Paprosky classification drives fixation strategy: where can I still achieve reliable fixation β metaphysis, diaphysis, or neither?
- The classification is a fixation-zone algorithm: Type I proximal fixation possible; Types II-IIIA diaphyseal fixation with cylindrical or tapered stems; IIIB tapered fluted titanium; IV bypass or replace the femur.
- Fluted tapered titanium stems gain axial stability from the taper and rotational stability from the flutes β they need only 2 to 3 cm of diaphyseal contact, which is why they work in IIIB where 6-inch cylindrical stems do not.
- Extensively porous-coated cobalt-chrome cylindrical stems need 4 to 6 cm of scratch-fit; failure rates rise sharply in IIIB (classically up to 20 percent or more) and stress shielding is common with stems 16.5 mm and larger.
- Varus remodelling of the proximal femur mandates consideration of an extended trochanteric osteotomy to allow neutral reaming and avoid distal-lateral cortical perforation.
- The deficient calcar is managed by bypassing it β modern revision stems do not rely on calcar support; the modular proximal body restores offset, version and length independently of distal fixation.
- βAsk for the full-length femur film: isthmus quality, cortical thickness (aim for cortices at least 2 mm thick over the fixation zone), canal diameter, varus remodelling, stem tip position and any distal pedestal.
- βIn IIIB and IV, an extensively coated cylindrical stem is the classic wrong answer β the exam wants a fluted tapered modular stem or, for Type IV, impaction grafting, APC or proximal femoral replacement.
- βCemented long stems retain a role in the elderly, low-demand or irradiated femur where bone ingrowth cannot be expected.
IIIA versus IIIB hinges on whether greater than 4 cm of intact diaphysis is available for scratch-fit. This single measurement changes the implant: cylindrical stems are acceptable in IIIA but have unacceptable failure rates in IIIB, where the fluted tapered stem is the answer.
Large-diameter extensively coated cobalt-chrome monoblocks (16.5 mm and above) cause marked proximal stress shielding and load the stem tip β risk of thigh pain, periprosthetic fracture at the tip, and difficult future revision of a well-ingrown stem.
Modular fluted tapered stems can subside (undersizing, line-to-line reaming errors) and carry a small but real risk of modular junction fracture and fretting corrosion, especially with a large patient, small junction, and unsupported proximal body.
A femur remodelled into varus reamed with a straight stem will perforate the lateral cortex anterolaterally. Recognise it on the AP femur preoperatively and plan an extended trochanteric osteotomy to redirect the reamer down the true canal.
Principles: Where Is the Fixation Zone?
Revision femoral surgery is a problem of achieving durable fixation in compromised bone. Every decision follows from a single question: what bone remains that can support an implant?
- Metaphysis intact (Type I) β primary-type fixation still possible.
- Metaphysis gone, diaphysis intact (Type II, IIIA) β move fixation distally into the diaphysis.
- Diaphysis compromised (IIIB) β fixation must be achieved in a short, often capacious segment: only a tapered fluted design can do this reliably.
- No isthmus (Type IV) β the femur cannot grip an uncemented stem. Options: rebuild the tube (impaction grafting), cement into what remains (elderly), replace the proximal femur with allograft plus stem (APC), or replace it with metal (proximal femoral replacement).
Two further principles:
- Bypass defects by at least two cortical diameters of intact bone (relevant for cortical perforations, stress risers, and old screw holes) to reduce periprosthetic fracture risk.
- Restore the abductor mechanism β a perfectly fixed stem with a detached trochanter is a failed hip. Trochanteric fixation and soft-tissue strategy is part of the plan, not an afterthought.
Radiographic Assessment
Obtain AP pelvis, AP and lateral full-length femur including the knee (rules out distal deformity, old hardware, and defines total canal length). CT adds value for cortical thickness mapping, version, and occult lysis.
Read the femur systematically:
- Fixation status of the existing stem β for cemented stems, Barrack cementation grade and Harris loosening criteria; for cementless, Engh criteria (spot welds, absence of reactive lines around the coated portion, calcar rounding, pedestal).
- Level of bone loss β is cancellous metaphyseal bone present? Is the calcar intact, thinned, or absent? Where does structurally supportive cortex begin?
- Isthmus quality β measure the length of diaphysis with parallel, intact inner cortices distal to the defect. Greater than 4 cm supports a cylindrical or tapered stem (IIIA); less than 4 cm mandates a tapered design (IIIB).
- Cortical thickness β cortices thinned to less than 2 mm over the intended fixation zone will not hold a press-fit stem and are at high risk of intraoperative fracture; consider prophylactic cabling or a different strategy.
