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© 2026 OrthoVellum. For educational purposes only.

Not medical advice. Verify clinically important information against current local guidance.

Revision THA Bone Loss and Reconstruction

Operative SurgeryArthroplasty
ArthroplastyAdvanced

Revision THA Bone Loss and Reconstruction

Advanced orthopaedic guide to revision total hip arthroplasty bone loss and reconstruction: pre-operative workup, Paprosky classification, acetabular reconstruction, pelvic discontinuity, femoral fixation strategy, extended trochanteric osteotomy and complications.

Procedure console
6 min
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advanced
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Peer-reviewed · 2026-06-04
High-yield overview

Map bone | classify defect | restore fixation | prepare backups

PaproskyMain acetabular and femoral planning language
Judet + CTNeeded when columns or discontinuity are unclear
Host boneFixation target for acetabular reconstruction
Bypass defectFemoral fixation principle
Reconstruction Families
Acetabular Paprosky I/II
PatternRim and columns usually support a hemispherical shell.
TreatmentPorous hemispherical cup, screws, graft for contained defects.
Acetabular Paprosky IIIA
PatternSuperior bone loss with partial rim/column support.
TreatmentJumbo shell, porous metal augment, graft and hip-centre restoration.
Acetabular Paprosky IIIB or discontinuity
PatternSevere superior/medial loss, column support poor or pelvis discontinuous.
TreatmentPorous shell plus augments, cup-cage, custom triflange or distraction technique in selected cases.
Femoral Paprosky III/IV
PatternMetaphysis deficient; diaphyseal support determines fixation.
TreatmentTapered fluted modular stem, ETO when needed, proximal femoral replacement when fixation is not possible.
Critical Must-Knows
  • Revision THA starts by defining failure and excluding infection. Bone loss reconstruction fails if the infection diagnosis is missed.
  • Paprosky acetabular classification is useful because it estimates rim and column support. It is not just a memorised table.
  • Pelvic discontinuity means the superior ilium and inferior ischiopubic segment are separated. Standard hemispherical fixation is often insufficient.
  • Femoral revision succeeds by obtaining stable fixation beyond the defect. Diaphyseal/isthmus support matters more than proximal appearance alone.
  • A revision plan is incomplete without backup implants. Extraction tools, augments, cages, stems, bearings and weight-bearing plan must be decided before theatre.
Clinical Pearls
  • “
    Order AP pelvis, lateral hip, full femur films, Judet views and CT with metal artefact reduction when acetabular columns are uncertain.
  • “
    Use Paprosky to decide if a cup can grip host bone, whether augments are required, and whether the construct must span or unitise the pelvis.
  • “
    A custom triflange can be powerful for severe defects but has high complication and dislocation risk; counsel accordingly.
  • “
    ETO is a controlled exposure tool for well-fixed stems or cement, not a failure of technique.
Do not plan revision THA from an AP pelvis alone

The AP pelvis gives the first impression. It does not reliably define posterior column support, pelvic discontinuity, femoral isthmus fixation, version, occult fracture or infection. The operation should not start until the surgeon has mapped the bone and planned extraction plus reconstruction.

Revision THA bone loss clinic-to-theatre planning pathway
Revision THA planning moves from failure diagnosis to infection exclusion, bone-loss mapping, classification, reconstruction choice and backup implants.Credit: Original OrthoVellum illustration
Revision THA Mental Models
MAPPre-op workup
HOSTAcetabulum
STEMFemur
M
Mechanism of failure
Loosening, infection, fracture, instability, wear or adverse local tissue reaction.
H
Host contact
Porous shell needs enough supportive host bone.
S
Support at isthmus
Diaphyseal support enables tapered fluted fixation.
A
Anatomy of bone loss
Columns, rim, medial wall, isthmus, cortical tube and fracture lines.
O
Offset and hip centre
Reconstruction must restore biomechanics.
T
Trochanteric osteotomy
ETO preserves bone during difficult extraction.
P
Plan extraction and backups
Removal tools, ETO, augments, cages, stems and weight-bearing restrictions.
S
Structural support
Augments, cup-cage or triflange when columns are deficient.
E
Endoprosthesis
Consider when host femur cannot support a revision stem.
T
Test discontinuity
CT/Judet views and intra-operative stability determine strategy.
M
Measure length/version
Restore leg length, offset and version, not just fixation.

Map before cutting.

Host bone decides fixation.

Fix beyond the defect.

Mnemonic

BACKUPTheatre Readiness

B
Blood and biology
Optimise haemoglobin, infection status, bone quality and soft tissues.
A
Augments and cages
Have modular porous metal, cage, cup-cage or triflange plan available.
C
Component extraction
Plan cup, stem, cement and screw removal before incision.
K
Known implants
Identify prior implant sizes, bearings, tapers and approach where possible.
U
Unexpected fracture
Have cables, plates, struts, long stems and fracture strategy ready.
P
Post-op restrictions
Weight bearing and precautions depend on construct stability.

Hook:Revision THA without BACKUP is not planned surgery.

Overview and Definitions


Revision THA bone loss is a reconstruction problem, not simply a component exchange. The surgeon must identify why the arthroplasty failed, whether infection is present, how much host bone remains, and which construct can achieve durable fixation.

The practical definitions are:

Contained defect
Meaning
Bone loss surrounded by a rim or cortical shell.
Treatment Implication
May be filled with morselised graft or cement/augment depending size and fixation.
Segmental defect
Meaning
A rim, wall or column segment is missing.
Treatment Implication
Needs structural support: augment, cage, structural graft or custom component.
Pelvic discontinuity
Meaning
Superior ilium separated from inferior ischiopubic segment through the acetabulum.
Treatment Implication
Construct must stabilise or unitise the pelvis; standard cup fixation is often inadequate.
Femoral metaphyseal loss
Meaning
Proximal femur cannot support the stem.
Treatment Implication
Shift fixation distally with a tapered fluted stem if diaphysis allows.
Non-reconstructable femur
Meaning
No reliable proximal or diaphyseal host fixation.
Treatment Implication
Consider proximal femoral replacement or allograft-prosthetic composite in selected cases.
Definitions That Change Treatment
TermMeaningTreatment Implication
Contained defectBone loss surrounded by a rim or cortical shell.May be filled with morselised graft or cement/augment depending size and fixation.
Segmental defectA rim, wall or column segment is missing.Needs structural support: augment, cage, structural graft or custom component.
Pelvic discontinuitySuperior ilium separated from inferior ischiopubic segment through the acetabulum.Construct must stabilise or unitise the pelvis; standard cup fixation is often inadequate.
Femoral metaphyseal lossProximal femur cannot support the stem.Shift fixation distally with a tapered fluted stem if diaphysis allows.
Non-reconstructable femurNo reliable proximal or diaphyseal host fixation.Consider proximal femoral replacement or allograft-prosthetic composite in selected cases.

