HomeObstetric AnesthesiaPostpartum Massive Transfusion Protocol

🩸 Postpartum Massive Transfusion Protocol

This simulation provides a detailed approach to managing massive transfusion in the setting of postpartum hemorrhage. It includes strategies for rapid blood…

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Recognizing Postpartum Hemorrhage Before It Becomes Catastrophic

Postpartum hemorrhage (PPH) is the leading cause of maternal death worldwide, and uterine atony accounts for 70–80% of cases. Visual estimation of blood loss chronically underestimates true losses by 30–50%; modern obstetric anesthesia relies on quantitative blood loss (QBL) measurement and simple bedside hemodynamic indices to trigger escalation before compensatory mechanisms fail.

  • ≥1000 mL: PPH definition (any birth) (or any loss with instability (ACOG))
  • ~70,000/yr: Global maternal deaths from PPH (leading single cause worldwide)
  • 70–80%: Uterine atony contribution (of all PPH cases)
  • ≥0.9–1.0: Shock Index MTP trigger (HR ÷ systolic BP)

Defining and quantifying postpartum hemorrhage

ACOG (2017) redefined PPH as cumulative blood loss ≥1000 mL, or blood loss accompanied by signs of hypovolemia, within 24 hours of birth, regardless of delivery route. This replaced the older, route-dependent thresholds (500 mL vaginal / 1000 mL cesarean) because visual estimation is unreliable — clinicians underestimate true loss by 30–50%, especially once losses exceed 1500 mL, because blood mixes with amniotic fluid and pools under drapes.

Quantitative blood loss (QBL) protocols — weighing blood-soaked sponges and laparotomy pads (1 g ≈ 1 mL) and using calibrated under-buttocks drapes with graduated canisters for suctioned blood — are now standard of care in obstetric units implementing hemorrhage bundles (AWHONN, CMQCC). QBL improves detection of loss ≥1000 mL and shortens the time to treatment escalation.

Shock Index — a simple bedside trigger

Shock Index (SI) = heart rate ÷ systolic blood pressure. In healthy, normovolemic pregnancy, SI is typically 0.7–0.9 because of physiologic tachycardia and lower baseline blood pressure. An SI ≥0.9–1.0 in the postpartum patient is a validated early trigger for significant hemorrhage (≥1500 mL) and for activating a massive transfusion protocol, often preceding a measurable drop in blood pressure by many minutes.

This matters because pregnant women compensate for blood loss extraordinarily well: blood volume expands by 40–50% (to ~100 mL/kg) by term, and sympathetic tone can maintain a "normal" blood pressure until 25–35% of blood volume (roughly 1500–2000 mL) is already lost. Waiting for hypotension to activate the MTP means the patient is already in decompensated shock — SI, tachycardia trend, and QBL together must trigger earlier.

A young, healthy parturient can lose 30% of her blood volume with a nearly normal blood pressure. By the time systolic pressure falls, she has typically already lost >1500–2000 mL — do not wait for hypotension to activate the MTP.

The 4 T's — causes to search for while resuscitating

While blood products are being mobilized, the team simultaneously hunts for the cause using the "4 T's" framework:

• Tone (~70–80%): uterine atony — boggy, poorly contracted uterus; risk factors include prolonged labor, chorioamnionitis, overdistension (twins, polyhydramnios), grand multiparity, magnesium sulfate use • Trauma (~20%): cervical/vaginal lacerations, uterine rupture, extension of cesarean incision, broad ligament hematoma • Tissue (~10%): retained placenta or placenta accreta spectrum, retained clots preventing contraction • Thrombin (~1%): coagulopathy — pre-existing (von Willebrand disease, ITP) or acquired (DIC from amniotic fluid embolism, severe preeclampsia/HELLP, prolonged bleeding itself)

First-line uterotonics (oxytocin infusion, then methylergonovine, carboprost, or misoprostol) and bimanual uterine massage are given in parallel with these first two stages — but when bleeding continues despite first-line measures and QBL/SI cross threshold, the anesthesia and obstetric teams move directly to MTP activation.

Massive Transfusion Protocol Activation

A Massive Transfusion Protocol (MTP) is a pre-defined, single-call activation pathway that mobilizes fixed coolers of blood components from the blood bank without waiting for individual product orders or crossmatch confirmation. In obstetric hemorrhage, seconds matter — MTP activation converts a fragmented, order-by-order transfusion process into an automatic, protocolized cascade.

