimodal and multidisciplinary diagnostic pathways |
| Ocular confounding factors[24,25,52-55] | Ocular history, slit-lamp examination, and ocular-surface assessment allow many local modifiers of corneal nerve morphology to be identified | Dry eye disease, primary corneal disease, contact lens-related changes, previous ocular surgery, corneal trauma or infection, and topical treatments may independently alter CCM measurements and confound attribution to systemic neuropathy | Prespecified ocular eligibility criteria; standardized ocular-surface assessment; documentation of contact lens use and previous ocular procedures; exclusion of major active corneal disease when appropriate; and stratified, adjusted, or sensitivity analyses for relevant ocular confounders |
| Automation and artificial intelligence[16,17,41,46,56,57] | Faster image analysis, reduced dependence on manual quantification, improved repeatability, and encouraging diagnostic-classification performance | Current evidence is derived largely from selected datasets; limited cross-device and multicenter validation, potential patient-level data leakage, class imbalance, domain shift, insufficient calibration, and limited model interpretability restrict clinical generalizability | Participant-level data separation; multicenter and cross-device external validation; diverse populations; transparent reporting; calibration and uncertainty estimation; interpretable outputs; and demonstration of incremental clinical value beyond conventional CCM morphometry |
| Reference standards and diagnostic thresholds[20,47,48,51] | Growing availability of normative datasets and quantitative reference values for major CCM parameters | Diagnostic thresholds remain insufficiently validated for broad patient-level clinical use and may vary according to population, device, anatomical region, analytical method, and reference standard | Expansion of representative normative datasets and prospective validation of clinically meaningful, device- and population-appropriate thresholds |
- Citation: Capobianco M, Cappellani F, Enaholo E, Zeppieri M. Corneal nerve imaging in systemic neuropathy: A minireview of experimental and precision medicine applications. World J Exp Med 2026; 16(3): 126036
- URL: https://www.wjgnet.com/2220-315x/full/v16/i3/126036.htm
- DOI: https://dx.doi.org/10.5493/wjem.126036