Retina Companion Note

Tractional Retinal Detachment

Mechanism, morphology, macular assessment and management principles

Tractional retinal detachment occurs when pathological tissue at the vitreoretinal interface contracts and mechanically pulls the neurosensory retina away from the retinal pigment epithelium. This companion note explains how to recognise pure TRD, identify an added rhegmatogenous component and decide when intervention is required.

Pure versus combined TRD Macular relationship Clinical imaging Management decisions Vitrectomy principles

Three Mechanisms of Retinal Detachment

A retinal detachment is a separation of the neurosensory retina from the underlying retinal pigment epithelium. The mechanism determines the basic clinical problem and guides management.

Swipe horizontally to view the full table.

Mechanism Primary problem Core sequence
Rhegmatogenous RD A full-thickness retinal break allows fluid to enter the subretinal space. Break → subretinal fluid → detachment
Tractional RD Pathological tissue mechanically pulls the retina away from the RPE. Traction → retinal elevation
Exudative or Serous RD Fluid accumulates beneath the retina because of another underlying disease process. Underlying disease → subretinal fluid

These mechanisms may coexist. A pure TRD may develop a retinal break and become a combined TRD/RRD.

Advertisement

What Is a Pure TRD?

A tractional retinal detachment occurs when pathological tissue at the vitreoretinal interface contracts and mechanically pulls the neurosensory retina away from the retinal pigment epithelium.

A pure tractional retinal detachment is the mechanical separation of the neurosensory retina from the RPE by pathological vitreoretinal traction, without a causative full-thickness retinal break. [1]

The word causative is important. A retinal break may develop in an eye that already has traction. Once the break contributes to the detachment, the mechanism becomes a combined TRD/RRD.

Traction does not always produce a true retinal detachment. It may cause retinal wrinkling, fixed folds, vascular displacement or macular distortion without creating a subretinal space.

Do Not Confuse

Tractional retinoschisis and true TRD

  • Tractional retinoschisis The separation occurs within the retinal layers.
  • True tractional retinal detachment The full neurosensory retina separates from the RPE, creating a subretinal space.
  • The two findings are not obligatory sequential stages. They may occur independently or coexist in the same eye. [4] [5]

How Traction Develops

Proliferative diabetic retinopathy provides the clearest clinical model. The process begins with retinal ischaemia and ends when contracting fibrovascular tissue pulls the retina away from the RPE.

1

Retinal ischaemia drives proliferation

Extensive retinal non-perfusion promotes neovascularisation. The new vessels grow with fibrous tissue, producing fibrovascular proliferation at the vitreoretinal interface.

2

The posterior vitreous provides a scaffold

The posterior cortical vitreous, or posterior hyaloid, provides an important surface along which neovascular and fibrovascular tissue can grow.

3

Fibrovascular tissue contracts

As the proliferative tissue matures, its fibrous component contracts. Because it remains attached to the retina, this contraction transmits force directly to the retinal surface. [1] [3]

Anteroposterior traction

Persistent vitreoretinal attachments pull the retina anteriorly at fixed points of fibrovascular adhesion.

Tangential traction

Membranes contract along the retinal surface, producing folds, puckering, vascular displacement and macular distortion.

Sequence to remember

Retinal ischaemia → neovascular and fibrovascular proliferation → growth along the vitreoretinal interface → fibrosis and contraction → retinal distortion or detachment

Clinical Pearl

TRD is the final mechanical result of contracting tissue that remains attached to the retina.

Advertisement

Causes of Tractional Retinal Detachment

TRD is a mechanism rather than a single disease. Different disorders can produce contracting tissue at the vitreoretinal interface and ultimately pull the retina away from the RPE.

