Prime Editing Corrects the HBB Codon 8/9 (+G) Mutation in Patient-Derived Induced Pluripotent Stem Cells and Restores β-Globin Expression in iPSC-Derived Erythroid Cells

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Abstract

Background

Homozygosity for the HBB codon 8/9 (+G) frameshift (c.27dup (p.Ser10ValfsTer14)) causes transfusion-dependent β⁰-thalassaemia and is common in South Asia. Prime editing can reverse this insertion without double-strand breaks or donor DNA, but its efficiency depends on pegRNA design.

Methods

We derived Sendai-reprogrammed iPSCs from a homozygous patient, optimised PEmax editing (spacer, pegRNA extension, secondary nick, MLH1dn) and compared patient, PEmax-treated and control iPSC-derived erythroid cells by flow cytometry, colony assays, RT-qPCR, western blotting and cation-exchange HPLC.

Results

Patient iPSCs had a normal 46,XY karyotype, expressed pluripotency markers, formed all three germ layers and were Sendai-free by passage 15. A PAM-disrupting spacer with a +68 nicking sgRNA gave the highest intended-edit frequency 8.4%; MLH1dn added little. PEmax-treated cultures matured and formed colonies more like control than patient cultures, restored HBB transcript (about 4-fold control iPSC-derived cells) and detectable β-globin protein, and contained an HPLC fraction consistent with HbA (undetectable in patient cells). Fetal haemoglobin (about 80%) and embryonic globin remained predominant.

Conclusions

Prime editing corrects HBB c.27dupG in patient iPSCs and restores β-globin expression, with partial restoration of adult haemoglobin in a fetal/embryonic-type erythroid background. Validation in additional donors, haematopoietic stem cells and in vivo is required.

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