  • ≥10 units PRBC: Classic MTP definition (in 24 h, or 4 in 1 h)
  • EBL >1500 mL: Obstetric MTP trigger (+ ongoing bleeding/instability)
  • <15 min: Cooler release time target (call to bedside arrival)
  • First cooler: Uncrossmatched O-neg use (while type & screen pending)

Activation criteria and the single-call system

Obstetric MTP activation criteria (adapted from ACOG, SMFM, and California Maternal Quality Care Collaborative hemorrhage bundles) generally include any of:

• Estimated/quantitative blood loss >1500 mL with ongoing bleeding • Shock Index ≥1.0 (or ≥1.7 in some validated obstetric-specific scales) despite initial resuscitation • Anticipated need for ≥4 units PRBC within the next hour • Persistent hypotension, tachycardia, or altered mentation attributable to hemorrhage • Visible large-volume hemorrhage (e.g., >150 mL/min) regardless of calculated totals

Activation is a single phone call ("Activate OB MTP, [unit/location]") to the blood bank, which triggers a pre-built standing order set — no individual product requisitions, no waiting for physician co-signature on each unit. This single-call design is the single biggest time-saver in hemorrhage bundles: studies show it can cut time-to-first-unit by more than half compared to conventional ordering.

The obstetric MTP differs from the trauma MTP mainly in trigger sensitivity: pregnant patients decompensate later but then crash faster, so obstetric protocols intentionally activate at lower blood-loss thresholds than trauma protocols.

The MTP cooler and logistics

Each MTP "round" or cooler typically contains a fixed bundle, released automatically and repeated until the sending team calls to stand down:

• Round 1: 6 units PRBC + 6 units FFP (or thawed plasma) + 1 apheresis platelet unit (or 6 pooled units) — approximating a 1:1:1 ratio • Subsequent rounds repeat the same ratio automatically unless ROTEM/TEG or the clinical team redirects • Cryoprecipitate (10-unit pool) is added by round 2 or based on fibrinogen/FIBTEM results • Uncrossmatched group O Rh-negative (or O-positive if Rh status allows) PRBC is used for the first unit(s) while type-and-screen/crossmatch is finalized in parallel — crossmatched blood typically substitutes in by round 2

A dedicated "runner" or pneumatic tube system, a massive-transfusion rapid infuser (e.g., Belmont or Level 1), and blood warmers (target infusate ≥37°C) must be staged at activation, not after the first cooler arrives.

Team roles and closed-loop communication

MTP activation triggers a structured team response, not just a blood order:

• Anesthesia: secures 2 large-bore IVs (14–16G) or central access, initiates rapid infusion, manages airway/hemodynamics, draws serial labs (VBG/ABG, ROTEM, fibrinogen, ionized calcium, lactate) • Obstetrics/surgery: pursues source control (uterotonics, bimanual compression, exam for lacerations, balloon tamponade, B-Lynch suture, uterine artery ligation, or hysterectomy if refractory) • Nursing: quantifies blood loss, documents products/times, manages warming and normothermia • Blood bank: releases products per protocol, tracks inventory, communicates critical lab values

Closed-loop, structured communication (SBAR-style updates every 15–30 minutes on EBL, vitals, and products given) and a single point person calling for escalation or stand-down prevents both under- and over-transfusion — a documented risk when informal, verbal ordering is used instead of a protocol.

Fixed-Ratio Resuscitation — Rebuilding Whole Blood from Components

Modern blood banking separates whole blood into components, but massive hemorrhage requires something functionally close to whole blood again. The fixed-ratio strategy — roughly 1 unit PRBC : 1 unit FFP : 1 unit platelets — was born from military and trauma data showing that early, balanced resuscitation reduces coagulopathy and mortality compared with RBC-heavy, plasma-delayed strategies.