Adults

  • Proliferative diabetic retinopathy
  • Proliferative sickle-cell retinopathy
  • Eales disease
  • Rarely, severe ischaemic retinal-vein occlusion
  • PVR-associated complex or mixed retinal detachment

Children

  • Retinopathy of prematurity
  • Familial exudative vitreoretinopathy
  • Persistent fetal vasculature

PVR is a different fibrotic pathway

Proliferative vitreoretinopathy is an abnormal wound-healing response, usually associated with retinal breaks, retinal surgery or trauma. It commonly produces fixed folds, retinal shortening and mixed tractional-rhegmatogenous disease. [1] [2]

Important

PDR is the most common cause of tractional retinal detachment in adults.

Advertisement

What Traction Does to the Retina

In a classical pure TRD, the retina remains fixed at points of strong vitreoretinal or fibrovascular attachment. It therefore does not usually rise as one freely mobile sheet.

Tethered elevation

The retina is held at fixed tractional attachment points rather than being lifted only by freely spreading subretinal fluid.

Tented or peaked contour

The retinal elevation may be most pronounced at the sites of strongest vitreoretinal adhesion.

Relatively concave shape

The retina is often concave between fixed traction points, unlike the more freely convex or bullous configuration of many rhegmatogenous detachments.

Reduced mobility

The detached retina is usually less mobile because it remains tethered by fibrovascular membranes.

Surface distortion

Tangential contraction may produce fixed folds, retinal puckering, vascular straightening or displacement and macular distortion.

Fibrovascular tissue may be visible as membranes, bands or plaques. When the posterior pole is involved, the patient may develop metamorphopsia even before the fovea becomes detached. [3] [4]

These are characteristic findings, not absolute rules. A TRD is often relatively concave and less mobile, but neither feature is compulsory for the diagnosis.

Wisdom Pearl

A pure TRD is shaped by its fixed tractional attachment points.

Advertisement

Relationship to the Macula

The relationship of a TRD to the macula is one of the most important factors guiding observation, imaging and surgery.

Extramacular TRD

The detachment does not involve the fovea. A stable extramacular TRD may sometimes be observed with reliable follow-up.

Macula-threatening TRD

The tractional elevation is approaching or progressing toward the macula and places central vision at risk.

Macula-involving TRD

The foveal neurosensory retina is detached from the RPE.

No universal distance cutoff

There is no single numerical distance that defines a macula-threatening TRD. Assessment depends on the configuration, direction of progression and comparison with previous examination or imaging. [7]

Important

Classify the retinal anatomy, not the visual acuity. Good central vision does not exclude progression toward the fovea, and reduced vision does not necessarily mean that the fovea is detached.

Pure TRD or Combined TRD/RRD?

The important clinical question is whether traction alone still explains the entire detachment. A change in retinal configuration may indicate that a retinal break has added a rhegmatogenous component.

Swipe horizontally to view the full comparison.

Feature Pure TRD Combined TRD/RRD
Main mechanism Mechanical traction without a causative retinal break. Traction together with a full-thickness retinal break.
Configuration Often tethered, tented and relatively concave. May become more convex or bullous.
Extent Usually remains related to visible tractional attachments. May extend beyond the area explained by visible traction.
Mobility Usually relatively limited. May become more mobile, although this is not a defining sign.
Retinal break No causative full-thickness break. A break is present but may be hidden beneath a membrane, fold or haemorrhage.

Central Diagnostic Clue

The visible traction does not adequately explain the extent or configuration of the detachment.

Suspect a rhegmatogenous component when a localised TRD becomes more extensive, more convex or bullous, or extends toward the peripheral retina or ora serrata. The retinal break may only become visible during surgery. [4] [6]

Exam Pearl

No break seen does not prove that the detachment is purely tractional.

Advertisement

Clinical Assessment

Clinical assessment should define the extent of traction, its relationship to the macula and whether the anatomy is stable or progressing.

Symptoms

An extramacular TRD may cause little or no visual disturbance. As traction approaches or affects the macula, the patient may develop metamorphopsia, progressive central visual loss or distortion.

A sudden marked reduction in vision may be caused by vitreous haemorrhage rather than sudden foveal detachment.