Pathophysiology


Bone loss in revision THA usually develops from osteolysis, loosening, stress shielding, infection, periprosthetic fracture, adverse local tissue reaction or repeated previous surgery. Each mechanism leaves a different reconstruction problem.

Polyethylene wear and osteolysis
Typical Bone Problem
Cavitary acetabular or proximal femoral defects, sometimes with intact rim.
Planning Consequence
Assess whether fixation remains possible with shell/stem exchange and grafting.
Aseptic loosening
Typical Bone Problem
Progressive migration, rim deficiency, femoral cortical thinning or pedestal formation.
Planning Consequence
Plan extraction and reconstruction; classify both sides.
Infection
Typical Bone Problem
Bone destruction plus compromised soft tissues.
Planning Consequence
Treat infection pathway first; reconstruction may need staged strategy.
Periprosthetic fracture
Typical Bone Problem
Femoral cortical tube disrupted; implant may be loose.
Planning Consequence
Use Vancouver plus Paprosky femoral planning; fixation must bypass fracture and deficient bone.
Repeated revision
Typical Bone Problem
Combined acetabular/femoral deficiency, abductor damage and instability risk.
Planning Consequence
Expect higher constraint, complex exposure and restricted rehabilitation.
Pelvic discontinuity
Typical Bone Problem
Columns no longer form a continuous ring.
Planning Consequence
Cup-cage, triflange or distraction technique rather than simple hemispherical cup.
Failure Mechanism to Bone-Loss Pattern
MechanismTypical Bone ProblemPlanning Consequence
Polyethylene wear and osteolysisCavitary acetabular or proximal femoral defects, sometimes with intact rim.Assess whether fixation remains possible with shell/stem exchange and grafting.
Aseptic looseningProgressive migration, rim deficiency, femoral cortical thinning or pedestal formation.Plan extraction and reconstruction; classify both sides.
InfectionBone destruction plus compromised soft tissues.Treat infection pathway first; reconstruction may need staged strategy.
Periprosthetic fractureFemoral cortical tube disrupted; implant may be loose.Use Vancouver plus Paprosky femoral planning; fixation must bypass fracture and deficient bone.
Repeated revisionCombined acetabular/femoral deficiency, abductor damage and instability risk.Expect higher constraint, complex exposure and restricted rehabilitation.
Pelvic discontinuityColumns no longer form a continuous ring.Cup-cage, triflange or distraction technique rather than simple hemispherical cup.

Clinical Presentation and Assessment


History and examination

Ask what failed and what has already been done. Important history includes original diagnosis, approach, implant type, fixation method, bearing surface, prior infection, wound issues, instability episodes, fractures, metal-on-metal exposure, antibiotics, anticoagulation, neurological symptoms and functional goals.

Examination must document:

  • Gait, Trendelenburg sign, abductor function and walking aids.
  • Limb length, fixed deformity, flexion contracture and rotational profile.
  • Scar position and soft-tissue envelope.
  • Neurovascular status, especially sciatic/peroneal symptoms.
  • Pain with rotation, trochanteric pain and signs of loosening or instability.
  • Spine and pelvic obliquity when leg length or instability is part of the problem.

First-line imaging and tests

AP pelvis and lateral hip
How To Order It
Standing or standardised AP pelvis plus lateral of affected hip.
What It Answers
Migration, hip centre, loosening, osteolysis, offset, leg length and component position.
Full femur radiographs
How To Order It
Include hip to knee with entire implant and distal femur.
What It Answers
Stem length, cement, cortical defects, distal hardware and bypass planning.
Judet views
How To Order It
Oblique pelvic views when columns/discontinuity are uncertain.
What It Answers
Anterior and posterior column support.
CT with metal artefact reduction
How To Order It
Pelvis and/or femur depending defect.
What It Answers
Column integrity, discontinuity, version, bone stock, osteolysis and occult fracture.
ESR, CRP and aspiration
How To Order It
Screen for infection; aspirate when markers, symptoms or history are suspicious.
What It Answers
Defines whether revision is aseptic or infection pathway.
Implant records
How To Order It
Obtain stickers, op notes and bearing/taper details.
What It Answers
Determines extraction tools, compatibility and backup components.
Revision THA Imaging and Tests
InvestigationHow To Order ItWhat It Answers
AP pelvis and lateral hipStanding or standardised AP pelvis plus lateral of affected hip.Migration, hip centre, loosening, osteolysis, offset, leg length and component position.
Full femur radiographsInclude hip to knee with entire implant and distal femur.Stem length, cement, cortical defects, distal hardware and bypass planning.
Judet viewsOblique pelvic views when columns/discontinuity are uncertain.Anterior and posterior column support.
CT with metal artefact reductionPelvis and/or femur depending defect.Column integrity, discontinuity, version, bone stock, osteolysis and occult fracture.
ESR, CRP and aspirationScreen for infection; aspirate when markers, symptoms or history are suspicious.Defines whether revision is aseptic or infection pathway.
Implant recordsObtain stickers, op notes and bearing/taper details.Determines extraction tools, compatibility and backup components.

Investigations


Paprosky classification of acetabular bone loss
Paprosky classification of acetabular bone loss: Type I minimal (intact rim/columns), II distorted but intact columns with superior migration (IIA superomedial, IIB superolateral, IIC medial/Kohler violated), IIIA up-and-out (30-60% loss), IIIB up-and-in (>60%, possible pelvic discontinuity).Credit: OrthoVellum AI illustration

The investigation plan must answer four questions before theatre: is the joint infected, is the acetabular column support intact, where can the femur obtain fixation, and what implant/extraction equipment is required.

ESR, CRP and aspiration when indicated
Decision It Supports
Aseptic revision versus infection pathway, culture strategy and staging.
Unsafe Shortcut
Calling a loose implant aseptic without infection workup.
AP pelvis and lateral hip
Decision It Supports
Migration, hip centre, offset, leg length, loosening and gross osteolysis.
Unsafe Shortcut
Using AP pelvis alone to choose augments or cages.
Full-length femur radiographs
Decision It Supports
Stem length, cement mantle, cortical tube, distal hardware, fracture and bypass length.
Unsafe Shortcut
Planning femoral revision without seeing the whole stem.
Judet views
Decision It Supports
Anterior and posterior column integrity when discontinuity is possible.
Unsafe Shortcut
Missing posterior column deficiency.
CT with metal artefact reduction
Decision It Supports
Column support, discontinuity, component version, osteolysis, cortical defects and occult fracture.
Unsafe Shortcut
Assuming a cup can grip host bone without cross-sectional mapping.
How Each Test Changes The Operation
TestDecision It SupportsUnsafe Shortcut
ESR, CRP and aspiration when indicatedAseptic revision versus infection pathway, culture strategy and staging.Calling a loose implant aseptic without infection workup.
AP pelvis and lateral hipMigration, hip centre, offset, leg length, loosening and gross osteolysis.Using AP pelvis alone to choose augments or cages.
Full-length femur radiographsStem length, cement mantle, cortical tube, distal hardware, fracture and bypass length.Planning femoral revision without seeing the whole stem.
Judet viewsAnterior and posterior column integrity when discontinuity is possible.Missing posterior column deficiency.
CT with metal artefact reductionColumn support, discontinuity, component version, osteolysis, cortical defects and occult fracture.Assuming a cup can grip host bone without cross-sectional mapping.