  • 1:1:1: Target component ratio (PRBC : FFP : platelets)
  • ~300 mL / 55–65%: PRBC unit volume/Hct (raises Hb ~1 g/dL each)
  • ~20–30 min: FFP thaw time (unless pre-thawed on hand)
  • ↓ exsanguination: PROPPR trial finding (1:1:1 vs 1:1:2 by 24h)

Why fixed ratio, and where the evidence comes from

Early massive transfusion practice gave PRBC first and plasma/platelets later, once labs confirmed coagulopathy — but by the time INR and platelet counts return, dilutional and consumptive coagulopathy is already established, and correcting it is far harder than preventing it. Military experience in Iraq/Afghanistan and the civilian PROPPR trial (Holcomb et al., JAMA 2015, trauma population) demonstrated that resuscitating in a ~1:1:1 ratio of PRBC:FFP:platelets from the outset reduced death from exsanguination at 24 hours compared with a 1:1:2 ratio, without increasing complication rates.

Obstetric hemorrhage has unique features that make this logic even more compelling: pregnancy is a hypercoagulable, hyperfibrinolytic-primed state, amniotic fluid can trigger disseminated intravascular coagulation, and fibrinogen falls faster and further in PPH than in trauma of similar severity — obstetric coagulopathy can appear with EBL as low as 2000–2500 mL.

What each component actually delivers

• Packed red blood cells (PRBC): ~300 mL/unit, hematocrit 55–65%, restores oxygen-carrying capacity; each unit raises hemoglobin by roughly 1 g/dL in a non-bleeding adult (less during active hemorrhage). Warmed to ≥37°C before rapid infusion to avoid iatrogenic hypothermia.

• Fresh frozen plasma (FFP) / thawed plasma: ~250 mL/unit, contains all coagulation factors (including fibrinogen ~2 g/unit) at near-physiologic concentrations; replaces factors consumed and diluted during hemorrhage. Requires ABO compatibility; universal donor is AB plasma.

• Platelets: apheresis unit (~250–300 mL, equivalent to 6 pooled random-donor units) raises platelet count by roughly 30,000–50,000/µL; target platelet count during active massive hemorrhage is >50,000/µL (>100,000/µL if ongoing brisk bleeding or planned surgical intervention).

• Rapid infusion technology: a level-1 or Belmont rapid infuser delivers warmed products at up to 750 mL–1000 mL/min through large-bore access, essential once transfusion rates exceed what gravity or manual pressure bags can achieve.

A practical bedside approximation: for every 4 units of PRBC given, give roughly 4 units of FFP and 1 apheresis platelet pack — this reconstitutes something close to whole blood rather than diluted, factor-poor red cells alone.

Fixed ratio vs. goal-directed — not mutually exclusive

Fixed-ratio dosing is a starting strategy used in the first minutes of MTP, before laboratory or viscoelastic results are available — it is deliberately empirical. As soon as ROTEM/TEG and laboratory coagulation panels return (typically within 10–15 minutes of a point-of-care viscoelastic sample), obstetric anesthesia protocols shift toward goal-directed component dosing: giving cryoprecipitate specifically for low fibrinogen, platelets specifically for thrombocytopenia, and titrating rather than continuing 1:1:1 by default once the deficit is known. This blended approach — empirical ratio first, viscoelastic-guided correction as data arrive — is now favored over either pure strategy alone in most tertiary obstetric centers.

Fixed-ratio vs. viscoelastic (ROTEM/TEG)-guided transfusion strategy

ProductIndicationTrial DesignKey Result
Fixed-ratio (empirical) MTPFirst 10–15 min of activation, before labs returnDeliver PRBC:FFP:platelets ~1:1:1 automatically per cooler roundFastest to initiate, no lab delay, prevents dilutional coagulopathy
ROTEM/TEG goal-directedOnce viscoelastic result available (~10–15 min)Dose cryoprecipitate/fibrinogen for low FIBTEM/MA, platelets for platelet-driven deficit, FFP for clotting-time prolongationReduces unnecessary product exposure, targets the true PPH-specific defect (hypofibrinogenemia)
Standard coagulation panel (INR/aPTT/fibrinogen)Adjunct or when viscoelastic unavailableSend serial labs every 30–60 min; results lag 30–45 minWidely available, but too slow alone to guide real-time dosing in massive hemorrhage
Blended protocol (most tertiary centers)Throughout the MTP episodeStart fixed-ratio, transition to viscoelastic/lab-guided correction as data returnCombines speed of empirical dosing with precision of targeted correction

Hypofibrinogenemia — the Signature Coagulopathy of Obstetric Hemorrhage

Unlike trauma coagulopathy, which is driven mainly by dilution and acidosis, postpartum hemorrhage produces an early and disproportionate fall in fibrinogen — often the first and most predictive coagulation abnormality. Fibrinogen <2 g/L (200 mg/dL) at the time of admission for PPH is independently associated with progression to severe hemorrhage, making it the single most useful early lab in obstetric massive transfusion.