Photopsias are less typical of a slowly progressive pure TRD. New flashes or a sudden field defect should raise concern for an acute vitreoretinal event or an added rhegmatogenous component.

Fundus Examination

  • Location and extent of the detachment
  • Relationship to the macula
  • Fibrovascular proliferation and traction points
  • Retinal folds and vascular distortion
  • Vitreous or preretinal haemorrhage
  • Active neovascularisation and previous PRP
  • Any visible or suspected retinal break

Clinical Priority

Compare the findings with previous examination, photographs or OCT whenever possible. Progression may be more important than the appearance at a single visit. [2] [7]

Advertisement

Causes of Tractional Retinal Detachment

TRD is a mechanism rather than a single disease. Different disorders can produce contracting tissue at the vitreoretinal interface and ultimately pull the retina away from the RPE.

Adults

  • Proliferative diabetic retinopathy
  • Proliferative sickle-cell retinopathy
  • Eales disease
  • Rarely, severe ischaemic retinal-vein occlusion
  • PVR-associated complex or mixed retinal detachment

Children

  • Retinopathy of prematurity
  • Familial exudative vitreoretinopathy
  • Persistent fetal vasculature

PVR is a different fibrotic pathway

Proliferative vitreoretinopathy is an abnormal wound-healing response, usually associated with retinal breaks, retinal surgery or trauma. It commonly produces fixed folds, retinal shortening and mixed tractional-rhegmatogenous disease. [1] [2]

Important

PDR is the most common cause of tractional retinal detachment in adults.

Imaging According to the Clinical Question

Imaging should be selected according to the anatomy that needs to be defined. No single investigation answers every question in TRD.

OCT

  • Determines whether the fovea is attached
  • Shows macular distortion and tractional elevation
  • Distinguishes tractional retinoschisis from true TRD
  • Documents progression on serial scans
  • Shows associated oedema or outer-retinal damage
OCT only shows the scanned area. It cannot exclude peripheral traction or an occult retinal break outside the scan. [5]

B-Scan Ultrasound

B-scan is most useful when dense vitreous haemorrhage or another media opacity prevents adequate fundus examination.

It may demonstrate retinal elevation, vitreoretinal membranes and persistent tractional attachments.

A negative scan does not completely exclude a small or peripheral TRD. Interpretation must remain clinical and may require serial examination. [7]

Fluorescein Angiography

Fluorescein angiography is not required simply to prove that traction exists.

Its main role is to assess retinal non-perfusion, active neovascularisation, leakage and residual untreated ischaemic retina.

OCT Angiography

OCT angiography may demonstrate non-perfusion and neovascular complexes, but it remains an adjunct rather than an essential test for confirming established TRD.

Clinical Pearl

OCT defines macular anatomy, B-scan assesses the obscured posterior segment, and angiography evaluates the underlying proliferative disease.

Advertisement

A Practical Diagnostic Framework

Diagnosis should not depend on one isolated sign. Define the anatomy, determine progression and confirm that the proposed mechanism explains the complete detachment.

  1. 1

    Is there a true retinal detachment?

    Distinguish surface distortion or tractional retinoschisis from separation of the neurosensory retina from the RPE.

  2. 2

    Is the fovea attached, threatened or involved?

    Base this on retinal anatomy rather than visual acuity alone.

  3. 3

    Is the anatomy stable or progressing?

    Compare with previous examination, photographs or serial OCT whenever available.

  4. 4

    Does visible traction explain the entire detachment?

    Look for a mismatch between the visible fibrovascular traction and the extent, shape or mobility of the detached retina.

Clinical Action

If visible traction does not explain the complete detachment, actively look for an added rhegmatogenous mechanism.

Management Framework

Management is guided by the relationship to the macula, documented progression, the underlying mechanism and the realistic potential for useful vision.

Macular status Progression Mechanism Visual potential Operative risk Reliable follow-up

Swipe horizontally to view the full table.