Bone-Loss Mapping


I
Bone-Loss Pattern
Minimal bone loss; hemispherical shape and rim supportive.
Reconstruction Meaning
Porous hemispherical cup usually sufficient.
IIA/IIB/IIC
Bone-Loss Pattern
Distorted hemisphere with superior, lateral or medial bone loss.
Reconstruction Meaning
Cup with screws, graft or limited augment depending host contact.
IIIA
Bone-Loss Pattern
Severe superior bone loss but some column/rim support remains.
Reconstruction Meaning
Jumbo cup, porous shell and augments; restore hip centre if possible.
IIIB
Bone-Loss Pattern
Severe superior/medial migration with poor column support; discontinuity risk.
Reconstruction Meaning
Cup-cage, custom triflange, distraction or complex augment strategy.
Paprosky Acetabular Classification
TypeBone-Loss PatternReconstruction Meaning
IMinimal bone loss; hemispherical shape and rim supportive.Porous hemispherical cup usually sufficient.
IIA/IIB/IICDistorted hemisphere with superior, lateral or medial bone loss.Cup with screws, graft or limited augment depending host contact.
IIIASevere superior bone loss but some column/rim support remains.Jumbo cup, porous shell and augments; restore hip centre if possible.
IIIBSevere superior/medial migration with poor column support; discontinuity risk.Cup-cage, custom triflange, distraction or complex augment strategy.
Broken Kohler line, medial migration, severe osteolysis
Meaning
Possible loss of medial wall and column support.
Management Implication
CT and Judet views required.
Superior and inferior hemipelvis moving separately
Meaning
True discontinuity.
Management Implication
Construct must bridge/unitise pelvis.
Intra-operative motion between columns
Meaning
Discontinuity confirmed.
Management Implication
Do not rely on press-fit cup alone.
Chronic discontinuity with osteolysis
Meaning
Biological healing is difficult.
Management Implication
Cup-cage, triflange or distraction are common contemporary strategies.
How To Recognise Discontinuity
FindingMeaningManagement Implication
Broken Kohler line, medial migration, severe osteolysisPossible loss of medial wall and column support.CT and Judet views required.
Superior and inferior hemipelvis moving separatelyTrue discontinuity.Construct must bridge/unitise pelvis.
Intra-operative motion between columnsDiscontinuity confirmed.Do not rely on press-fit cup alone.
Chronic discontinuity with osteolysisBiological healing is difficult.Cup-cage, triflange or distraction are common contemporary strategies.
I
Support Pattern
Minimal metaphyseal bone loss.
Fixation Strategy
Standard primary or revision stem may work.
II
Support Pattern
Metaphysis damaged but diaphysis intact.
Fixation Strategy
Revision stem; fixation choice by bone quality and implant removal.
IIIA
Support Pattern
Metaphysis deficient; more than 4 cm scratch-fit diaphysis usually available.
Fixation Strategy
Tapered fluted modular stem commonly suitable.
IIIB
Support Pattern
Metaphysis deficient; limited diaphyseal support.
Fixation Strategy
Long tapered fluted stem, adjunct fixation, grafting or alternative reconstruction.
IV
Support Pattern
Wide canal with poor isthmus support.
Fixation Strategy
Proximal femoral replacement or allograft-prosthetic composite selected cases.
Paprosky Femoral Classification
TypeSupport PatternFixation Strategy
IMinimal metaphyseal bone loss.Standard primary or revision stem may work.
IIMetaphysis damaged but diaphysis intact.Revision stem; fixation choice by bone quality and implant removal.
IIIAMetaphysis deficient; more than 4 cm scratch-fit diaphysis usually available.Tapered fluted modular stem commonly suitable.
IIIBMetaphysis deficient; limited diaphyseal support.Long tapered fluted stem, adjunct fixation, grafting or alternative reconstruction.
IVWide canal with poor isthmus support.Proximal femoral replacement or allograft-prosthetic composite selected cases.
Acute vs Chronic Pelvic Discontinuity - a Critical Distinction

The viva trap is to treat all pelvic discontinuity the same. Management diverges on whether the discontinuity is acute or chronic:

  • Acute discontinuity: an intra-operative or recent fracture through reasonable host bone (e.g. during cup extraction or reaming), with healthy bleeding bone surfaces. Like any fracture in good bone it can heal, so it is treated as a fracture - posterior column plating and/or compression across the discontinuity with a hemispherical shell - aiming for primary bony union.
  • Chronic discontinuity: a long-standing separation in osteolytic, sclerotic, often atrophic bone with no healing potential. Compression and plating alone fail because the bone will not unite, so the construct must bridge or distract the deficient columns rather than rely on healing - cup-cage, custom triflange, or acetabular distraction (which uses the elastic recoil of the distracted hemipelvis to load a porous shell plus augments).

Recognising which you face - from chronicity, bone quality and intra-operative bleeding - dictates whether you compress-and-heal or bridge-and-distract.

Management


Management is selected by fixation biology and mechanical stability. The surgeon should not choose an implant because it is familiar; the implant must solve the defect pattern.

