HaematologyBleeding And Clotting Disorders

Haemophilia B

Haemophilia B is an X-linked recessive bleeding disorder caused by deficiency or dysfunction of clotting factor IX, leading to impaired intrinsic coagulation and prolonged or spontaneous hemorrhage.

Haemophilia B (Christmas Disease)

2. Epidemiology

4. Anatomy and Function: Factor IX in the Coagulation Cascade

5. Aetiology (with Focus on Hong Kong)

6. Classification

7. Clinical Features

7.2 Symptoms (with Pathophysiological Basis)

7.3 Signs (with Pathophysiological Basis)

Differential Diagnosis of Haemophilia B

2. Differential Diagnosis of Isolated Prolonged APTT (Normal PT)

This is the most important differential for Haemophilia B in exams. The APTT measures the intrinsic pathway (Factors XII → XI → IX → VIII) plus the common pathway. A normal PT tells you the extrinsic pathway (Factor VII, and common pathway factors V, X, II, I) is intact.

I split these into two categories: those that cause bleeding and those that do NOT cause bleeding — because the clinical implication is completely different.

4. Differentiating Haemophilia B from the Closest Mimics

References

[2] Senior notes: Ryan Ho Haemtology.pdf — Section 4.3.2 Haemophilia A and B [3] Senior notes: MBBS Final MB (Pediatrics) (Felix PY Lai).pdf — Haemophilia A/B, Etiology/Differential Diagnosis table [4] Senior notes: Block A - Introduction to Haematological investigations (CBP, Clotting).pdf — Coagulation interpretation, mixing study [5] Senior notes: Block A - Abnormal bleeding after tooth extraction_ bleeding tendency; thrombocytopenia.pdf — Coagulation tests and patterns [7] Senior notes: Block A - Hematology Interactive Tutorial.pdf — Case 2 [8] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Haemophilia A/B section [9] Lecture slides: GC 075. Pain red joint.pdf — Haemarthrosis slide [10] Senior notes: Ryan Ho Rheumatology.pdf — Section 2.1 Approach to Acute Monoarthritis

Diagnostic Criteria, Diagnostic Algorithm, and Investigations for Haemophilia B


3. Investigation Modalities: Detailed Breakdown

I will organise investigations into screening (first-line), confirmatory (second-line), supportive/ancillary, and monitoring investigations.


3.1 First-Line Screening Investigations

These are the tests you order when any patient presents with a bleeding tendency. They help you categorise the problem (platelet vs. coagulation) and guide further workup.

3.2 Second-Line Confirmatory Investigations

Once screening shows "normal PT + prolonged APTT," you proceed to confirmatory tests to identify which intrinsic pathway factor is deficient.

3.4 Genetic Testing

3.5 Ancillary / Supportive Investigations

These are not diagnostic for haemophilia itself but are essential for managing the patient and assessing complications.

References

[1] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Haemophilia A/B section [2] Senior notes: Ryan Ho Haemtology.pdf — Section 4.3.2 Haemophilia A and B [4] Senior notes: Block A - Introduction to Haematological investigations (CBP, Clotting).pdf — Coagulation interpretation, mixing study [5] Senior notes: Block A - Abnormal bleeding after tooth extraction_ bleeding tendency; thrombocytopenia.pdf — Coagulation tests section [7] Senior notes: Block A - Hematology Interactive Tutorial.pdf — Case 2 [11] Senior notes: Maksim Medicine Notes.pdf — Clotting cascade interpretation [12] Lecture slides: GC_Interactive tutorial (Haem case 2) student copy.pdf — Case scenario [13] Senior notes: Ryan Ho Fundamentals.pdf — Marrow examination contraindications

Management of Haemophilia B


4. Factor IX Replacement Therapy

This is the cornerstone of Haemophilia B management. The principle is simple: replace the missing Factor IX to achieve haemostatic levels.

