Semiology: reading a corneal ulcer
Location
- Central or paracentral ulcer → first consider a trophic cause, an iatrogenic cause, an infection, or inflammation.
- Peripheral ulcer → first consider an inflammatory cause (peripheral ulcerative keratitis), more rarely infectious.
This dichotomy relates to vascularization and innervation: the periphery is close to the limbal vessels and immune cells; the center is the most densely innervated territory and the most dependent on the tear film.
Shape of the floor and edges
- Gently sloping, harmonious ulcer, with smooth rounded edges and an edema halo → neurotrophic profile. Tissue loss is progressive and regular.
- Ulcer that is deep from the outset, punched-out, excavated → keratolysis: iatrogenic causes (aminoglycosides, fluoroquinolones, NSAIDs), immunologic cause, lytic infection. The stroma is digested faster than it is denuded.
The sign to actively look for: edge hyperplasia
A chronic neurotrophic ulcer typically shows hyperplastic epithelial edges — raised, gray, detached, overhanging a bare floor — to be distinguished from the normal migrating front, which is thin and translucent.
The mechanism is instructive: in a setting of inflammation, iatrogenic injury or neurotrophic keratitis, the epithelium undergoes premature stratification — the balance shifts toward proliferation/stratification > migration, driven by IL-1, MMP-9 and TGF-β. Cells stack up at the edge instead of advancing. The permissive role of MMP-9 is well established (Mohan et al., JBC 2001: MMP-9-deficient mice develop epithelial hyperplasia; Gabison et al., Ophthalmology 2005).
These edges must be debrided. Debridement removes the non-adherent epithelium and "resets" the migrating front; it is often the gesture that unblocks an ulcer that has been stagnant for weeks. In the series, it was performed in 5 eyes (1.4%) — a figure that likely reflects under-use rather than a rarity of the indication.
Two other useful semiological clues: fluorescein seeping under the edges points toward active herpetic keratitis; whorl (vortex) keratopathy signals disorganized epithelial hyperplasia, frequent after keratoplasty for herpes under corticosteroids and aminoglycosides.
Etiologies: look for one, and often find several
Any lesion of V1, from the trigeminal nucleus to the corneal nerve endings, can produce NK. In the series (354 eyes), the cause was multifactorial in 34.2% of cases and idiopathic in 8.2% — finding one cause therefore never exempts from looking for a second.
Ocular causes
- Herpetic disease — 114 eyes, 32.2% (HSV 91, i.e. 25.7%; VZV 23, i.e. 6.5%): the leading etiology, combining direct nerve destruction and recurrent inflammation. Classic pitfall: "herpetic keratitis that fails to heal despite well-conducted antiviral treatment" has very often become a post-herpetic NK, perpetuated by the topical antiviral itself — hence the value of a therapeutic window, spectacular when indicated (absence of stromal inflammation, marked hypoesthesia).
- Iatrogenic causes — 113 eyes, 31.9%, broken down into three families:
- Surgical: vitrectomy with endolaser 36 eyes (10.2%), multiple ocular surgeries 18 (5.1%), penetrating or lamellar keratoplasty 17 (4.8%) — which severs the stromal nerves —, sequelae of radiotherapy 16 (4.5%), refractive surgery 6 (1.7%), panretinal photocoagulation 4 (1.1%). After retinal detachment surgery, contributing factors add up: limbal peritomy, scleral buckle, intraoperative deepithelialization, postoperative iatrogenic injury, associated diabetes. After LASIK, one must distinguish dryness extending beyond the flap from SPK strictly confined to the flap, which is neurotrophic.
- Local drug-induced — 39 eyes (11.0%): anti-glaucoma drugs 14 (4%), antibiotics 14 (4%), NSAIDs 9 (2.5%), topical anesthetics 2 (0.6%); with preservatives, topical antivirals and prolonged fortified eye drops adding to the burden.
- Systemic drug-induced: neurotoxic chemotherapy 11 eyes (3.1%); also worth knowing, EGFR inhibitors (erlotinib, panitumumab), responsible for multiple epithelial defects, melting and perforations (Saint-Jean et al., Ophthalmology 2012).