Paprosky I/II with supportive rim
Preferred Direction
Porous hemispherical shell with screws; graft contained defects as required.
Why
Enough host bone exists for initial stability and ingrowth.
Superior segmental loss but columns partly supportive
Preferred Direction
Jumbo cup or porous shell plus modular augment.
Why
Augment converts an unsupported segment into a stable platform.
Severe medial/superior loss or suspected discontinuity
Preferred Direction
Plan cup-cage, custom triflange or distraction rather than shell alone.
Why
The construct must bridge or unitise deficient columns.
Contained bone loss in younger patient
Preferred Direction
Consider impaction grafting when stable containment and surgeon experience allow.
Why
May restore bone stock but fails if initial stability is poor.
Acetabular Decision Pathway
Defect SituationPreferred DirectionWhy
Paprosky I/II with supportive rimPorous hemispherical shell with screws; graft contained defects as required.Enough host bone exists for initial stability and ingrowth.
Superior segmental loss but columns partly supportiveJumbo cup or porous shell plus modular augment.Augment converts an unsupported segment into a stable platform.
Severe medial/superior loss or suspected discontinuityPlan cup-cage, custom triflange or distraction rather than shell alone.The construct must bridge or unitise deficient columns.
Contained bone loss in younger patientConsider impaction grafting when stable containment and surgeon experience allow.May restore bone stock but fails if initial stability is poor.
Paprosky I/II
Preferred Direction
Standard revision stem, cemented or uncemented strategy by bone and patient factors.
Why
Metaphyseal/diaphyseal support remains adequate.
Paprosky IIIA
Preferred Direction
Tapered fluted modular stem with diaphyseal fixation.
Why
Stable fixation is obtained beyond deficient metaphysis.
Paprosky IIIB
Preferred Direction
Long tapered fluted stem, adjunct fixation or salvage reconstruction depending isthmus support.
Why
Limited diaphyseal support raises fracture and loosening risk.
Paprosky IV or non-reconstructable femur
Preferred Direction
Proximal femoral replacement or allograft-prosthetic composite in selected cases.
Why
Host bone cannot reliably support a revision stem.
Femoral Decision Pathway
Femoral SituationPreferred DirectionWhy
Paprosky I/IIStandard revision stem, cemented or uncemented strategy by bone and patient factors.Metaphyseal/diaphyseal support remains adequate.
Paprosky IIIATapered fluted modular stem with diaphyseal fixation.Stable fixation is obtained beyond deficient metaphysis.
Paprosky IIIBLong tapered fluted stem, adjunct fixation or salvage reconstruction depending isthmus support.Limited diaphyseal support raises fracture and loosening risk.
Paprosky IV or non-reconstructable femurProximal femoral replacement or allograft-prosthetic composite in selected cases.Host bone cannot reliably support a revision stem.
Good abductors and stable reconstruction
Option
Standard bearing or larger head depending component compatibility.
Principle
Restore biomechanics first; bearing choice cannot rescue poor version.
High dislocation risk with acceptable soft tissues
Option
Dual mobility in selected revision cases.
Principle
Improves jump distance while preserving motion.
Severe abductor deficiency or recurrent instability
Option
Constrained liner in selected salvage situations.
Principle
Constraint increases mechanical demand and should not mask malposition.
Bearing and Constraint Decisions
Risk FactorOptionPrinciple
Good abductors and stable reconstructionStandard bearing or larger head depending component compatibility.Restore biomechanics first; bearing choice cannot rescue poor version.
High dislocation risk with acceptable soft tissuesDual mobility in selected revision cases.Improves jump distance while preserving motion.
Severe abductor deficiency or recurrent instabilityConstrained liner in selected salvage situations.Constraint increases mechanical demand and should not mask malposition.

Acetabular Reconstruction


Revision THA acetabular bone-loss reconstruction pathway
Acetabular reconstruction is chosen by host bone contact, rim/column support, hip-centre restoration and whether pelvic discontinuity is present.Credit: Original OrthoVellum illustration
Porous hemispherical shell
Best Use
Paprosky I/II and selected IIIA with enough host bone contact.
Limitations and Pitfalls
Fails if rim/columns cannot support initial stability.
Jumbo cup
Best Use
Superior bone loss where large shell restores contact.
Limitations and Pitfalls
Can raise hip centre or over-ream if used indiscriminately.
Porous metal augment
Best Use
Segmental superior, posterior or medial defects with shell contact possible.
Limitations and Pitfalls
Augment must support shell and be mechanically stable; cement only at augment-shell interface when used.
Cup-cage
Best Use
Severe bone loss or discontinuity when a shell alone may not be stable.
Limitations and Pitfalls
Cage protects shell while ingrowth occurs; risk of dislocation, infection and cage fatigue remains.
Custom triflange
Best Use
Massive defects, pelvic discontinuity, failed cages or unusual anatomy.
Limitations and Pitfalls
Requires CT-based manufacture, longer lead time and counselling about high complication risk.
Acetabular distraction
Best Use
Selected chronic pelvic discontinuity with porous shell and augments.
Limitations and Pitfalls
Technique-sensitive; requires careful patient and defect selection.
Impaction grafting
Best Use
Contained or reconstructable defects, especially where bone-stock restoration matters.
Limitations and Pitfalls
Use caution in severe uncontained defects or when primary stability is weak.
Acetabular Reconstruction Options
OptionBest UseLimitations and Pitfalls
Porous hemispherical shellPaprosky I/II and selected IIIA with enough host bone contact.Fails if rim/columns cannot support initial stability.
Jumbo cupSuperior bone loss where large shell restores contact.Can raise hip centre or over-ream if used indiscriminately.
Porous metal augmentSegmental superior, posterior or medial defects with shell contact possible.Augment must support shell and be mechanically stable; cement only at augment-shell interface when used.
Cup-cageSevere bone loss or discontinuity when a shell alone may not be stable.Cage protects shell while ingrowth occurs; risk of dislocation, infection and cage fatigue remains.
Custom triflangeMassive defects, pelvic discontinuity, failed cages or unusual anatomy.Requires CT-based manufacture, longer lead time and counselling about high complication risk.
Acetabular distractionSelected chronic pelvic discontinuity with porous shell and augments.Technique-sensitive; requires careful patient and defect selection.
Impaction graftingContained or reconstructable defects, especially where bone-stock restoration matters.Use caution in severe uncontained defects or when primary stability is weak.
The Antiprotrusio (Burch-Schneider) Cage and the Cup-Cage Evolution

Know where the cup-cage came from. The Burch-Schneider antiprotrusio cage is a metal cage with a superior iliac flange (screwed to the ilium) and an inferior flange that hooks into the ischium, spanning a severe defect or discontinuity to offload it. Its weakness is biological: a cage is a purely mechanical bridge with no bone-ingrowth surface, so it relies entirely on screw fixation and tends to loosen or fatigue-fracture over time, especially in a chronic discontinuity that never heals.

The cup-cage construct is the modern evolution that solves this: a highly porous (ingrowth-capable) hemispherical shell is first secured to host bone, then a cage is placed over it spanning ilium to ischium. The cage protects the porous shell from load while the shell osseointegrates - so once ingrowth occurs the construct is biologically fixed, not merely screw-dependent. This is why the cup-cage has largely superseded the standalone antiprotrusio cage for severe defects and chronic discontinuity, with custom triflanges and distraction occupying the most extreme end of the spectrum.

Femoral Reconstruction


Revision THA femoral bone-loss fixation strategy
Femoral reconstruction is chosen by where reliable fixation remains. The key question is whether the stem can obtain stable fixation beyond the deficient proximal femur.Credit: Original OrthoVellum illustration
Core Femoral Principle

Bypass the defect, obtain axial and rotational stability, restore length/offset/version, and avoid creating a fracture during extraction.

When Host Fixation Is Not Enough

Paprosky IV, severe Vancouver B3 fractures, tumour-like bone loss or failed multiple revisions may require proximal femoral replacement or allograft-prosthetic composite.

