Inherent hepatocytic heterogeneity determines expression and retention of edited <i>F9</i> alleles post-AAV/CRISPR infusion.

Wang, Qiang; Zhang, Lin; Zhang, Guo-Wei; Mao, Jian-Hua; Xi, Xiao-Dong; Jiang, Lu; Lv, Gang; Lu, Jing et al. · Proc Natl Acad Sci U S A · 2021

basic_science · Level V

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Abstract

Infusing CRISPR/donor-loaded adeno-associated viral vectors (AAV/CRISPR) could enable in vivo hepatic gene editing to remedy hemophilia B (HB) with inherited deficiency of clotting factor IX (FIX). Yet, current regimens focus on correcting HB with simple mutations in the coding region of the <i>F9</i>, overlooking those carrying complicated mutations involving the regulatory region. Moreover, a possible adverse effect of treatment-related inflammation remains unaddressed. Here we report that a single DNA cutting-mediated long-range replacement restored the FIX-encoding function of a mutant <i>F9</i> (<i>mF9</i>) carrying both regulatory and coding defects in a severe mouse HB model, wherein incorporation of a synthetic <i>Alb</i> enhancer/promoter-mimic (P2) ensured FIX elevation to clinically meaningful levels. Through single-cell RNA sequencing (scRNA-seq) of liver tissues, we revealed that a subclinical hepatic inflammation post-AAV/CRISPR administration regulated the vulnerability of the edited <i>mF9</i>-harboring host cells to cytotoxic T lymphocytes (CTLs) and the P2 activity in a hepatocytic subset-dependent manner via modulating specific sets of liver-enriched transcription factors (LETFs). Collectively, our study establishes an AAV/CRISPR-mediated gene-editing protocol applicable to complicated monogenetic disorders, underscoring the potentiality of improving therapeutic benefits through managing inflammation.

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