Clinical Situation General Approach
Stable extramacular TRD Observation may be appropriate when the macula remains uninvolved, the anatomy is stable and reliable follow-up is possible.
Progressive macula-threatening TRD Surgery is generally favoured because documented progression places central vision at risk, even when visual acuity remains good.
Macula-involving TRD Vitrectomy is generally considered when meaningful visual potential remains.
Combined TRD/RRD Ordinarily requires surgical management because both the traction and retinal-break components must be addressed.

A stable extramacular detachment can sometimes be followed with serial examination, photography or OCT. Documented progression toward the macula generally shifts management toward surgery.

Chronicity may reduce the expected visual recovery, but it is not an automatic contraindication to surgery. [2] [7]

Important

Visual acuity alone should not determine management. Retinal anatomy, progression and macular involvement must be assessed separately.

Advertisement

PRP, Anti-VEGF and Established Traction

PRP and anti-VEGF treatment help control the proliferative drive of diabetic retinopathy, but neither treatment mechanically releases an established tractional detachment.

Panretinal photocoagulation

PRP reduces the ischaemic stimulus for neovascularisation. It may help control active proliferative disease, but it does not remove existing fibrovascular traction.

Anti-VEGF

Anti-VEGF causes regression of active neovascular tissue. It may be used to treat PDR or as a preoperative adjunct, but it does not mechanically detach adherent fibrovascular membranes from the retina.

Anti-VEGF Before Vitrectomy

Preoperative anti-VEGF may reduce the vascularity of fibrovascular membranes and make diabetic vitrectomy safer or more controlled.

  • Improved operative visualisation
  • Reduced intraoperative bleeding
  • Potentially fewer iatrogenic retinal breaks
  • Reduced early postoperative vitreous haemorrhage

These benefits are supported by prospective surgical evidence. [11]

Do Not Confuse

Anti-VEGF crunch

Anti-VEGF crunch describes rapid development or progression of TRD after an anti-VEGF injection in an eye with proliferative retinopathy.

Rapid regression of neovascular tissue → contraction of the pre-existing fibrovascular complex → increased traction on the retina

Greater caution is required when there is:

  • Severe active PDR
  • Extensive fibrovascular proliferation
  • Broad or complex fibrotic membranes
  • Marked pre-existing traction

The literature does not provide a universally accepted diagnostic definition or a reliable population incidence. Reported worsening may occur over days to several weeks. [9] [10]

Balanced Interpretation

Anti-VEGF does not generally increase TRD risk in ordinary trial-eligible PDR populations, but rapid tractional worsening can occur in selected eyes with advanced pre-existing fibrovascular disease. [8]

When anti-VEGF is used in a high-risk tractional eye, surgery should already be planned and avoidable delay should be minimised. There is no universal injection-to-surgery interval.

Advertisement

What Is Not Automatic in Every TRD Operation?

The extent of surgery depends on the anatomy. Several manoeuvres may be required in complex cases, but they are not compulsory in every pure TRD.

Complete posterior vitreous separation

The posterior hyaloid should not be forcibly separated from every area of strong fibrovascular adhesion.

Removal of every membrane fragment

A small residual island may be left when it no longer exerts traction and removal would increase the risk of bleeding or retinal injury.

Direct subretinal-fluid drainage

In a pure TRD without a retinal break, subretinal fluid may absorb gradually after the traction has been released.

Retinopexy and internal tamponade

Gas or silicone oil is not required simply because a tractional detachment was present.

Retinotomy or retinectomy

These are selected manoeuvres for complex anatomy rather than routine steps in every TRD operation.

When drainage, retinopexy or tamponade becomes more relevant

These manoeuvres are more likely to be required when there is a pre-existing or iatrogenic retinal break, a planned retinotomy or retinectomy, residual traction or inadequate retinal apposition.