Femoral bone loss and long-stem revision THA reconstruction
Open-access radiograph series showing femoral bone loss/periprosthetic fracture context and long-stem reconstruction. The teaching point is fixation beyond deficient proximal femur.Credit: Moon KH et al. via Clinics in Orthopedic Surgery / Open-i (CC BY)
Cemented revision stem
When To Choose
Older patient, poor bone, intact cement mantle strategy or selected low-demand cases.
Key Technical Point
Cement technique and version control are critical.
Tapered fluted modular stem
When To Choose
Paprosky IIIA/selected IIIB with diaphyseal fixation available.
Key Technical Point
Achieve axial/rotational stability beyond defect and restore version with modularity.
Extensively porous-coated stem
When To Choose
Selected femora with adequate diaphyseal engagement.
Key Technical Point
Mismatch, thigh pain and stress shielding must be considered.
Impaction grafting
When To Choose
Younger patient or contained femoral deficiency where bone stock restoration is realistic.
Key Technical Point
Technique-sensitive; needs intact cortical tube and stable cemented stem construct.
Proximal femoral replacement
When To Choose
Non-reconstructable proximal femur, massive bone loss, severe B3 fracture or salvage setting.
Key Technical Point
Higher dislocation/infection risk; restore abductors and soft-tissue tension where possible.
Femoral Reconstruction Options
OptionWhen To ChooseKey Technical Point
Cemented revision stemOlder patient, poor bone, intact cement mantle strategy or selected low-demand cases.Cement technique and version control are critical.
Tapered fluted modular stemPaprosky IIIA/selected IIIB with diaphyseal fixation available.Achieve axial/rotational stability beyond defect and restore version with modularity.
Extensively porous-coated stemSelected femora with adequate diaphyseal engagement.Mismatch, thigh pain and stress shielding must be considered.
Impaction graftingYounger patient or contained femoral deficiency where bone stock restoration is realistic.Technique-sensitive; needs intact cortical tube and stable cemented stem construct.
Proximal femoral replacementNon-reconstructable proximal femur, massive bone loss, severe B3 fracture or salvage setting.Higher dislocation/infection risk; restore abductors and soft-tissue tension where possible.

Operative Technique


Revision THA bone loss operation: PIPADRAW sequence

Position
What The Surgeon Does
Usually lateral decubitus for posterior/lateral revision; ensure full femur access and ability to extend incision.
Pitfall
Positioning that prevents distal femoral exposure makes ETO or fracture control harder.
Imaging/equipment
What The Surgeon Does
Have AP pelvis/full femur templates, extraction systems, burrs, cables, augments, cages, stems, bearings and backup constraint.
Pitfall
Starting without backup implants converts a planned reconstruction into improvisation.
Preparation
What The Surgeon Does
Antibiotics/cultures per infection plan, blood availability, cell salvage if used, previous incision strategy.
Pitfall
Giving antibiotics before cultures may compromise microbiology if infection is suspected.
Approach
What The Surgeon Does
Use prior approach where safe; extensile posterior, lateral or anterolateral exposure by implant, scar and surgeon familiarity.
Pitfall
Poor soft-tissue handling increases instability and wound complications.
Dissection
What The Surgeon Does
Identify abductors, sciatic nerve risk zone, pseudocapsule, implants, cables/screws and osteolytic membrane.
Pitfall
Aggressive membrane removal can damage remaining host bone.
Removal
What The Surgeon Does
Remove liner/head first; assess fixation; use curved blades/extraction tools for cup; use ETO for difficult stem/cement removal when appropriate.
Pitfall
Uncontrolled extraction causes iatrogenic fracture and worsens bone loss.
Reconstruction
What The Surgeon Does
Rebuild acetabulum to host bone/columns and femur to reliable fixation zone; restore hip centre, offset, length and version.
Pitfall
Stable-looking components can still be biomechanically wrong if hip centre or version is poor.
At-risk structures
What The Surgeon Does
Sciatic nerve, superior gluteal neurovascular bundle, femoral vessels medially, abductors, greater trochanter and peroneal nerve stretch.
Pitfall
Lengthening and scar dissection increase nerve risk.
Aftercare
What The Surgeon Does
Weight bearing by construct, bone loss, ETO fixation and fracture risk; dislocation precautions and abductor rehabilitation.
Pitfall
Allowing full weight bearing after tenuous fixation can fail the reconstruction.
Theatre Sequence
StepWhat The Surgeon DoesPitfall
PositionUsually lateral decubitus for posterior/lateral revision; ensure full femur access and ability to extend incision.Positioning that prevents distal femoral exposure makes ETO or fracture control harder.
Imaging/equipmentHave AP pelvis/full femur templates, extraction systems, burrs, cables, augments, cages, stems, bearings and backup constraint.Starting without backup implants converts a planned reconstruction into improvisation.
PreparationAntibiotics/cultures per infection plan, blood availability, cell salvage if used, previous incision strategy.Giving antibiotics before cultures may compromise microbiology if infection is suspected.
ApproachUse prior approach where safe; extensile posterior, lateral or anterolateral exposure by implant, scar and surgeon familiarity.Poor soft-tissue handling increases instability and wound complications.
DissectionIdentify abductors, sciatic nerve risk zone, pseudocapsule, implants, cables/screws and osteolytic membrane.Aggressive membrane removal can damage remaining host bone.
RemovalRemove liner/head first; assess fixation; use curved blades/extraction tools for cup; use ETO for difficult stem/cement removal when appropriate.Uncontrolled extraction causes iatrogenic fracture and worsens bone loss.
ReconstructionRebuild acetabulum to host bone/columns and femur to reliable fixation zone; restore hip centre, offset, length and version.Stable-looking components can still be biomechanically wrong if hip centre or version is poor.
At-risk structuresSciatic nerve, superior gluteal neurovascular bundle, femoral vessels medially, abductors, greater trochanter and peroneal nerve stretch.Lengthening and scar dissection increase nerve risk.
AftercareWeight bearing by construct, bone loss, ETO fixation and fracture risk; dislocation precautions and abductor rehabilitation.Allowing full weight bearing after tenuous fixation can fail the reconstruction.

Extended trochanteric osteotomy

Use ETO when a well-fixed stem, long cement mantle, distal ingrowth, cement restrictor, femoral deformity or high fracture risk makes direct extraction unsafe. The aim is controlled access while preserving the vascularised osteotomy fragment.

Key steps:

  • Plan osteotomy length from implant/cement extent; commonly about 12 to 16 cm from the greater trochanter in described techniques.
  • Preserve vastus lateralis and abductor attachments to maintain biology.
  • Round osteotomy corners with burr to reduce stress risers.
  • Open the osteotomy in a controlled fashion, remove stem/cement, reconstruct the canal, then close with cables or wires.
  • Protect against trochanteric migration, nonunion, fracture and abductor dysfunction.

