🦶 Diabetic Foot Amputation Level Decision Simulator
This simulation helps users make informed decisions about the level of amputation required for diabetic foot complications. It includes factors such as wound healing, patient comorbidities, and quality of life considerations to ensure that each decision is tailored to the individual patient's needs.
When Amputation Becomes the Right Answer — WIfI and the Ischemia-Infection-Wound Triad
Amputation in the diabetic foot is never a single decision but the endpoint of a triage process weighing wound extent, arterial perfusion, and infection severity. The Society for Vascular Surgery WIfI classification (Wound, Ischemia, foot Infection) formalizes this triage, stratifying limbs by 1-year amputation risk and revascularization benefit. Recognizing true indications — versus situations where revascularization or further debridement could salvage the limb — is the first and most consequential step.
- 2014: WIfI classification (Society for Vascular Surgery)
- ~85%: Non-traumatic LE amputations (preceded by a foot ulcer)
- >50%: Diabetes-attributable amputations (of all non-traumatic LE amputations)
- Wet gangrene: Emergent indication (sepsis source control, no delay)
Indications, urgency stratification, and the WIfI framework
Core indications for amputation in the diabetic foot: • Non-reconstructable tissue loss — extensive necrosis beyond salvageable margins despite debridement • Wet (infected) gangrene or necrotizing soft-tissue infection — emergent source control to prevent systemic sepsis • Dry gangrene with clear demarcation — often managed with delayed, staged amputation once demarcation is complete • Failed revascularization — attempted endovascular or open bypass unable to restore adequate perfusion • Intractable ischemic rest pain unresponsive to revascularization • Non-ambulatory patient with recurrent, non-healing ulceration where limb salvage no longer serves function
Urgency stratification: • Emergent: systemic sepsis, wet gangrene, necrotizing fasciitis — surgery within hours, guillotine/open technique often first stage • Urgent: progressive infection despite antibiotics and debridement, uncontrolled pain — within 24-72 hours • Planned/staged: dry gangrene awaiting demarcation, elective level determination after vascular optimization
WIfI classification (Society for Vascular Surgery, 2014): • Wound (W0-3): none, small superficial, deep/extensive, extensive with exposed bone • Ischemia (I0-3): graded by ABI, toe pressure, and TcPO2 (see Stage 2) • foot Infection (fI0-3): none, mild (local, <2cm erythema), moderate (>2cm or deeper), severe (systemic inflammatory response) • Combined W-I-fI stage predicts both 1-year amputation risk and likely benefit from revascularization — high W and I stages with low revascularization benefit favor primary amputation
Quantifying Perfusion — Why ABI Fails in Diabetes and What Replaces It
Ankle-brachial index (ABI), the workhorse perfusion test in general vascular practice, is frequently unreliable in diabetic patients because medial arterial calcification (Mönckeberg sclerosis) makes tibial vessels incompressible, producing falsely elevated or unobtainable readings. Toe pressures, toe-brachial index (TBI), and transcutaneous oxygen pressure (TcPO2) largely bypass this artifact and are the preferred quantitative tools for predicting wound-healing potential at a given amputation level.
