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Treatment for aplastic anemia and inherited bone marrow conditions.
Bone marrow consists of a matrix of sinusoids lined with epithelial cells interspersed with islands of erythropoietic cells encapsulated by reticulin cells. The bone marrow is composed of red marrow and inactive adipose tissue (yellow marrow) in about equal quantity.
Bone marrow is mainly found in the pelvis, ribs and ends of the long bones of the axial skeleton. At birth, 100% of marrow is of the active red type, and this is gradually replaced by adipose tissue as an individual ages.
Some erythropoietic cells are stem cells. Pluripotent stem cells are able both to renew themselves and to differentiate into various cell types, depending upon the growth factors acting upon them:
The differentiation process is extremely complex and involves haematopoietic growth factors (HGFs) in regulating production of blood cells. There are many HGFs including erythropoietin, thrombopoietin, granulocyte colony‐stimulating factor, macrophage colony‐stimulating factor, interleukins and stem cell factor. Recombinant HGFs are used in a number of treatment settings.
Bone marrow failure can affect red blood cells (RBCs), white blood cells (WBCs) and platelets. Single line deficiencies or pancytopenia may occur. Broadly speaking, it can be divided into two categories, inherited or acquired. These underlying causes can result in damage or defects of haemopoietic cells. Causes include:
Due to inherited or spontaneous gene mutations - eg:
Inherited causes account for 10-15% of cases of bone marrow failure, but for 30% of cases presenting in children. It can occur at any age, with a peak for inherited syndromes in pre-school children. Acquired causes are more common in older adults. Inherited bone marrow failure syndromes are rare - Fanconi's anaemia is the most common with an incidence of 1-5 in a million, although it is much more common in certain populations. The annual incidences of paroxysmal nocturnal haemoglobinuria and myelodysplastic syndrome are estimated to be 0.13 and 7 per 100,000 population per year respectively. The incidence of aplastic anaemia is 2-3 per million per year in Europe, although it is higher in East Asia.
Bone marrow failure is also a frequent iatrogenic side-effect of radiotherapy and chemotherapy.
Those with inherited bone marrow failure syndromes have an increased risk of future malignancy, particularly acute myeloid leukaemia and myelodysplastic syndrome as well as some solid tumours.
Whatever the cause, the patient presents with signs and symptoms of:
Anaemia - tiredness, weakness, pallor, breathlessness, tachycardia.
Neutropenia - recurrent or severe bacterial infections.
Thrombocytopenia - easy bruising, petechiae, bleeding from the nose and/or gums.
The inherited syndromes may have other clinical features typical of the condition, such as skin or skeletal abnormalities. Other specific acquired causes may have specific clinical findings such as enlarged liver and/or spleen and/or lymphadenopathy.
Differential diagnosis
Systemic lupus erythematosus and hypersplenism - can cause pancytopenia with a normal bone marrow.
The starting point is FBC, reticulocyte count and blood film; from there investigation will be guided by findings from history, examination and that report. Further investigation will be in the hands of the specialist.
The management will depend on the underlying cause and the degree of bone marrow failure. It will be undertaken by specialist haematologists.
Definitive treatment for inherited marrow failure, and for some acquired causes, is with bone marrow transplant. Improvements in outcome have been in part due to better HLA tissue typing to identify better matched donors.
Transfusions of blood or specific blood components such as platelets may be required.
Bone marrow failure syndrome refers to a group of diseases in which the body's bone marrow, the tissue that produces blood cells, fails to function correctly.
Explore our specialized care options within bone marrow failure