4.3 Prophylactic vs. On-Demand Therapy

Recombinant factor replacement: can be administered in different strategies [2][14]:

7. Management of Inhibitors

Inhibitors in haemophilia: usually presents as poor response to factor replacement [2]

This is the most challenging aspect of haemophilia management. When a patient with Haemophilia B develops alloantibodies against infused Factor IX, standard Factor IX replacement becomes ineffective.

8. Novel and Emerging Therapies

The haemophilia landscape has been transformed in recent years by therapies that go beyond simple factor replacement.

References

[2] Senior notes: Ryan Ho Haemtology.pdf — Section 4.3.2 Haemophilia A and B, Management principles, Inhibitors, Prognosis [5] Senior notes: Block A - Abnormal bleeding after tooth extraction_ bleeding tendency; thrombocytopenia.pdf — Treatment options in haemostatic disorders [7] Senior notes: Block A - Hematology Interactive Tutorial.pdf — Case 2, Management section [13] Senior notes: Ryan Ho Fundamentals.pdf — Marrow examination contraindications [14] Senior notes: Adrian Lui Pediatrics Notes.pdf — Haemophilia management principles [15] Senior notes: Ryan Ho Haemtology.pdf — FFP, Cryoprecipitate, PCC sections

Complications of Haemophilia B

Complications of Haemophilia B can be divided into those caused by the disease itself (bleeding-related) and those caused by treatment (replacement-related). Understanding the pathophysiology behind each complication explains why it occurs and how to prevent it.


1.1 Haemophilic Arthropathy

Complications: hemophilic arthropathy [7]

This is the single most common chronic complication of haemophilia and the leading cause of long-term disability.

Haemophilic arthropathy: occurs in up to 50% in severe haemophilia [2][14]

References

[2] Senior notes: Ryan Ho Haemtology.pdf — Section 4.3.2 Haemophilia A and B, Clinical presentation, Late complications, Inhibitors, Prognosis [7] Senior notes: Block A - Hematology Interactive Tutorial.pdf — Case 2, Complications [14] Senior notes: Adrian Lui Pediatrics Notes.pdf — Haemophilia clinical presentation, Late complications, Inhibitor development

High Yield Summary

  1. Haemophilia B = X-linked recessive deficiency of Factor IX (Christmas disease), accounting for ~15% of haemophilia cases [1][2].
  2. Incidence: 1 in 15,000–30,000 live male births; ~1/3–1/2 have severe disease [2].
  3. Classified by residual factor activity: Severe (< 1%), Moderate (1–5%), Mild (> 5% to < 40%) — severity determines bleeding pattern [1][2].
  4. Gene: F9 at Xq26; >1,100 mutations; ~30–40% sporadic (no family history) [2].
  5. Factor IX is part of the intrinsic tenase complex (IXa + VIIIa); deficiency impairs thrombin amplification → weak fibrin clot — explains why bleeding is delayed and deep-seated.
  6. Coagulation-type bleeding: haemarthrosis (hallmark), muscle haematoma, prolonged surgical/dental bleeding, ICH (most feared), rebleeding after initial cessation [5][6].
  7. Laboratory: Normal PT + Prolonged APTT + Normal platelet count. Specific Factor IX assay confirms diagnosis [4][5].
  8. In Hong Kong, Factor XII deficiency (~20% prevalence) is the most common cause of isolated prolonged APTT and does NOT cause bleeding — must distinguish from haemophilia [4].
  9. Mixing study: corrects in factor deficiency; does NOT correct if inhibitor present [4].
  10. Inhibitors develop in ~3–5% of Haemophilia B patients (lower than the ~25–30% in Haemophilia A) but can be associated with anaphylaxis to Factor IX concentrates — unique to Haemophilia B.
  11. Haemophilia B Leyden: specific promoter mutations → Factor IX levels rise at puberty → patients can "outgrow" the disease.