- Canal diameter β a canal wider than roughly 18 to 19 mm with thin cortices ("stovepipe") predicts poor scratch-fit; ectatic canals push towards Type IV solutions.
- Remodelling into varus β draw the proximal and distal canal axes; angulation with a lateralised greater trochanter means straight reamers will exit laterally. Plan an ETO.
- Stress risers β old screw holes, cement mantle defects, previous perforations; plan stem length to bypass by two cortical diameters.
An extended trochanteric osteotomy sacrifices proximal bone to gain access. If a IIIA femur has only 5 cm of isthmus and the ETO consumes part of it, you have created a IIIB β so choose the stem for the femur as it will be after the osteotomy, not as it is on the preoperative film.
Paprosky Classification in Detail
- Metaphysis
- Minimal cancellous loss, calcar largely intact
- Diaphysis
- Intact
- Typical scenario
- Failed resurfacing, early cementless failure
- Preferred reconstruction
- Primary-type cementless (fully coated or tapered wedge) or extensively coated stem
- Metaphysis
- Extensive cancellous loss, calcar deficient
- Diaphysis
- Intact
- Typical scenario
- Loose cemented stem with proximal lysis
- Preferred reconstruction
- Diaphyseal fixation: extensively coated cylindrical or fluted tapered stem
- Metaphysis
- Non-supportive
- Diaphysis
- Greater than 4 cm scratch-fit available
- Typical scenario
- Long-standing loose stem, moderate lysis
- Preferred reconstruction
- Extensively coated cylindrical (canal less than about 19 mm) or modular fluted tapered
- Metaphysis
- Non-supportive
- Diaphysis
- Less than 4 cm scratch-fit
- Typical scenario
- Extensive lysis to and beyond isthmus
- Preferred reconstruction
- Modular fluted tapered titanium stem β cylindrical stems fail
- Metaphysis
- Non-supportive
- Diaphysis
- No reliable isthmus, ectatic canal
- Typical scenario
- Multiply revised femur, massive osteolysis, periprosthetic fracture nonunion
- Preferred reconstruction
- Impaction grafting (young), cemented long stem (elderly/irradiated), APC, or proximal femoral replacement
Key discriminators to state in the exam:
- I versus II: is the metaphyseal cancellous bone supportive?
- II versus III: does the bone loss extend into the metadiaphysis?
- IIIA versus IIIB: greater or less than 4 cm of diaphyseal scratch-fit.
- III versus IV: is there any isthmus capable of gripping a stem at all?
Revision Stem Options: Design Rationale
Extensively porous-coated cobalt-chrome monoblock (historic workhorse) β the classic example being the fully coated cylindrical stem popularised by Engh and Paprosky.
- Mechanism: a cylindrical distal geometry achieving 4 to 6 cm of cortical "scratch-fit" in the diaphysis; porous coating along the whole stem allows ingrowth wherever bone contacts.
- Indications: Types I, II and IIIA with canal diameter below roughly 18 to 19 mm and reasonable cortical thickness.
- Technique points: ream 0.5 mm under the stem diameter (per system); bow-related issues appear with stems longer than about 200 mm β use a curved (bowed) stem or risk anterior cortical perforation; achieve axial and rotational stability on trialling before committing.
- Strengths: decades of survivorship data β 95 to 97 percent survivorship in II and IIIA at 10 to 15 years in classic series; monoblock avoids junction problems.
- Weaknesses:
- Stress shielding β stiff cobalt-chrome, worse with diameters 16.5 mm and above; proximal bone resorbs, complicating any future revision.
- Failure in IIIB β inadequate scratch-fit length; historical failure rates around 20 percent or worse.
- Distal fracture risk β tip loading in an osteopenic femur; extraction of a well-fixed extensively coated stem is formidable (requires ETO plus trephines).
- Monoblock design fixes version and offset at the moment of impaction β limited ability to fine-tune stability.