- Chronic ocular surface disease — 62 eyes, 17.5%: severe blepharitis and rosacea 38 (10.7%), entropion 9 (2.5%), trauma and chemical burns 9 (2.5%), GVHD 4 (1.1%), Sjögren's syndrome 3 (0.8%), trachoma 3 (0.8%), cicatricial pemphigoid 2 (0.6%).
Systemic causes
- Central nervous system disease — 98 eyes, 27.7%: intracerebral tumors and/or their surgeries 62 (17.5%), stroke 13 (3.7%), hemorrhage or arteriovenous malformation 9 (2.5%), V1 injury during brain surgery 6 (1.7%), trigeminal thermocoagulation 3 (0.8%), carotid-cavernous fistula 3 (0.8%), multiple sclerosis 2, leukodystrophy 2, brain infection 2, degenerative or infiltrative disease 2, neurofibromatoses, tuberous sclerosis, MEN IIB, Guillain-Barré syndrome. This high proportion partly reflects the referral pattern of a center that is also a reference site for neurology and neuroradiology.
- Diabetes — 37 eyes, 10.5% (including 25, i.e. 7.1%, without vitrectomy or panretinal photocoagulation): diabetic corneal neuropathy, largely under-diagnosed.
- Rare — 9 eyes (2.5%): severe alcoholism or B12 deficiency (3), Acanthamoeba sequelae (2), leprosy (2), vitamin A deficiency (1), Goldenhar syndrome (1).
Bilateral forms (19 patients, 5.7%): multifactorial 7, idiopathic 3; dominant etiologies iatrogenic (36.8%), chronic surface disease (26.3%), herpes (21.1%), central origin or diabetes (15.8% each).
They combine several mechanisms: they anesthetize the cornea, delay healing and induce MMPs. Risk factors for keratolysis under NSAIDs: at-risk background (immunologic disease, corneal hypoesthesia, diabetes, dry eye syndrome), triggering factor (surgery, cataract surgery foremost), inappropriate treatment (overdosing, excessive duration), contact lens wear. All NSAIDs are implicated.
(Para)central aseptic keratolysis without hypoesthesia should prompt a search for severe dry eye disease: Sjögren's syndrome, GVHD, ongoing chemotherapy.
Mackie classification, epidemiology and prognosis
The three stages
- Stage I — superficial epithelial alterations: superficial punctate keratitis, dull and irregular epithelium, epithelial edema, sometimes hyperplasia and superficial neovascularization.
- Stage II — epithelial erosion without stromal thinning: oval or circular defect, recurrent or persistent, smooth edges often hyperplastic, stromal edema halo.
- Stage III — ulceration with stromal thinning: melting, descemetocele, risk of perforation.
(Mackie IA. Neuroparalytic keratitis. WB Saunders, 1995.)
The reference series
Single-center retrospective study, Fondation Adolphe de Rothschild, November 2009 – October 2017: 305,351 consultations screened, 392 records identified, 335 patients / 354 eyes included (57 patients excluded, 14.5%).
| Parameter | Value |
|---|---|
| Frequency | 11/10,000 patients (0.11%) |
| Mean age | 63.1 ± 21.0 years (6-101) |
| Sex | 49.6% men / 50.4% women |
| Bilaterality | 19 patients (5.7%) |
| Stage I | 122 eyes (34.5%) — of which 6/122 progressed to stage II |
| Stage II | 108 eyes (30.5%) — of which 12/108 progressed to stage III |
| Stage III | 115 eyes (32.5%) |
| Pre-perforated or perforated | 14 eyes (4%) |
| Not stageable | 9 eyes (2.5%) |
| Initial acuity (CDVA) | 0.61 ± 0.49 LogMAR |
| Lost to follow-up | 45 patients / 47 eyes (13.3%) → analysis on 307 eyes |
The observed frequency is roughly seven times higher than the classic estimate of 1.6/10,000, which had only been extrapolated from a few associated conditions (6% of herpetic keratitis, 12.8% of ophthalmic zoster, 2.8% of trigeminal neuralgia surgeries).
Only 220 eyes (62.1%) were diagnosed at the first consultation; the others were diagnosed after a mean delay of 38.8 days (95% CI: 29.6-48.0). 58 eyes (16.4%) were wrongly given fortified antibiotics for a "corneal abscess," subsequently stopped; only 23 eyes (6.5%) had documented bacterial superinfection.