  • 400–650 mg/dL: Normal fibrinogen in late pregnancy (physiologically elevated vs 200–400 non-pregnant)
  • <200 mg/dL: Severe PPH risk threshold ((<2 g/L) — strong predictor of progression)
  • ~200 mg/unit: Cryoprecipitate fibrinogen yield (10-unit pool raises fibrinogen ~50–75 mg/dL)
  • 2–4 g IV: Fibrinogen concentrate dose (or per ROTEM FIBTEM-A5 deficit)

Why fibrinogen falls first in PPH

Fibrinogen is physiologically elevated in late pregnancy (400–650 mg/dL, roughly double the non-pregnant range) as part of the pregnancy-induced hypercoagulable state. Despite this head start, fibrinogen is the first factor to fall below a critical threshold during PPH — well before platelets or other clotting factors become critically low. Mechanisms include: dilution from crystalloid and non-fibrinogen-containing blood products, consumption at the bleeding uterine placental bed, and hyperfibrinolysis, which is exaggerated in amniotic fluid embolism and abruption.

The Charbit study (2007) and subsequent PPH cohorts established that fibrinogen <200 mg/dL (2 g/L) on admission blood work predicts progression to severe PPH with a positive predictive value around 100% in some cohorts — no other single coagulation parameter approaches this predictive power in obstetric hemorrhage.

Key insight: in trauma, low fibrinogen is a late finding; in obstetric hemorrhage, it is often the earliest and most predictive coagulopathy marker — check fibrinogen (or run FIBTEM) early and treat proactively rather than waiting for INR/aPTT to become abnormal.

Cryoprecipitate vs. fibrinogen concentrate

Two products correct hypofibrinogenemia:

• Cryoprecipitate: prepared by thawing FFP at 1–6°C and collecting the cold-insoluble precipitate; each unit (~15–20 mL) contains ~150–250 mg fibrinogen plus factor VIII, von Willebrand factor, and factor XIII. Usually pooled 10 units per dose, raising plasma fibrinogen by roughly 50–75 mg/dL. Requires thawing (~20–30 min) and ABO consideration, and carries the same infectious/TRALI risk profile as other plasma-derived products.

• Fibrinogen concentrate: a pasteurized, virus-inactivated, freeze-dried human fibrinogen product reconstituted at the bedside in minutes with no thawing or crossmatch required; typical adult dose 2–4 g IV (or dosed to target using ROTEM FIBTEM-A5/A10 deficit — e.g., grams needed ≈ (target FIBTEM-A5 − measured) × weight factor per institutional nomogram). Increasingly preferred where available for speed and a lower volume/pathogen-exposure footprint, though cost and availability vary by country and blood bank formulary.

Both raise fibrinogen roughly comparably per gram delivered; the FIB-PPH and OBS2 trials found no clear mortality difference between strategies, but faster preparation time favors concentrate when both are stocked.

ROTEM/TEG-guided fibrinogen dosing in practice

Rotational thromboelastometry (ROTEM) FIBTEM channel isolates the fibrin-clot contribution by inhibiting platelet function (cytochalasin D) so only fibrinogen polymerization is measured. A FIBTEM maximum clot firmness (MCF) or amplitude at 5 minutes (A5) below the institutional threshold (commonly A5 <9–12 mm, or MCF <8–10 mm, roughly corresponding to plasma fibrinogen <200 mg/dL) triggers cryoprecipitate or fibrinogen concentrate administration, typically before the standard laboratory fibrinogen result is even back.

Because ROTEM/TEG results are available within 10 minutes of sampling (versus 30–45 minutes for a send-out coagulation panel), viscoelastic-guided fibrinogen replacement allows correction to begin roughly 20–30 minutes earlier than lab-only strategies — a clinically meaningful head start when losses are running at 100–150 mL/min.