- >1.3: ABI falsely elevated threshold (suggests incompressible vessels)
- <0.7: Abnormal TBI (digital vessels rarely calcify)
- >30–40 mmHg: Toe pressure for healing (minimum for reliable healing)
- <20 mmHg: TcPO2 poor-healing threshold (revascularize before amputating)
Perfusion metrics and their healing-prediction thresholds
Ankle-Brachial Index (ABI): • Ratio of ankle systolic pressure to brachial systolic pressure • Normal: 0.9–1.3; PAD: <0.9; severe PAD: <0.4 • Limitation in diabetes: medial arterial calcification stiffens vessel walls, preventing full compression by the cuff → falsely elevated or "incompressible" (>1.3) readings that mask underlying severe disease
Toe-Brachial Index (TBI) and toe pressure: • Digital arteries are less prone to medial calcification than tibial vessels — more reliable in diabetics • Normal TBI: >0.7; abnormal: <0.7 • Absolute toe pressure >30–40 mmHg generally predicts adequate healing potential for minor amputation; <30 mmHg predicts poor healing without revascularization
Transcutaneous Oxygen Pressure (TcPO2): • Measures oxygen diffusing to skin surface via a heated electrode — directly reflects local tissue oxygenation, the most proximate driver of wound healing • >40 mmHg: good healing likelihood at the tested level • 20–40 mmHg: indeterminate zone — strongly consider revascularization before committing to a level • <20 mmHg: healing without revascularization is unlikely; a more proximal level or revascularization is required
Angiosome concept: • The foot is divided into vascular territories (angiosomes) each supplied by a specific source artery (e.g., posterior tibial → medial plantar; peroneal → lateral calcaneal) • Direct revascularization of the angiosome supplying the wound/planned flap improves healing rates compared with indirect (collateral-dependent) revascularization • Angiosome mapping informs both revascularization target selection and flap design for minor amputations
WIfI Ischemia grading (I0–3) combines ABI, toe pressure, and TcPO2 into a single 0–3 severity grade used alongside Wound and Infection grades to stratify amputation risk and revascularization benefit.
Toe, Ray, and Transmetatarsal Amputation — Preserving Forefoot Function
Whenever adequate perfusion and infection control permit, the guiding surgical principle is to amputate at the most distal level compatible with healing — preserving as much foot length and function as possible. Digital, ray, and transmetatarsal amputations (TMA) each have specific indications, technical considerations, and characteristic failure modes, particularly transfer lesions from altered forefoot biomechanics.
- Adequate perfusion: TMA plantar flap need (required for flap viability)
- Elevated: Ray amputation transfer risk (adjacent MT head overload)
- Minimal: Toe amputation gait impact (near-normal ambulation)
- Equinus risk: TMA post-op tendon issue (consider Achilles tenotomy)
Level-specific indications, technique, and biomechanical consequences
Digital (toe) amputation: • Indicated for localized gangrene or osteomyelitis confined to a single toe • Preserve maximal length — disarticulate at the most distal viable joint • Minimal biomechanical disturbance to gait; custom shoe filler often sufficient
Ray amputation: • Removes the toe together with all or part of its metatarsal, indicated for isolated ray involvement (osteomyelitis extending into the metatarsal, or infection tracking along a single ray) • Advantage: removes infected bone while preserving the majority of forefoot width • Complication to watch: transfer lesions — loss of one metatarsal head shifts weight-bearing load onto adjacent metatarsal heads, which are now overloaded and prone to new ulceration; first- and fifth-ray amputations are particularly biomechanically consequential (borders of the forefoot)
Transmetatarsal amputation (TMA): • Indicated when multiple rays/forefoot are involved, or infection is too extensive for isolated ray amputation but the hindfoot and midfoot remain viable • Requires an adequately perfused, well-vascularized plantar flap — the plantar skin is thicker and better vascularized than dorsal skin, so the incision is designed with a long plantar flap folded over the bone end • Functional outcome is good with proper shoe modification (rigid rocker-sole shoe, toe filler) — most patients ambulate without a prosthesis • Higher-level midfoot amputations (Lisfranc tarsometatarsal, Chopart midtarsal) are used less frequently due to severe biomechanical imbalance: the intact posterior musculature (Achilles/gastrocnemius-soleus) overpowers the shortened forefoot lever arm, producing an equinovarus deformity that predisposes to new ulceration at the residual limb tip — Achilles tendon lengthening/tenotomy or tibialis anterior tendon transfer is frequently performed concurrently to rebalance the foot
Below-Knee vs. Above-Knee Amputation — Preserving the Knee Joint Whenever Possible
When minor amputation cannot achieve source control or the arterial supply cannot support forefoot healing, major (transtibial or transfemoral) amputation becomes necessary. The single most important principle at this stage is preserving the knee joint whenever biomechanically and vascularly feasible — the functional gap between a below-knee (BKA) and above-knee (AKA) amputation is enormous, driven largely by prosthetic energy expenditure.
- ~70–80%: BKA prosthetic ambulation (of appropriately selected patients)
- ~30–40%: AKA prosthetic ambulation (markedly lower, esp. elderly)
- +25%: BKA energy expenditure (above normal gait (Waters et al.))