Visual outcomes and prognostic factors
Mean CDVA improved significantly from 0.61 ± 0.49 to 0.38 ± 0.49 LogMAR, a mean gain of 0.19 ± 0.34 — almost two ETDRS lines.
| Stage | Initial CDVA | Final CDVA | Gain |
|---|---|---|---|
| I | 0.44 ± 0.41 | 0.35 ± 0.37 | 0.09 ± 0.25 |
| II | 0.70 ± 0.43 | 0.45 ± 0.36 | 0.25 ± 0.42 |
| III | 0.89 ± 0.29 | 0.55 ± 0.38 | 0.44 ± 0.34 |
Reading this table: the greatest visual gain concerns the advanced stages — because they start from a lower baseline — but their final acuity remains significantly worse. Treating a stage III aggressively recovers a lot; treating a stage I early avoids having to do so.
Overall, CDVA improved in 104 eyes (45%), remained stable in 75 (33%) and worsened in 50 (22%). Eyes at "counting fingers or worse" went from 121 (34.2%) to 97 (27.4%).
Three factors are significantly correlated with final CDVA (Spearman): initial acuity (r = 0.66; p < 0.001), initial Mackie stage (r = 0.24; p = 0.002), age (r = 0.24; p = 0.003).
Not correlated: etiology (herpes, VZV, iatrogenic, central causes, surface disease, diabetes, unknown cause), lagophthalmos, and — notably — diagnostic delay (neither in days nor in number of visits). This last absence of correlation does not mean that delay is unimportant: the authors explain it by the rapid initiation of appropriate treatment despite missed initial diagnoses (most often stage I), by short times to presentation and close monitoring, and by the early discontinuation of wrongly prescribed antibiotics.
The stage I paradox
A counter-intuitive and pedagogically valuable finding:
| Stage I | Stages II & III | |
|---|---|---|
| Healed eyes | 56 | 188 (90.4%) |
| Consultations (mean) | 9.9 (CI 7.1-12.6) | 16.9 (CI 14.6-19.1) |
| Mean healing time | 77.8 days | 35.0 days |
| Healing > 14 days | 79% | 60% |
| Healing < 7 days | 7% | 13% |
Healing time is significantly longer at stage I than at stages II-III (p < 0.001). The explanation is not biological but therapeutic: stages II-III benefit from active, effective interventions (amniotic membrane, RGTA), whereas stage I has only slow, poorly performing treatments available. The slowness of stage I must therefore never be mistaken for benignity — it is, on the contrary, the stage where time is lost.
Overall figures: healing rate 79.5%, mean delay 44.8 days; 87.9% healing at 5 weeks for stages II-III — to be compared with the 13.7% at 4 weeks and 33.3% at 8 weeks of the untreated stages II-III of Bonini et al.'s vehicle arm. Mean follow-up 21.4 months (CI 13.7-29.1), 15.0 consultations per patient on average, 73 patients hospitalized (21.8%) for a mean duration of 11.5 days (median 7). Recurrences: 70 eyes, on average 1.5 recurrence per eye.
NK must be regarded as a diagnostic and therapeutic emergency.
Glossary of abbreviations used in this course
Scientific abbreviations and acronyms used throughout the 10 pages of this course, listed alphabetically.
No matching term.