- Fixation principle
- 4-6 cm diaphyseal scratch-fit, ingrowth
- Best for
- II, IIIA with canal less than about 19 mm
- Key weakness
- Stress shielding, IIIB failure, distal fracture, hard to extract
- Fixation principle
- Taper = axial stability; flutes = rotational; needs 2-3 cm contact
- Best for
- II, IIIA, IIIB, B2/B3 fractures β current workhorse
- Key weakness
- Subsidence if undersized; modular junction fracture/corrosion
- Fixation principle
- Cement interlock
- Best for
- Elderly, irradiated, staged infection
- Key weakness
- Poor interlock in sclerotic canals
- Fixation principle
- Cemented polished taper in impacted allograft
- Best for
- Young Type IV β restores bone stock
- Key weakness
- Fracture, subsidence, technically demanding
- Fixation principle
- Stem cemented in bulk allograft, united to host
- Best for
- Young Type IV with abductor reconstruction need
- Key weakness
- Nonunion, resorption, infection
- Fixation principle
- Endoprosthesis, distal fixation
- Best for
- Elderly low-demand Type IV, salvage
- Key weakness
- Instability (use dual mobility), loosening
Operative Strategy: Fluted Tapered Stem via Posterior Approach with ETO (PIPADRAW)
- Position: lateral decubitus on a radiolucent table, well-padded supports, whole limb draped free including knee.
- Imaging and equipment: full-length calibrated femur films; image intensifier available; company-specific extraction kit, high-speed burr, flexible osteotomes, trephines, cement removal instruments (or ultrasonic), cerclage cables, revision stem system with trials, allograft available, dual mobility or constrained options on the shelf.
- Preparation: exclude infection preoperatively (inflammatory markers, aspiration for culture and synovial white cell count); send at least 5 intraoperative tissue samples with separate instruments; tranexamic acid, cross-match, cell salvage.
- Approach: posterior approach with extended proximal and distal exposure; identify and protect the sciatic nerve.
- Dissection / removal: dislocate, remove head; attempt stem extraction in situ; if fixed stem or long cement column, perform an extended trochanteric osteotomy β length templated to reach the stem tip or cement plug while preserving 4 to 5 cm of distal diaphysis; osteotomise one third of the canal circumference laterally, hinge on vastus lateralis and anterior soft tissues; prophylactic cerclage cable distal to the osteotomy before reaming.
- Reconstruction: sequential conical reaming by hand down the true canal axis to firm endosteal cortical engagement over 2 to 3 cm minimum; insert the fluted taper to templated depth with reproducible advancement per blow ceasing to advance; test axial (impactor load) and rotational stability; trial proximal bodies for length, offset, version; trial reduction with stability testing through full arc; commit proximal body, engage taper cleanly and dry.
- At-risk structures: sciatic nerve (posterior retraction, lengthening greater than about 4 cm), femoral cortex (perforation with straight reamers in a varus femur β this is the ETO indication), lateral cortex at ETO hinge, medial femoral circumflex remnants.
- Fixation of osteotomy / closure: reduce the ETO fragment around the proximal body; two or three cerclage cables; consider trochanteric claw-cable device if the fragment is fractured or the abductors avulsed; repair posterior capsule and short external rotators; layered closure over a drain if preferred.
- Aftercare: check radiograph as the subsidence baseline; toe-touch to partial weight bearing 6 weeks (protects ETO and permits taper settling), then progressive loading; posterior precautions; radiographs at 6 weeks, 3 months, 1 year measuring subsidence against the baseline.
- Pitfalls and salvage: subsidence greater than 10 mm with instability β re-revise with a larger taper or longer stem; ETO nonunion (uncommon with cables, most unite) β revision fixation with grafting; intraoperative fracture β cables plus longer bypass; irreducible instability β dual mobility or constrained liner.
Straight rigid reamers introduced through a varus proximal femur are directed into the anterolateral cortex. Cortical perforation converts a IIIA reconstruction into a IIIB or fracture scenario. Recognise varus remodelling on the AP femur and plan the ETO from the outset β it also makes safe stem and cement extraction dramatically easier and protects the abductor attachment.
Managing the Deficient Calcar and the Trochanter
The calcar:
- Modern revision philosophy bypasses the calcar rather than reconstructing it β no modern revision stem depends on calcar support. Calcar-replacing proximal bodies restore soft-tissue tension and version, not load transfer.
- Residual proximal shell bone should be preserved and closed around the stem β even non-structural proximal bone contributes to soft-tissue attachment, vascularity and future revisions, and Wagner-type remodelling can partially restore it.
- Strut allograft with cables can reinforce a severely thinned medial or lateral cortex or an ETO in poor bone.
The trochanter and abductors:
- ETO fragment: cerclage cables (usually two or three); avoid overtightening on a thin fragment.
- Trochanteric escape or fracture: claw-plate or grip-cable device; accept fibrous union with reasonable function in the low-demand patient β repeated fixation attempts in avascular bone often fail.