Complications and Failure Management


Dislocation
Why It Happens
Abductor deficiency, altered hip centre, constrained reconstruction, soft-tissue damage.
Prevention or Management
Restore offset/length/version, choose bearing strategy, consider dual mobility or constrained liner in selected cases.
Infection
Why It Happens
Long surgery, multiple revisions, dead space and compromised host.
Prevention or Management
Optimise, culture, debride, antibiotic plan and staged reconstruction when indicated.
Aseptic loosening
Why It Happens
Poor host fixation, inadequate column support, failed ingrowth or overloaded cage.
Prevention or Management
Use appropriate host bone fixation, augments, cage/triflange and protected rehabilitation.
Nerve injury
Why It Happens
Limb lengthening, traction, scar dissection or screw/cage placement.
Prevention or Management
Document pre-op status, limit acute lengthening, protect sciatic nerve and use safe screw corridors.
Periprosthetic fracture
Why It Happens
Extraction, weak cortex, stress risers or inadequate bypass.
Prevention or Management
ETO, cables/struts, long stems and bypass defects.
ETO nonunion or migration
Why It Happens
Poor biology, inadequate fixation or excessive stripping.
Prevention or Management
Preserve attachments, cable fixation, protected weight bearing and revision fixation if symptomatic failure.
Complications
ComplicationWhy It HappensPrevention or Management
DislocationAbductor deficiency, altered hip centre, constrained reconstruction, soft-tissue damage.Restore offset/length/version, choose bearing strategy, consider dual mobility or constrained liner in selected cases.
InfectionLong surgery, multiple revisions, dead space and compromised host.Optimise, culture, debride, antibiotic plan and staged reconstruction when indicated.
Aseptic looseningPoor host fixation, inadequate column support, failed ingrowth or overloaded cage.Use appropriate host bone fixation, augments, cage/triflange and protected rehabilitation.
Nerve injuryLimb lengthening, traction, scar dissection or screw/cage placement.Document pre-op status, limit acute lengthening, protect sciatic nerve and use safe screw corridors.
Periprosthetic fractureExtraction, weak cortex, stress risers or inadequate bypass.ETO, cables/struts, long stems and bypass defects.
ETO nonunion or migrationPoor biology, inadequate fixation or excessive stripping.Preserve attachments, cable fixation, protected weight bearing and revision fixation if symptomatic failure.

Guidelines, Registries and Global Practice


Revision burden is rising worldwide as the primary THA population grows and ages. National joint registries are the best source of global epidemiology because they capture whole populations rather than single-centre series.

Aseptic loosening and instability
Signal
Across major registries (AOANJRR, NJR, AJRR, SHAR) aseptic loosening, dislocation and infection are consistently the leading reasons for revision THA.
Planning Relevance
These mechanisms generate most acetabular and femoral bone loss; anticipate them in workup.
Rising revision volume
Signal
Registries report a steady absolute rise in revision procedures as the primary arthroplasty cohort expands and survives longer.
Planning Relevance
Demand for augments, cup-cages, triflanges and tapered fluted stems is increasing globally.
Re-revision risk
Signal
Registry data show re-revision risk is higher than first-time revision, particularly after instability and infection.
Planning Relevance
Counsel patients that complex bone-loss reconstruction is not always a single definitive operation.
Highly porous metal trend
Signal
Outcome literature and registry-linked series show a shift away from cemented reconstruction toward highly porous shells and modular porous augments.
Planning Relevance
Mirror contemporary practice; cemented sockets are now selective.
Global Epidemiology and Registry Signals
SourceSignalPlanning Relevance
Aseptic loosening and instabilityAcross major registries (AOANJRR, NJR, AJRR, SHAR) aseptic loosening, dislocation and infection are consistently the leading reasons for revision THA.These mechanisms generate most acetabular and femoral bone loss; anticipate them in workup.
Rising revision volumeRegistries report a steady absolute rise in revision procedures as the primary arthroplasty cohort expands and survives longer.Demand for augments, cup-cages, triflanges and tapered fluted stems is increasing globally.
Re-revision riskRegistry data show re-revision risk is higher than first-time revision, particularly after instability and infection.Counsel patients that complex bone-loss reconstruction is not always a single definitive operation.
Highly porous metal trendOutcome literature and registry-linked series show a shift away from cemented reconstruction toward highly porous shells and modular porous augments.Mirror contemporary practice; cemented sockets are now selective.
AAOS (US)
Emphasis Relevant to Bone Loss
Systematic infection workup before revision (serology then aspiration) and structured pre-operative planning.
Practical Takeaway
Exclude periprosthetic joint infection before any aseptic bone-loss reconstruction.
BOA / British Hip Society (UK)
Emphasis Relevant to Bone Loss
Complex revision and pelvic discontinuity concentrated in higher-volume revision units with multidisciplinary input.
Practical Takeaway
Refer massive bone loss and discontinuity to experienced revision teams.
AO Foundation
Emphasis Relevant to Bone Loss
Mechanical principles: bypass the defect, obtain stable fixation in host bone and protect biology during exposure.
Practical Takeaway
Fixation strategy is defined by where reliable host bone remains.
EFORT / European consensus
Emphasis Relevant to Bone Loss
Standardised classification (Paprosky), infection exclusion and registry-informed implant selection.
Practical Takeaway
Use a shared classification language and registry-supported implants.
Society Guidance and Consensus, Side by Side
BodyEmphasis Relevant to Bone LossPractical Takeaway
AAOS (US)Systematic infection workup before revision (serology then aspiration) and structured pre-operative planning.Exclude periprosthetic joint infection before any aseptic bone-loss reconstruction.
BOA / British Hip Society (UK)Complex revision and pelvic discontinuity concentrated in higher-volume revision units with multidisciplinary input.Refer massive bone loss and discontinuity to experienced revision teams.
AO FoundationMechanical principles: bypass the defect, obtain stable fixation in host bone and protect biology during exposure.Fixation strategy is defined by where reliable host bone remains.
EFORT / European consensusStandardised classification (Paprosky), infection exclusion and registry-informed implant selection.Use a shared classification language and registry-supported implants.
Imaging
Well-Resourced Setting
CT with metal artefact reduction and Judet views routinely available.
Limited-Resource Setting
May rely on plain films and Judet views; CT access can be limited, raising the value of careful radiographic assessment.
Implants
Well-Resourced Setting
Full range of porous augments, cup-cages, custom triflanges and modular tapered stems.
Limited-Resource Setting
Custom and modular options may be unavailable; structural allograft, cages and standard revision implants are used more.
Custom triflange
Well-Resourced Setting
CT-based manufacture feasible with adequate lead time.
Limited-Resource Setting
Manufacturing lead time, cost and supply chain often make custom triflange impractical.
Follow-up
Well-Resourced Setting
Registry capture and structured surveillance.
Limited-Resource Setting
Surveillance may be opportunistic; emphasise durable, forgiving constructs.
High-Resource versus Limited-Resource Practice
DimensionWell-Resourced SettingLimited-Resource Setting
ImagingCT with metal artefact reduction and Judet views routinely available.May rely on plain films and Judet views; CT access can be limited, raising the value of careful radiographic assessment.
ImplantsFull range of porous augments, cup-cages, custom triflanges and modular tapered stems.Custom and modular options may be unavailable; structural allograft, cages and standard revision implants are used more.
Custom triflangeCT-based manufacture feasible with adequate lead time.Manufacturing lead time, cost and supply chain often make custom triflange impractical.
Follow-upRegistry capture and structured surveillance.Surveillance may be opportunistic; emphasise durable, forgiving constructs.