Retinotomy and retinectomy

A retinotomy is a deliberate retinal opening, for example to drain subretinal fluid or gain access beneath the retina.

A retinectomy removes a portion of shortened, stiff retina that cannot flatten despite adequate traction release. [2]

Surgical Principle

The operation should be tailored to the mechanism and residual anatomy, rather than applying every manoeuvre routinely.

Advertisement

Principles of Vitrectomy in TRD Surgery

The purpose of surgery is to remove the forces that are pulling the retina away from the RPE. The surgeon is primarily releasing traction, not simply pushing the retina back into place.

Relieve anteroposterior vitreous traction

Remove free vitreous and release the forces transmitted through persistent posterior-hyaloid attachments.

Segment connected fibrovascular membranes

Divide membrane bridges so that traction is no longer transmitted across one continuous fibrovascular network.

Delaminate persistent tractional tissue

Separate membranes that continue to elevate or distort the retina after segmentation.

Identify and manage retinal breaks

Look for pre-existing or iatrogenic breaks after traction has been released and treat the rhegmatogenous component when present.

The posterior hyaloid should not be forcibly stripped from tightly adherent fibrovascular tissue. The underlying diabetic retina may be thin, ischaemic and vulnerable to an iatrogenic break.

Truncation, Segmentation and Delamination

Swipe horizontally to view the full comparison.

Term What It Means Mechanical Purpose
Truncation Cutting the attached posterior hyaloid around a fibrovascular adhesion. Stops vitreous traction from being transmitted to the retinal attachment.
Segmentation Dividing connected fibrovascular membrane bridges into smaller islands. Interrupts the spread of traction across the membrane network.
Delamination Separating persistent fibrovascular tissue from the retinal surface. Removes residual traction that continues to elevate or distort the retina.

Surgical Principle

Truncation releases vitreous pull, segmentation breaks the membrane network, and delamination removes persistent retinal-surface traction.

Retinal Breaks Change the Operation

A retinal break may already be present in a combined TRD/RRD or may be created during membrane dissection.

When a break is present, traction around it must be relieved and the rhegmatogenous component may require subretinal-fluid drainage, retinopexy and internal tamponade. [2] [7]

Advertisement

Prognosis and Counselling

After TRD surgery, counselling should separate three different outcomes. Anatomical success does not automatically mean good visual recovery.

Swipe horizontally to view the full table.

Outcome What It Means Counselling Point
Anatomical success Relief of traction and successful retinal reattachment. Modern vitrectomy may achieve retinal reattachment even in complex disease, but reattachment alone does not define the final vision.
Visual recovery Improvement or preservation of useful visual function. The strongest practical predictor is the preoperative visual acuity, together with the preoperative condition of the macula.
Long-term disease control Continued control of the underlying proliferative retinal disease. Successful surgery does not remove the need for systemic disease control, retinal surveillance and further treatment when indicated.

Why Vision May Remain Limited

Macular ischaemia

Reattachment cannot restore vision already limited by inadequate macular perfusion.

Longstanding macular detachment

Chronic separation may produce irreversible outer-retinal and photoreceptor damage.

Diabetic macular oedema

Persistent or recurrent oedema may continue to limit central vision after anatomical reattachment.

Residual macular distortion

Chronic traction, retinal folds or structural distortion may limit visual quality even when the retina is attached.

Advanced ocular disease

Neovascular glaucoma, optic-nerve damage or other complex retinal pathology may restrict the final visual potential.

Chronic and combined detachments

Chronicity generally worsens visual prognosis, but it is not an automatic contraindication to surgery. Combined TRD/RRD is more complex than pure TRD, but meaningful anatomical and visual improvement may still be possible in appropriately selected eyes. [2] [6]

Key Counselling Message

The retina may be reattached anatomically, but the final vision depends largely on the condition and function of the macula before surgery.

Advertisement

Take-Home Framework

The following principles provide a practical way to understand, classify and manage tractional retinal detachment.

