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1.
Blood ; 141(2): 135-146, 2023 01 12.
Article in English | MEDLINE | ID: mdl-36122374

ABSTRACT

Despite the identification of the high-incidence red cell antigen Era nearly 40 years ago, the molecular background of this antigen, together with the other 2 members of the Er blood group collection, has yet to be elucidated. Whole exome and Sanger sequencing of individuals with serologically defined Er alloantibodies identified several missense mutations within the PIEZO1 gene, encoding amino acid substitutions within the extracellular domain of the Piezo1 mechanosensor ion channel. Confirmation of Piezo1 as the carrier molecule for the Er blood group antigens was demonstrated using immunoprecipitation, CRISPR/Cas9-mediated gene knockout, and expression studies in an erythroblast cell line. We report the molecular bases of 5 Er blood group antigens: the recognized Era, Erb, and Er3 antigens and 2 novel high-incidence Er antigens, described here as Er4 and Er5, establishing a new blood group system. Anti-Er4 and anti-Er5 are implicated in severe hemolytic disease of the fetus and newborn. Demonstration of Piezo1, present at just a few hundred copies on the surface of the red blood cell, as the site of a new blood group system highlights the potential antigenicity of even low-abundance membrane proteins and contributes to our understanding of the in vivo characteristics of this important and widely studied protein in transfusion biology and beyond.


Subject(s)
Anemia, Hemolytic, Congenital , Blood Group Antigens , Infant, Newborn , Humans , Mutation, Missense , Anemia, Hemolytic, Congenital/genetics , Erythrocytes/metabolism , Ion Channels/chemistry , Blood Group Antigens/metabolism , Mechanotransduction, Cellular
2.
Immunohematology ; 35(3): 95-101, 2019 Sep.
Article in English | MEDLINE | ID: mdl-31621367

ABSTRACT

CONCLUSIONS: This report is part of a series reporting the proceedings from the International Society of Blood Transfusion (ISBT) Working Party on Immunohaematology Workshop on the Clinical Significance of Red Blood Cell Alloantibodies. The aim of the workshop was to review information regarding the clinical significance of alloantibodies to red blood cell antigens recognized by the ISBT. The first 12 systems will be covered in this report. It is understandable that many of the most clinically important antibodies are directed toward antigens found in the blood group systems discovered earlier in history. The ABO system was the first to be discovered and remains the most clinically important regarding transfusion.


Subject(s)
ABO Blood-Group System , Protestantism , Blood Group Antigens , Blood Transfusion , Erythrocytes , Humans , Isoantibodies
5.
EMBO Mol Med ; 10(6)2018 06.
Article in English | MEDLINE | ID: mdl-29700043

ABSTRACT

Regular blood transfusion is the cornerstone of care for patients with red blood cell (RBC) disorders such as thalassaemia or sickle-cell disease. With repeated transfusion, alloimmunisation often occurs due to incompatibility at the level of minor blood group antigens. We use CRISPR-mediated genome editing of an immortalised human erythroblast cell line (BEL-A) to generate multiple enucleation competent cell lines deficient in individual blood groups. Edits are combined to generate a single cell line deficient in multiple antigens responsible for the most common transfusion incompatibilities: ABO (Bombay phenotype), Rh (Rhnull), Kell (K0), Duffy (Fynull), GPB (S-s-U-). These cells can be differentiated to generate deformable reticulocytes, illustrating the capacity for coexistence of multiple rare blood group antigen null phenotypes. This study provides the first proof-of-principle demonstration of combinatorial CRISPR-mediated blood group gene editing to generate customisable or multi-compatible RBCs for diagnostic reagents or recipients with complicated matching requirements.


Subject(s)
Blood Group Incompatibility/genetics , Clustered Regularly Interspaced Short Palindromic Repeats/genetics , Erythrocyte Transfusion , Gene Editing/methods , Blood Group Antigens/genetics , Cell Line , Gene Knockout Techniques , Humans , Proof of Concept Study
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