- +65–100%: AKA energy expenditure (above normal gait)
Level selection biomechanics and factors favoring primary above-knee amputation
Below-knee (transtibial) amputation — preferred major level when feasible: • Preserves the native knee joint, which is the single strongest predictor of successful prosthetic ambulation • Requires adequate perfusion of the posterior myocutaneous (gastrocnemius) flap used to cover the tibial stump • Standard bone cut level: approximately 10–15 cm below the knee joint line (longer residual limb generally improves prosthetic lever arm and proprioception, but must balance against soft-tissue coverage/perfusion) • Classic long-posterior-flap technique (Burgess) remains the most widely used
Above-knee (transfemoral) amputation: • Reserved for non-reconstructable arterial disease extending proximal to a viable BKA level, failed BKA (stump necrosis/non-healing), fixed knee flexion contracture precluding prosthetic knee function, or extensive calf tissue loss/infection • Substantially higher energy cost of ambulation — many elderly, deconditioned, or cardiovascularly limited patients cannot achieve functional prosthetic use and instead become wheelchair-dependent
Energy expenditure data (classic gait studies, Waters et al. and subsequent literature): • Normal-gait energy expenditure = baseline • BKA ambulation: approximately 25% more energy than normal gait • AKA ambulation: approximately 65–100% more energy than normal gait • Bilateral amputation, or amputation combined with significant cardiopulmonary disease, further compounds this burden — a substantial fraction of dysvascular AKA patients never achieve functional community ambulation
Factors favoring primary AKA over an attempted BKA: • Fixed knee flexion contracture >20-30° unresponsive to conservative management • Non-ambulatory baseline functional status (wheelchair/bed-bound prior to amputation) — a longer, more complex BKA offers little functional benefit and adds healing risk • Extensive posterior calf necrosis/infection precluding a viable myocutaneous flap • Popliteal or more proximal arterial occlusion without revascularization option, such that a BKA stump would not receive adequate perfusion to heal
Predicting Healing Potential and Optimizing the Patient Before Committing to a Level
Perfusion data alone does not determine amputation level — nutritional status, glycemic control, and the possibility of revascularization must all be integrated before finalizing the surgical plan. The modern "toe and flow" multidisciplinary model pairs a podiatric/orthopedic surgeon with a vascular specialist so that revascularization, when feasible, precedes or accompanies amputation-level decision-making rather than being considered only after a failed healing attempt.
- >3.0 g/dL: Albumin threshold (associated with healing (Pinzur))
- >1,500/mm³: Total lymphocyte count (nutritional healing predictor)
- BASIL / BEST-CLI: Revascularize-first strategy (endovascular vs. open bypass)
- +15–20%: Post-revasc healing gain (typical improvement in probability)
Nutritional, glycemic, and revascularization optimization prior to definitive level selection
Nutritional and immunologic predictors of wound healing (classic Pinzur criteria, still widely referenced): • Serum albumin >3.0 g/dL — surrogate for visceral protein status and overall healing capacity • Total lymphocyte count >1,500/mm³ — surrogate for immunocompetence, relevant to infection control and healing • Severe malnutrition or lymphopenia below these thresholds is associated with markedly higher wound-healing failure and should trigger nutritional optimization (dietary consult, supplementation) when the clinical timeline allows
Glycemic control: • Poorly controlled diabetes (elevated HbA1c) impairs neutrophil function, collagen synthesis, and microvascular flow • Perioperative glucose targets (commonly 140–180 mg/dL inpatient) reduce surgical-site infection risk • Chronic glycemic optimization is ideal pre-operatively when the clinical urgency allows a delay
Smoking cessation: • Nicotine-mediated vasoconstriction and impaired oxygen delivery meaningfully reduce flap and wound healing rates — cessation counseling is a standard part of pre-amputation optimization
Revascularization-first strategy ("toe and flow" multidisciplinary model): • When TcPO2/toe pressures fall in the indeterminate-to-poor range (see Stage 2), revascularization — endovascular angioplasty/stenting or open bypass — is pursued before or concurrent with definitive amputation-level surgery whenever anatomically feasible • BASIL trial and the more recent BEST-CLI trial (2022) inform the choice between endovascular-first and surgical bypass-first strategies for chronic limb-threatening ischemia, generally favoring bypass with adequate autologous vein conduit in patients with reasonable surgical risk and life expectancy, and an endovascular-first approach in higher-risk patients or those with poor conduit • Successful revascularization commonly shifts feasible amputation level distally (e.g., converts a planned BKA into an achievable TMA) and improves healing probability at a given level by roughly 15–20 percentage points in reported cohorts
A TcPO2 of 25 mmHg at the ankle does not by itself mandate a below-knee amputation. If revascularization can plausibly raise regional perfusion above the 30–40 mmHg healing threshold, a staged approach — revascularize first, then reassess perfusion and attempt the most distal viable amputation level — frequently preserves significantly more function than an immediate proximal amputation based on a single pre-revascularization measurement.