- 95% CI
- 95% confidence interval
- AAV
- adeno-associated virus (gene-therapy viral vector)
- ABCG2
- ABCG2 transporter, a limbal stem-cell marker
- AMT
- amniotic membrane transplantation
- anti-VEGF
- anti-angiogenic treatment targeting VEGF
- ASC
- inflammasome adaptor protein (Apoptosis-associated Speck-like protein containing a CARD)
- BrdU
- bromodeoxyuridine, a cell-proliferation marker
- CCL2
- CCL2 chemokine, synonym of MCP-1; recruits circulating monocytes
- CCR2
- receptor for CCL2; marker of newly recruited monocytes/macrophages
- CD147
- cluster of differentiation 147; synonym of EMMPRIN and basigin
- CD163
- M2 macrophage marker; scavenger receptor for haemoglobin-haptoglobin
- CD206
- mannose receptor; marker of M2 polarization
- CD74
- cell-surface receptor for MIF
- CDVA
- corrected distance visual acuity
- CGRP
- calcitonin gene-related peptide
- CTGF
- connective tissue growth factor
- CX3CL1
- fractalkine, a chemokine involved in monocyte/macrophage recruitment
- CXCR2/CXCR4
- chemokine receptors, also receptors for MIF
- DAMP
- damage-associated molecular pattern
- DESI
- direct epithelial–stromal interaction
- EGF
- epidermal growth factor
- EGFR
- epidermal growth factor receptor
- EMMPRIN
- extracellular matrix metalloproteinase inducer; synonym of CD147
- ETDRS
- reference visual-acuity scale used in clinical research (Early Treatment Diabetic Retinopathy Study)
- FasL
- Fas ligand, an apoptosis-inducing protein
- FISH
- fluorescence in situ hybridisation
- GAG
- glycosaminoglycan(s)
- GM-CSF
- granulocyte-macrophage colony-stimulating factor
- GVHD
- graft-versus-host disease
- HGF
- hepatocyte growth factor
- HIF-3α
- hypoxia-inducible factor, 3-alpha subunit
- HMGB1
- high mobility group box 1, an alarmin released by injured cells (DAMP)
- IFN-γ
- interferon gamma
- IGF-1
- insulin-like growth factor 1
- IL-1
- interleukin-1
- iNOS
- inducible nitric oxide synthase
- IPAS
- inhibitory PAS domain protein
- KGF
- keratinocyte growth factor
- LASIK
- laser-assisted in situ keratomileusis
- LogMAR
- logarithmic visual-acuity scale
- LOX
- lysyl oxidase, a collagen cross-linking enzyme
- LPS
- bacterial lipopolysaccharide
- M1
- classically activated macrophage, pro-inflammatory profile
- M2
- alternatively activated macrophage, pro-resolving/reparative profile (subtypes M2a-M2d, M2eff)
- MEN2B
- multiple endocrine neoplasia type 2B
- MerTK
- receptor tyrosine kinase involved in efferocytosis
- MIF
- macrophage migration inhibitory factor
- MRI
- magnetic resonance imaging
- NGF
- nerve growth factor
- NK
- neurotrophic keratitis
- NLRP3
- NLRP3 inflammasome (NOD-, LRP- and pyrin domain-containing protein 3)
- NO
- nitric oxide
- NSAID
- nonsteroidal anti-inflammatory drug
- PACAP
- pituitary adenylate cyclase-activating polypeptide
- PAF
- platelet-activating factor
- PAMP
- pathogen-associated molecular pattern
- PDGF
- platelet-derived growth factor
- PED
- persistent epithelial defect
- PEDF
- pigment epithelium-derived factor
- PGE₂
- prostaglandin E2
- PRK
- photorefractive keratectomy (laser surface ablation)
- pro-NGF
- precursor form of NGF
- RGTA
- matrix-therapy ReGeneraTing Agent, e.g. Cacicol
- rhNGF
- recombinant human NGF (cenegermin)
- ROS
- reactive oxygen species
- Smad
- signalling proteins of the TGF-β pathway
- SPK
- superficial punctate keratitis
- sVEGFR-1
- soluble form of VEGF receptor-1 (= sFlt-1)
- sVEGFR-3
- soluble form of VEGF receptor-3
- TGF-β
- transforming growth factor beta
- TIMP
- tissue inhibitor of metalloproteinases
- TLR
- Toll-like receptor
- TNF-α
- tumour necrosis factor alpha
- TRPV4
- transient receptor potential vanilloid 4, a mechanosensitive ion channel
- uPA
- urokinase-type plasminogen activator
- V1
- ophthalmic branch of the trigeminal nerve
- VEGF
- vascular endothelial growth factor
- VEGF-C
- lymphangiogenic isoform of VEGF
- VIP
- vasoactive intestinal peptide
- YAP/TAZ
- Hippo pathway effectors, mechanosensors of matrix stiffness
- α-SMA
- alpha-smooth muscle actin, a myofibroblast marker