By Dr Jodie Abramovitch
Sickle cell disease (SCD) is a genetic condition in which
red blood cells (RBC) have an abnormal bowed or sickle shape due to a mutation
of haemoglobin. These RBC are unable to travel
well through small blood vessels, often becoming trapped and subsequently dying.
This leads to a low red blood cell count (anaemia) which is why this disease can also be known as sickle cell anaemia. The trapped RBC can lead to occlusion of blood vessels leading to lack of oxygen and tissue death in many organ systems - producing extreme pain and organ failure.
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L-R: Dr Fiona Brown, Prof. Stephen Jane,
Ms Loretta Cerruti, A/Prof David Curtis |
RBC require electrolytes such as potassium (K) and chloride
(Cl) to function properly. These electrolytes are actively moved in and out of
cells by proteins called co-transporters. The K-Cl co-transporter, therefore,
moves K and Cl along with water in and out of RBC to control cell size.
When the mutation in Kcc1 was introduced into a mouse model
of SCD that mimics human disease, it was shown that disease was worsened. A
higher proportion of RBC were sickle shaped which led to blocked small blood vessels and more extensive tissue
damage. It was concluded that the mutation
in Kcc1 was directly linked to a more serious presentation of SCD.
This research highlights the potential therapeutic use of targeting
K-Cl (and other electrolyte) co-transporters to inhibit their activity in
diseases such as SCD.
Reference: Brown FC, Conway AJ, Cerruti L, Collinge JE, McLean C, Wiley JS, Kile BT, Jane SM, Curtis DJ. Activation of the erythroid K-Cl cotransporter Kcc1 enhances sickle cell disease pathology in a humanized mouse model. Blood. 2015 Dec:126;2863-70.
doi: 10.1182/blood-2014-10-609362