Controversies and Areas of Uncertainty


Cup-cage versus custom triflange

Both manage severe defects and discontinuity. Off-the-shelf cup-cage avoids manufacturing lead time and cost, while custom triflange is matched to unique anatomy. High-quality comparative data are limited and choice remains largely surgeon- and resource-dependent.

Acetabular distraction

Distraction with a porous shell and augments is a newer technique for chronic pelvic discontinuity that aims to use elastic recoil for stability. Evidence is mostly single-centre cohorts; its place relative to cup-cage and triflange is still being defined.

Dual mobility versus constrained liners

Dual mobility reduces dislocation while preserving motion, but late intraprosthetic dissociation is a concern. Constrained liners can salvage severe abductor deficiency but transmit higher loads to fixation. The threshold between them is not standardised.

Modularity in tapered fluted stems

Modular fluted tapered stems aid version and length control but introduce a modular junction at risk of corrosion or fracture. Whether modular or monoblock stems are preferable in a given defect remains debated.

Evidence Signals


Evidence

Acetabular bone-loss update

Review
Key Findings:
  • Paprosky remains the most commonly used acetabular bone-loss classification.
  • Careful radiological assessment can diagnose bone-loss pattern and chronic pelvic discontinuity before surgery.
  • Contemporary practice increasingly uses highly porous shells with modular porous metal augments.
Finding: This update frames contemporary acetabular revision options.
Clinical implication: The page should teach radiographic classification and modern porous-metal reconstruction choices together. Classify the defect, then choose a construct that obtains host-bone fixation.
Limitation: Narrative update; technique choice depends on surgeon experience and defect pattern.
Source: Sanghavi, Paprosky and Sheth, Journal of the AAOS, 2024
Verify on PubMed (PMID 38412446)
Evidence

Acetabular reconstruction review

Review
Key Findings:
  • Pre-operative evaluation includes history, examination, infection workup and detailed radiographic planning.
  • Paprosky classification is based on column integrity and guides treatment strategy.
  • Uncemented biological fixation techniques are preferred in many contemporary reconstructions.
Finding: This review supports the workup and classification sequence used in the topic.
Clinical implication: Use a clinic-to-theatre planning pathway rather than jumping straight to implants. Planning and team execution are part of the reconstruction.
Limitation: Long-term comparative evidence remains limited for some reconstruction methods.
Source: Fryhofer, Ramesh and Sheth, Journal of Clinical Orthopaedics and Trauma, 2020
Verify on PubMed (PMID 32001979)
Evidence

Pelvic discontinuity management

Reviews
Key Findings:
  • Pelvic discontinuity separates the superior ilium from the inferior ischiopubic segment.
  • Imaging should include plain radiographs, Judet views and often CT.
  • Options include hemispheric component with plating, cup-cage, pelvic distraction and custom triflange.
Finding: These reviews define the workup and construct families for pelvic discontinuity.
Clinical implication: Do not teach pelvic discontinuity as a Paprosky label only; it is a mechanical problem requiring pelvic stability. A discontinuous pelvis needs a construct that bridges or unitises the columns.
Limitation: Treatment is complex and evidence is mainly cohort/review level.
Source: Abdel, Trousdale and Berry, Journal of the AAOS, 2017; Hasenauer, Paprosky and Sheth, 2018
Verify on PubMed (PMID 28350548)
Evidence

Custom triflange outcomes

Cohort studies and systematic review
Key Findings:
  • Taunton's original 57-patient cohort reported 95 percent freedom from triflange revision and an 81 percent rate of stable component with healed discontinuity at mid-term.
  • De Martino's systematic review of 579 triflange cups found 82.7 percent revision-free survivorship with a 29 percent overall complication rate; dislocation 11 percent and infection 6.2 percent were most common.
  • Sershon's 20-year, 50-patient series reported 28 percent major complications with dislocation again leading at 12 percent, reinforcing the need to counsel about surgical magnitude.
Finding: These papers support custom triflange as a powerful but high-risk reconstruction option.
Clinical implication: Custom triflange is an important option, not a benign shortcut; counsel about dislocation, infection, nerve injury and reoperation. Useful for severe defects, but complication risk is part of the indication discussion.
Limitation: Mostly non-randomised complex revision cohorts.
Source: Taunton et al., Clinical Orthopaedics and Related Research, 2012; De Martino et al., Journal of Arthroplasty, 2019; Sershon et al., 2021
Verify on PubMed (PMID 31213338)
Evidence

Femoral component revision

Review
Key Findings:
  • Femoral revision requires understanding failure mechanism, bone defect classification and extraction method.
  • Bone loss in the proximal femur is a major determinant of fixation strategy.
  • Reconstructive options must be selected according to defect and fixation zone.
Finding: This review supports the femoral assessment and reconstruction framework.
Clinical implication: Teach femoral revision as a fixation-zone problem rather than a list of stems. Classify the defect and fix beyond it.
Limitation: Narrative review.
Source: Brown et al., Orthopedics, 2016
Verify on PubMed (PMID 27575035)
Evidence

ETO and tapered fluted stems

Technique article and cohort study
Key Findings:
  • Wyles describes the laterally based Paprosky and anteriorly based Wagner ETO at roughly 12 to 16 cm from the trochanteric tip, with radiographic union reported in 98 percent and clinically relevant fragment migration over 1 cm in only 7 percent.
  • ETO technique emphasises preserving vastus and abductor attachments, rounded osteotomy corners and secure cable or Luque-wire closure.
  • Fink's 46-femur cohort of modular fluted tapered stems with distal interlocking screws in Vancouver B3 fractures with Paprosky IIIA to IV defects achieved 91.3 percent bony ingrowth, 93.5 percent fracture union and only one non-progressive subsidence at a mean 48.8 months.
Finding: These sources support detailed femoral technique and fixation planning.
Clinical implication: Include the actual extraction and fixation strategy, not just 'revise the stem'. Controlled extraction preserves bone; stable distal fixation reconstructs the femur.
Limitation: ETO technique and stem choice are surgeon- and implant-dependent.
Source: Wyles et al., JBJS Essential Surgical Techniques, 2023; Fink et al., Bone and Joint Journal, 2024
Verify on PubMed (PMID 38555949)
Evidence