High Yield Summary: Investigations for Haemophilia B

  1. Normal PT + Prolonged APTT + Normal platelets → isolated intrinsic pathway defect [5][11].
  2. Mixing study corrects → factor deficiency (not inhibitor) [4][11].
  3. Low Factor IX assay (< 40%) with normal Factor VIII and normal vWF confirms Haemophilia B [1][2].
  4. APTT may be normal in mild haemophilia → always request specific factor assays if clinical suspicion is high [2].
  5. Bethesda assay screens for inhibitory alloantibodies against Factor IX (present in ~3–5% of severe cases) [2].
  6. Genetic testing (F9 at Xq26) confirms diagnosis, enables carrier detection, prenatal diagnosis, and predicts inhibitor/anaphylaxis risk [2].
  7. Factor XII deficiency (~20% in HK) is the most common isolated prolonged APTT — does NOT cause bleeding [4].
  8. Severe haemophilia and DIC are absolute contraindications for bone marrow biopsy [2][13].
  9. Viral serology (HBV, HCV, HIV) should be performed at baseline — historical risk from plasma-derived products [2].

High Yield Summary: Management of Haemophilia B

  1. General measures: avoid trauma, non-contact sports, dental hygiene, avoid antiplatelets/anticoagulants, smallest gauge needles, MedicAlert [2][14].
  2. Factor IX replacement is the cornerstone — standard rFIX (BeneFIX) or extended half-life rFIX (Alprolix, Idelvion, Rebinyn) for both prophylaxis and on-demand treatment.
  3. DDAVP is NOT effective for Haemophilia B — it releases Factor VIII/vWF, NOT Factor IX [7].
  4. Emicizumab is NOT effective for Haemophilia B — it mimics Factor VIIIa and requires Factor IXa, which is absent [2].
  5. Prophylaxis is preferred for severe disease: primary (< 3y), secondary (≥ 2 joint bleeds), tertiary (after arthropathy) [2][14].
  6. Acute bleeding: treat on suspicion for life-threatening bleeds; haemarthrosis = FIX + COX-2/Panadol + RICE; mucosal = FIX + tranexamic acid; haematuria = FIX + forced diuresis (avoid tranexamic acid) [2].
  7. Inhibitors (~3–5%): bypassing agents (rFVIIa preferred over FEIBA due to anaphylaxis risk); immune tolerance induction (less successful than in Haem A) [2].
  8. Gene therapy (etranacogene dezaparvovec/Hemgenix): single IV infusion of AAV5-FIX Padua variant; FDA-approved 2022; raises FIX to ~39%; paradigm-shifting.
  9. FFP contains Factor IX but large volumes needed; cryoprecipitate does NOT contain Factor IX [15].
  10. Prognosis: 63y severe, 75y mild/moderate; leading cause of death: liver failure (33%), haemorrhage (11–15%) [2].

High Yield Summary: Complications of Haemophilia B

  1. Haemophilic arthropathy (up to 50% of severe patients) is the most common chronic complication; caused by iron-mediated synovial toxicity → synovial hypertrophy → cartilage destruction → secondary OA → contractures [2][14].
  2. Target joint (≥ 3 bleeds in 6 months): vicious cycle of bleeding → neovascularisation → re-bleeding; preventable with prophylaxis [2][14].
  3. ICH is the most feared acute complication and leading cause of bleeding death; treat with Factor IX on suspicion before imaging [2].
  4. Compartment syndrome (especially calf) → ischaemia → necrosis → fibrosis → Achilles tendon contracture [2][14].
  5. Iliopsoas haematoma → femoral nerve compression → hip flexion, anterior thigh numbness, quadriceps weakness [2][14].
  6. Oropharyngeal bleed → posterior pharyngeal haematoma → airway obstruction (cough/vomiting can trigger) [2][14].
  7. Bowel wall haematoma → obstruction, intussusception [2][14].
  8. Inhibitors (~3–5% in Haemophilia B) + anaphylaxis to Factor IX + nephrotic syndrome = complications unique to Haemophilia B [2][14].
  9. Bloodborne infections (HCV, HBV, HIV) from contaminated products → 33% of mortality from liver failure; risk now minimal with recombinant products [2].
  10. Prognosis: life expectancy 63 years (severe), 75 years (mild/moderate); leading cause of death: liver failure (33%), haemorrhage (11–15%) [2].

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