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Published on: February 17, 2023
PRPF8 Mutation-Induced Defects in Human iPSC-Derived RPE Are Rescued by Adenine Base Editing
Xihao Sun1,2,3,4, Yuan Liang2,5, Yuqin Liang1,2,3,4
1Aier Academy of Ophthalmology, Central South University, Changsha, Hunan, China.
Purpose:
The pathological effects of pre-mRNA processing factor 8 (PRPF8) mutations on the retinal pigment epithelium (RPE) are not fully understood. We aimed to identify disease-specific cellular and molecular phenotypes in PRPF8 retinitis pigmentosa (RP) patient-derived induced pluripotent stem cell (iPSC)-RPE and to test whether adenine base editing (ABE), which corrects the PRPF8 mutation in iPSCs, can reverse abnormal RPE phenotypes.
Methods:
We obtained patient-derived iPSCs with the heterozygous PRPF8 (c.5792C>T) mutation and created an induced mutation iPSC line by introducing the same mutation into wild-type iPSCs using CRISPR/Cas9. These cells were differentiated into RPE cells. We measured PRPF8 expression, barrier integrity, and apicobasal polarity. Electron microscopy examined apical microvilli and pigment granules. RNA sequencing quantified splicing events and affected pathways. ABE corrected the PRPF8 mutation in patient iPSCs, and the corrected clones were re-differentiated into RPE cells for evaluation.
Results:
PRPF8-mutant RPE cells exhibited decreased PRPF8 mRNA and protein levels, weakened barrier function, and disrupted cell polarity. Ultrastructural analysis showed loss of apical microvilli and pigment granules. Transcriptomic analysis identified abnormal splicing events, with enrichment in cilium assembly and melanosome pathways. ABE correction restored PRPF8 expression, normalized barrier integrity, apicobasal polarity, and rescued the defects in apical microvilli and pigment granules.
Conclusions:
PRPF8 mutations in patient-derived iPSC RPE cause functional and ultrastructural defects driven by splicing abnormalities. ABE correction of the PRPF8 mutation in iPSCs can restore PRPF8 expression and alleviate cellular and molecular defects in RPE and highlights the therapeutic potential of precise gene editing correction strategies for RP.
Insights
Mutations in PRPF8 cause retinal pigment epithelium defects. Adenine base editing (ABE) corrected these defects in patient-derived cells, showing therapeutic potential for retinitis pigmentosa (RP).
Area of Science:
- Ophthalmology
- Genetics
- Cell Biology
Background:
- Pre-mRNA processing factor 8 (PRPF8) mutations are linked to retinitis pigmentosa (RP), a degenerative eye disease.
- The precise pathological mechanisms of PRPF8 mutations in the retinal pigment epithelium (RPE) remain unclear.
Purpose of the Study:
- To characterize cellular and molecular phenotypes in RPE derived from PRPF8 mutation patient iPSCs.
- To evaluate the efficacy of adenine base editing (ABE) in correcting PRPF8 mutations and reversing RPE abnormalities.
Main Methods:
- Generated induced pluripotent stem cell (iPSC)-RPE from patients with heterozygous PRPF8 mutations and control lines.
- Utilized CRISPR/Cas9 to create an induced mutation iPSC line.
- Assessed RPE function (barrier integrity, polarity) and ultrastructure (microvilli, pigment granules).
- Performed RNA sequencing to analyze splicing events and affected pathways.
- Applied ABE to correct the PRPF8 mutation in patient iPSCs and re-differentiated corrected cells into RPE.
Main Results:
- PRPF8-mutant RPE cells showed reduced PRPF8 expression, impaired barrier function, and disrupted polarity.
- Ultrastructural analysis revealed loss of apical microvilli and pigment granules in mutant RPE.
- Transcriptomic analysis identified aberrant splicing, particularly in cilium assembly and melanosome pathways.
- ABE correction successfully restored PRPF8 expression and normalized RPE structure and function.
Conclusions:
- PRPF8 mutations induce RPE dysfunction and structural defects via splicing abnormalities.
- ABE-mediated correction of PRPF8 mutations in iPSCs can reverse these defects.
- This study highlights the potential of gene editing strategies for treating PRPF8-associated RP.
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