Extended trochanteric osteotomy technique and outcomes

Surgical technique with outcome data
Key Findings:
  • The posterior longitudinal limb should run approximately 12 to 16 cm distal to the greater trochanteric tip; the final length is dictated by stem length, distal ingrowth or cement, and any distal hardware.
  • Radiographic and clinical union is achieved in 98 percent of patients, mean fragment migration before union is 3 mm, and migration over 1 cm occurs in only 7 percent of hips.
  • Ten-year survivorship free of revision for aseptic femoral loosening, free of component removal, and free of any reoperation was 97 percent, 91 percent and 82 percent respectively.
Finding: This technique paper quantifies why ETO is a safe, controlled extraction method.
Clinical implication: ETO is a reliable, vascularity-preserving exposure tool, not a complication; quote union and migration figures when justifying it in the viva. A correctly executed ETO heals in about 98 percent of hips with minimal trochanteric migration.
Limitation: Single high-volume institution; results may not generalise to lower-volume settings.
Source: Wyles et al., JBJS Essential Surgical Techniques, 2023 (Mayo Clinic)
Verify on PubMed (PMID 38282724)

Clinical Scenarios

Practise clinical reasoning and management decisions out loud

Viva scenarioStandard
Clinical prompt

“A patient presents with a painful loose acetabular component. AP pelvis shows superior migration and medial wall deficiency. CT suggests poor posterior column support but no clear acute infection.”

Viva scenarioAdvanced
Clinical prompt

“A well-fixed cementless femoral stem must be removed during revision THA. The proximal femur is thin and there is concern that extraction will fracture the femur.”

Viva scenarioAdvanced
Clinical prompt

“Intra-operatively, during a revision THA for a loose cup, you find motion between the superior and inferior hemipelvis when you stress the acetabulum. CT had shown medial migration and a broken Kohler line.”

References


  1. Sanghavi SA, Paprosky WG, Sheth NP. Evaluation and Management of Acetabular Bone Loss in Revision Total Hip Arthroplasty: A 10-year Update. J Am Acad Orthop Surg. 2024;32(10):e466-e475. doi:10.5435/JAAOS-D-23-00645.
  2. Fryhofer GW, Ramesh S, Sheth NP. Acetabular reconstruction in revision total hip arthroplasty. J Clin Orthop Trauma. 2020;11(1):22-28. doi:10.1016/j.jcot.2019.11.004.
  3. Hasenauer MD, Paprosky WG, Sheth NP. Treatment options for chronic pelvic discontinuity. J Clin Orthop Trauma. 2018;9(1):58-62. doi:10.1016/j.jcot.2017.09.009.
  4. Abdel MP, Trousdale RT, Berry DJ. Pelvic Discontinuity Associated With Total Hip Arthroplasty: Evaluation and Management. J Am Acad Orthop Surg. 2017;25(5):330-338. doi:10.5435/JAAOS-D-15-00260.
  5. Taunton MJ, Fehring TK, Edwards P, Bernasek T, Holt GE, Christie MJ. Pelvic discontinuity treated with custom triflange component: a reliable option. Clin Orthop Relat Res. 2012;470(2):428-434. doi:10.1007/s11999-011-2126-1.
  6. De Martino I, Strigelli V, Cacciola G, et al. Survivorship and Clinical Outcomes of Custom Triflange Acetabular Components in Revision Total Hip Arthroplasty: A Systematic Review. J Arthroplasty. 2019;34(10):2511-2518. doi:10.1016/j.arth.2019.05.032.
  7. Sershon RA, McDonald JF 3rd, Nagda S, Hamilton WG, Engh CA Jr. Custom Triflange Cups: 20-Year Experience. J Arthroplasty. 2021;36(9):3264-3268. doi:10.1016/j.arth.2021.05.005.
  8. Brown JM, Mistry JB, Cherian JJ, et al. Femoral Component Revision of Total Hip Arthroplasty. Orthopedics. 2016;39(6):e1129-e1139. doi:10.3928/01477447-20160819-06.
  9. Wyles CC, Hannon CP, Viste A, et al. Extended Trochanteric Osteotomy in Revision Total Hip Arthroplasty. JBJS Essent Surg Tech. 2023;13(3):e21.00003. doi:10.2106/JBJS.ST.21.00003.
  10. Jones SA. Impaction Grafting Made Easy. J Arthroplasty. 2017;32(9S):S54-S58. doi:10.1016/j.arth.2017.02.045.
  11. Lee JM, Kim TH. Acetabular Cup Revision Arthroplasty Using Morselized Impaction Allograft. Hip Pelvis. 2018;30(2):65-77. doi:10.5371/hp.2018.30.2.65.
  12. Fink B, Ahmadian A, Sax FH, Schuster P. Revision total hip arthroplasty using a modular fluted, tapered revision femoral component and interlocking screws in Vancouver B3 periprosthetic fractures with insufficient bone at the isthmus. Bone Joint J. 2024;106-B(4):344-351. doi:10.1302/0301-620X.106B4.BJJ-2023-0899.R1.
  13. Wyles CC, Hannon CP, Viste A, Perry KI, Trousdale RT, Berry DJ, Abdel MP. Extended Trochanteric Osteotomy in Revision Total Hip Arthroplasty. JBJS Essent Surg Tech. 2023;13(3):e21.00003. doi:10.2106/JBJS.ST.21.00003.
Exam day cheat sheet
Revision THA Bone Loss Cheat Sheet

Workup

  • History, op notes and implant details
  • ESR/CRP ± aspiration
  • AP pelvis, lateral and full femur
  • Judet views for columns
  • CT for discontinuity/version/bone stock

Acetabulum

  • Paprosky I/II: porous shell
  • IIIA: shell plus augment/jumbo cup
  • IIIB: poor columns, plan backup
  • Discontinuity: cup-cage/triflange/distraction
  • Restore hip centre and host fixation

Femur

  • Classify Paprosky femur
  • Plan extraction and ETO
  • Fix beyond deficient bone
  • Restore length, offset and version
  • Prepare fracture and salvage options

“Exclude infection, map bone loss, classify acetabulum and femur, then choose a construct that obtains stable fixation.”

Editorially reviewed — transparent references and correction processPublished by OrthoVellum Medical Education TeamEditorial boardMethodologyReview policy
Educational disclosure

Educational content is reviewed for source visibility, editorial coherence, and correction readiness.

No individual clinician credential is claimed unless a named person is shown.

Verify before clinical use; this is not medical advice or a substitute for local guidance.

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