  1. 1

    Confirm that a true detachment exists

    Retinal wrinkling, surface distortion and tractional retinoschisis are not equivalent to separation of the neurosensory retina from the RPE.

  2. 2

    Define the relationship to the macula

    Classify the detachment as extramacular, macula-threatening or macula-involving using retinal anatomy rather than visual acuity alone.

  3. 3

    Look for progression

    Serial examination, photography and OCT may be more informative than the appearance at one isolated visit.

  4. 4

    Decide whether traction explains the entire detachment

    A more extensive, convex or bullous configuration should raise suspicion for a hidden retinal break and combined TRD/RRD.

  5. 5

    Match treatment to the anatomy

    Stable extramacular disease may be observed, whereas progressive macula-threatening, macula-involving or combined detachments generally favour surgery.

  6. 6

    Remember the central surgical goal

    Vitrectomy succeeds by releasing traction. Drainage, retinopexy, tamponade and retinectomy are added only when the residual anatomy requires them.

Final Principle

In TRD, first understand the mechanical forces, then define the macular anatomy and progression, and finally choose treatment according to the mechanism that remains.

Advertisement

References

  1. 1. Solinski MA, et al. Tractional retinal detachment. Disease-a-Month. 2021;67(5):101142. doi:10.1016/j.disamonth.2021.101142
  2. 2. Stewart MW, Browning DJ, Landers MB. Current management of diabetic tractional retinal detachments. Indian Journal of Ophthalmology. 2018;66(12):1751–1762. doi:10.4103/ijo.IJO_1217_18
  3. 3. Michels RG. Proliferative diabetic retinopathy: pathophysiology of extraretinal complications and principles of vitreous surgery. Retina. 1981;1(1):1–17. PMID:15633404
  4. 4. Lincoff H, et al. Tractional elevations of the retina in proliferative diabetic retinopathy. American Journal of Ophthalmology. 1992;113(3):235–242. doi:10.1016/S0002-9394(14)71573-9
  5. 5. Imai M, et al. Optical coherence tomography of tractional macular elevations in proliferative diabetic retinopathy. American Journal of Ophthalmology. 2001;132(1):81–84. doi:10.1016/S0002-9394(01)00910-2
  6. 6. Yang CM, et al. Surgical treatment of combined tractional and rhegmatogenous retinal detachment in proliferative diabetic retinopathy. Canadian Journal of Ophthalmology. 2008;43(2):192–198. doi:10.3129/i08-007
  7. 7. Lim JI, et al.; American Academy of Ophthalmology Preferred Practice Pattern Committee. Diabetic Retinopathy Preferred Practice Pattern. Ophthalmology. 2025;132(4):P75–P162. doi:10.1016/j.ophtha.2024.12.020
  8. 8. Bressler NM, et al. Anti-VEGF therapy and the risk of traction retinal detachment in eyes with proliferative diabetic retinopathy: a pooled analysis of five DRCR Retina Network trials. Retina. 2020;40(6):1021–1028. doi:10.1097/IAE.0000000000002633
  9. 9. Arevalo JF, et al. Tractional retinal detachment following intravitreal bevacizumab in patients with severe proliferative diabetic retinopathy. British Journal of Ophthalmology. 2008;92(2):213–216. doi:10.1136/bjo.2007.127142
  10. 10. Tan Y, et al. Anti-VEGF crunch syndrome in proliferative diabetic retinopathy: a review. Survey of Ophthalmology. 2021;66(6):926–932. doi:10.1016/j.survophthal.2021.03.001
  11. 11. Arevalo JF, et al. Preoperative bevacizumab for tractional retinal detachment in proliferative diabetic retinopathy: a prospective randomized clinical trial. American Journal of Ophthalmology. 2019;207:279–287. doi:10.1016/j.ajo.2019.05.007

Leave a Comment

Your email address will not be published. Required fields are marked *

Prove your humanity: 6   +   7   =  

Scroll to Top
Copy link