- Absent abductors (multiply revised, PFR): highest dislocation risk of any hip scenario β use dual mobility or constrained liners, consider abductor reconstruction to the implant or trochanteric slide, and counsel the patient about limp and lifelong precautions.
Outcomes by Paprosky Class and Complications
- Types I-II: excellent β survivorship of diaphyseal-fixing stems above 95 percent at 10 years in classic series.
- IIIA: extensively coated cylindrical stems 96 to 97 percent survivorship in Paprosky's own series; fluted tapered stems comparable at mid-term.
- IIIB: cylindrical stems historically failed in roughly one in five or worse; fluted tapered stems restored survivorship to around 90 to 95 percent at mid-term β this outcome differential is the single most examinable fact in the topic.
- IV: all options carry higher complication rates. Impaction grafting gives durable results in experienced centres with the polished taper technique but with meaningful fracture and subsidence rates; PFR survivorship is limited more by instability and infection than fixation.
Complications across revision femoral surgery:
- Dislocation β the commonest complication of revision hip arthroplasty overall; mitigate with restored offset and version (modularity), soft-tissue repair, and liberal use of dual mobility in abductor-deficient hips.
- Periprosthetic fracture β intraoperative (impaction, reaming, extraction) and late tip fractures; prophylactic cerclage and two-cortical-diameter bypass are the preventive levers.
- Subsidence β tapered stems; usually early and self-limiting below 5 mm.
- Infection β always exclude before aseptic revision; multiple samples intraoperatively.
- Stress shielding β stiff large-diameter cobalt-chrome stems; favour titanium tapers in capacious canals.
- Modular junction failure β fracture and fretting; support the junction, size appropriately.
Extensively coated stems in femoral revision
The Wagner self-locking revision stem
Femoral impaction grafting with a cemented polished stem
Fluted tapered modular stems in severe femoral bone loss
MDDNPaprosky Femoral Fixation Ladder
Hook:Walk down the femur: metaphysis, long diaphysis, short diaphysis, nothing β the fixation ladder descends as the bone loss ascends.
TAFRFluted Taper Stability
Hook:Taper stops it sinking, flutes stop it spinning β and it needs only 2 to 3 cm of bone to do both.
Guidelines, Registries & Global Practice
- Registry evidence: the NJR (England and Wales), AOANJRR (Australia), SHAR (Sweden) and AJRR (United States) consistently report aseptic loosening, infection, dislocation and periprosthetic fracture as the leading reasons for femoral re-revision; registry data show the international migration from cylindrical cobalt-chrome to fluted tapered titanium stems for major bone loss over the last two decades, and steadily rising use of dual mobility in revision.
- AAOS and NICE address hip arthroplasty broadly; neither prescribes a stem for a given Paprosky class β implant choice remains a principles-based surgical decision, which is exactly how examiners frame it.
- BOA/BHS revision network guidance (United Kingdom) supports concentrating complex (Type IIIB and IV) revisions in higher-volume revision units with allograft access and multidisciplinary infection services β a model echoed in several European systems.
- Resource-limited settings: modular revision systems, bone banks and megaprostheses may be unavailable. Pragmatic alternatives include long cemented stems, monoblock Wagner-type tapers (cheaper, no junction), and cement-in-cement techniques; the classification and its fixation logic remain universally applicable even where the implant menu is narrow.
- Fresh-frozen allograft availability (impaction grafting, APC) varies enormously worldwide with regulatory and tissue-banking infrastructure β this drives genuine regional variation in Type IV management, with PFR used earlier where allograft is unavailable.
Controversies & Areas of Uncertainty
- Modular versus monoblock tapered stems: modularity aids intraoperative flexibility but introduces junction fracture and corrosion risk; comparative series show similar survivorship, and several units have returned to monoblock tapers for straightforward IIIA/IIIB femurs, reserving modularity for complex version or length problems.
- How short can the fixation segment be? The 2 to 3 cm figure for tapered stems is empirical; distal fixation into a short supracondylar segment blurs into "total femoral" territory and the failure threshold is not precisely defined.
- Impaction grafting versus tapered stems in Type IV: bone-stock restoration versus reproducibility; impaction grafting results are strongly centre-dependent, and many surgeons now attempt a tapered stem with cables even in near-Type IV femurs.
- PFR versus APC in the younger Type IV patient: APC restores bone but risks nonunion and resorption; PFR is reliable early but mortgages the future. No randomised data exist and practice follows unit expertise.
- Routine dual mobility in revision: increasingly adopted given dislocation dominance in registries, but with unresolved questions about intraprosthetic dislocation and long-term wear in younger patients.