Citrate Toxicity, Calcium Replacement, and Temperature Control

Rapid, high-volume transfusion introduces its own metabolic hazards independent of the hemorrhage itself. Citrate anticoagulant in banked blood chelates ionized calcium; cold products drive hypothermia; and both effects compound coagulopathy in a vicious cycle. Proactive calcium replacement and active warming are not optional adjuncts — they are core components of the massive transfusion protocol.

  • ~3 g: Citrate load per PRBC/FFP unit (sodium citrate anticoagulant)
  • <1.1 mmol/L: Ionized Ca²⁺ treatment threshold ((normal 1.1–1.3 mmol/L))
  • 1 g IV: CaCl₂ dose (per ~4 units transfused, or per level)
  • ~10% ↓ factor activity: Hypothermia coagulopathy effect (per 1°C drop below 37°C)

The physiology of citrate toxicity

Stored blood products (PRBC, FFP, platelets) contain citrate-based anticoagulant-preservative solutions (e.g., CPD, CPDA-1) — roughly 3 g of citrate per unit of PRBC or FFP. Citrate works by chelating ionized calcium to prevent clotting in the bag. Once transfused, the liver normally metabolizes citrate to bicarbonate within minutes. But during massive, rapid transfusion — especially through a rapid infuser delivering >1 unit every few minutes — citrate delivery outpaces hepatic clearance, and free citrate continues to chelate the patient's own ionized calcium systemically.

The result is iatrogenic hypocalcemia: ionized calcium can fall from a normal 1.1–1.3 mmol/L to below 0.9 mmol/L within 15–20 minutes of high-rate transfusion (rates >1 unit/5 min), especially in patients with impaired hepatic citrate clearance (hypothermia, shock liver, or liver disease all slow citrate metabolism further — a self-reinforcing cycle).

Clinical consequences and why calcium matters for hemostasis too

Ionized calcium is essential for two separate reasons during massive transfusion:

• Cardiovascular: calcium is required for myocardial excitation-contraction coupling and vascular smooth muscle tone. Hypocalcemia causes decreased cardiac contractility, hypotension, widened QT interval, and can precipitate arrhythmia or cardiac arrest if severe (ionized Ca²⁺ <0.8 mmol/L) — compounding the hypotension already caused by hemorrhage.

• Coagulation: ionized calcium is factor IV in the classic clotting cascade numbering — it is required as a cofactor for the activation of factors II, VII, IX, and X and for platelet aggregation. Hypocalcemia therefore independently worsens the same coagulopathy that fibrinogen and factor replacement are trying to correct — transfusing clotting factors into a hypocalcemic patient blunts their effectiveness.

Signs to watch: perioral/digital tingling, prolonged QT on the monitor, hypotension refractory to fluid/pressors, and a falling ionized calcium trend on serial blood gas sampling (every 30 min during active MTP).

Do not wait for symptomatic hypocalcemia. Most obstetric MTP protocols now give calcium chloride 1 g (or calcium gluconate 2–3 g) empirically after every 4 units of blood product, or continuously per rapid-infuser rate, checking ionized calcium every 30 minutes and redosing to keep it >1.1 mmol/L.

Calcium chloride vs. calcium gluconate, and the lethal triad

Calcium chloride (10% solution, 1 g = 10 mL) delivers roughly 3× more elemental calcium per gram than calcium gluconate (10% solution, 1 g ≈ 90 mg elemental Ca vs. 272 mg in CaCl₂) and raises ionized calcium faster — preferred through central or well-secured large-bore IV access during active massive transfusion because of its potency and rapid onset (seconds to minutes). Calcium gluconate is gentler on peripheral veins and preferred when only peripheral access is available, at the cost of needing roughly 3× the volume for equivalent effect.

Hypocalcemia is one leg of the "lethal triad" — together with hypothermia and acidosis — that mutually reinforce coagulopathy in massive hemorrhage: cold blood worsens platelet function and enzymatic clotting-factor activity (roughly 10% reduction in coagulation enzyme activity per 1°C below 37°C), acidosis further impairs factor function and citrate metabolism, and hypocalcemia impairs both cardiac output and clotting directly. Active warming (fluid warmers, forced-air warming blankets, warmed OR ambient temperature) targeting core temperature ≥36°C is therefore a coagulation intervention, not just a comfort measure.