Life After Amputation — Prosthetic Fitting, Functional Outcomes, and Long-Term Surveillance
The amputation level chosen has consequences that extend far beyond wound healing — it determines prosthetic options, expected ambulation status, fall risk, and even survival. Counseling patients and families about realistic functional goals by level, and establishing lifelong preventive foot care for the contralateral limb, is as much a part of the amputation-level decision as the surgery itself.
- ~50–70%: 5-year mortality, major amputation (reflects systemic vascular burden)
- ~50%: Contralateral amputation risk (within 5 years of first amputation)
- 6–8 weeks: BKA prosthetic fitting timeline (after shrinker/limb maturation)
- Markedly reduced: AKA community ambulation (especially in elderly dysvascular patients)
Functional outcomes, prosthetic pathway, and long-term surveillance by level
Toe / ray amputation: • Custom shoe filler or minor orthotic accommodation; near-normal gait pattern • Ongoing risk: transfer ulceration at adjacent, now-overloaded metatarsal heads — requires continued offloading footwear and periodic podiatric review
Transmetatarsal amputation (TMA): • Rigid rocker-sole shoe with a toe filler; occasionally a short ankle-foot orthosis (AFO) to assist forefoot lever-arm function • Mild gait alterations; higher long-term risk of recurrent ulceration on the residual foot compared with toe/ray level, due to altered pressure distribution across the truncated forefoot
Below-knee (transtibial) amputation: • Definitive transtibial prosthesis typically fitted 6–8 weeks post-operatively, once the residual limb has matured (shrinker/compression wrapping reduces post-operative edema) • The majority of appropriately selected patients (without severe cardiopulmonary limitation) achieve community ambulation with a prosthesis • Regular prosthetic and skin checks are essential — residual-limb skin breakdown is a recognized complication
Above-knee (transfemoral) amputation: • Transfemoral prosthesis with a mechanical or microprocessor-controlled knee unit; fitting and gait training are more prolonged and physically demanding • Prosthetic use rates are significantly lower in elderly dysvascular patients — many patients, particularly those with baseline cardiopulmonary limitation, achieve only household or non-ambulatory/wheelchair-level function • Elevated fall risk during prosthetic gait training and use
Long-term surveillance and prevention: • 5-year mortality after major (BKA/AKA) diabetic amputation is reported at approximately 50–70% in multiple cohorts — reflecting the systemic burden of peripheral artery disease, coronary disease, and renal disease that frequently coexist • Risk of contralateral limb amputation approaches 50% within 5 years of a first amputation, underscoring that the remaining limb requires the same IWGDF risk-category surveillance (see companion monofilament-screening protocol) applied at the highest-risk interval • A structured multidisciplinary post-amputation program — vascular surveillance, glycemic and cardiovascular risk-factor management, podiatric care of the contralateral foot, and prosthetic/rehabilitation follow-up — is essential to reducing both re-amputation and mortality risk
This simulation helps users make informed decisions about the level of amputation required for diabetic foot complications. It includes factors such as wound healing, patient comorbidities, and quality of life considerations to ensure that each decision is tailored to the individual patient's needs.
2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install