Achieving Hemostasis, Permissive Hypotension, and Monitoring Recovery

The final phase of massive transfusion is defined by trend, not a single number: falling lactate, rising and stabilizing fibrinogen, normalizing temperature and ionized calcium, and surgical/uterine hemostasis achieved. Blood pressure targets during active bleeding are deliberately conservative (permissive hypotension) until source control is achieved, then normalized once bleeding is controlled.

  • 60–65 mmHg: Permissive MAP target (active bleeding) (until surgical hemostasis achieved)
  • >10%/hour: Lactate clearance goal (or normalization <2 mmol/L)
  • Consider >1000–1500 mL: Cell salvage return threshold (anticipated or actual loss)
  • Stable vitals ×2h: MTP stand-down criteria (+ controlled bleeding + normal labs trend)

Permissive hypotension vs. targeted MAP

Permissive (or "damage-control") hypotension accepts a lower-than-normal mean arterial pressure — typically MAP 60–65 mmHg or systolic 80–90 mmHg — while active bleeding is ongoing and source control has not yet been achieved. The rationale, extrapolated from trauma resuscitation literature: aggressively normalizing blood pressure with large-volume crystalloid or vasopressors before the bleeding source is controlled can dislodge nascent clot, dilute clotting factors further, and paradoxically increase blood loss.

In obstetric hemorrhage this must be balanced carefully against uteroplacental and, if the fetus is undelivered, fetal perfusion requirements — permissive hypotension is applied mainly in the postpartum (post-delivery) hemorrhage setting, not while the fetus remains in utero and dependent on maternal perfusion pressure. Once surgical/uterine hemostasis is achieved (balloon tamponade, compression sutures, arterial ligation, or hysterectomy if needed), the target shifts to normalizing MAP (≥65–70 mmHg) to support end-organ perfusion during recovery.

Intraoperative cell salvage in obstetric hemorrhage

Cell salvage (autotransfusion) suctions shed blood from the surgical field, washes and filters it, and returns concentrated autologous red cells to the patient — historically avoided in obstetrics over fear of amniotic fluid embolism from returning amniotic debris. Modern evidence (NICE, ACOG, SOAP) supports its safety when a leukocyte-depletion filter is used on the return line: amniotic fluid contaminants (squamous cells, fetal debris) are effectively filtered, and no increase in amniotic fluid embolism has been demonstrated in large series.

Cell salvage is now recommended as an adjunct for anticipated major obstetric hemorrhage (e.g., placenta accreta spectrum surgery, known high-risk cesarean) and can meaningfully reduce allogeneic transfusion requirements, which matters most for patients who decline blood products (e.g., Jehovah's Witnesses) or in settings with limited blood bank supply. It does not replace FFP/platelet/fibrinogen support, since salvaged blood contains red cells only, essentially free of clotting factors.

Cell salvage returns red cells, not clotting factors — a patient resuscitated primarily with salvaged blood still needs fibrinogen, plasma, and platelet support guided by ROTEM/TEG and labs, or dilutional coagulopathy will still develop.

Monitoring trends that confirm the corner has been turned

Massive transfusion is stood down based on trends across multiple parameters, checked serially (every 30 minutes during active MTP):

• Lactate: a marker of tissue hypoperfusion; clearance >10–20% per hour indicates improving perfusion; failure to clear lactate despite apparent hemostasis suggests ongoing occult bleeding or inadequate resuscitation • Core temperature: trending toward and maintained ≥36°C confirms effective warming and removes one leg of the lethal triad • Ionized calcium: trending and maintained >1.1 mmol/L confirms adequate citrate/calcium management • Coagulation panel / ROTEM: rising fibrinogen (>200 mg/dL), normalizing clotting times, and platelet count >75,000–100,000/µL support stopping empirical component replacement • Hemodynamics: heart rate normalizing, Shock Index falling back below 0.9, blood pressure stable off escalating vasopressor support

MTP stand-down typically requires ~2 hours of hemodynamic stability, confirmed surgical/uterine hemostasis, and favorable lab trends together — any single reassuring number is not sufficient on its own, since obstetric hemorrhage can re-accelerate rapidly if atony recurs or a missed laceration continues to bleed.

⚙ Under the hood

This simulation provides a detailed approach to managing massive transfusion in the setting of postpartum hemorrhage. It includes strategies for rapid blood…

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