In vivo delivery of a locus‐specific DNA base editor to bone tissue is demonstrated, the timing of treatment required for maximum efficacy is delineated, and it is suggested that this system might be tailored for application to other monogenic bone disorders.
Abstract
Hutchinson‐Gilford progeria syndrome (HGPS) is a premature aging disorder affecting tissues of mesenchymal origin. Most patients harbor a c.1824C>T/p.G608= variant, commonly described as G608G, in exon 11 of LMNA that leads to aberrant splicing and production of the toxic progerin protein. In addition to cardiovascular, dermal, and adipose tissue deterioration, HGPS mouse models also develop progressive bone dysplasia that occurs in patients. Here we characterize the efficacy of in vivo mutation correction with an adenine base editor (ABE) to rescue structural and functional defects in HGPS transgenic murine bone tissue. Treatment of double‐copy transgenic osteoblast cultures with a lentiviral‐delivered CRISPR‐Cas9 ABE achieved nearly 40% gene correction in vitro, resulting in significant reduction of progerin transcripts and protein, in the absence of selective agents. Furthermore, gene correction improved progeroid osteoblasts' capacity to deposit and mineralize extracellular matrix compared to untreated cultures. In vivo, a single intravenous dose of AAV9‐delivered ABE corrected the mutation, achieving ~14%, ~22%, ~10% and < 1% correction in bone by six months of age when administered at P3, P14, 1 and 4 months of age, respectively. Partially rescued bone structural and physical parameters were observed in P14‐treated mice with concomitant normalization of gene transcriptional programs and intracellular signaling pathways involved in bone remodeling. This work demonstrates in vivo delivery of a locus‐specific DNA base editor to bone tissue, delineates the timing of treatment required for maximum efficacy, and suggests that this system might be tailored for application to other monogenic bone disorders.
Individuals with fibrodysplasia ossificans progressiva (FOP), a rare genetic disorder caused by mutations in the bone morphogenetic protein receptor ACVR1 (also known as ALK2), experience progressive and severely debilitating endochondral heterotopic ossification (HO). Previous studies have identified fibro-adipogenic...
J. Stoessel, Lorraine N. Burdick, Alison J. Davis et al.· bioRxiv· 0 citations
The results showed that AAV2-OCRL demonstrated the highest transduction efficiency in patient iPSC-derived trabecular meshwork models (iHTM) among the three AAV-OCRL vectors evaluated, establishing it as a promising delivery vector.
Si-Yu Chen, Zhi-Quan Liu, Wen-Min Wang et al.· Advancement of science· 0 citations
PURPOSE
Proteus syndrome is caused by constitutive AKT1 activation, resulting in severe overgrowth and tumor susceptibility. We developed a mouse model, featuring endogenously regulated, mosaic expression of the Akt1 c.49G>A, p.(Glu17Lys) (Akt1 E17K) variant. Prior results showed that ubiquitous Akt1E17K expression cau...
Shaima Raji Abdul Rahiman Sirajuddeen, M. Lindhurst, Megan Detels et al.· Genetics in Medicine· 0 citations
Hutchinson Gilford progeria syndrome (HGPS) is a fatal premature aging disorder caused by pathogenic farnesylated lamin A variants that disrupt nuclear architecture and DNA repair. Current therapies, including farnesyltransferase inhibitors, provide only modest survival benefits and lack molecular specificity, while mu...
Dong-Woo Kim, Eun-Ji Kwon, Beom-Jin Jeon et al.· bioRxiv· 0 citations
The selection of L-CMD iPSCs is expanded, disease-associated readouts are validated using a transgene-free differentiation protocol and gene editing strategies are assessed using 2D and 3D cultures, providing an advanced, humanised platform for translational research and precision medicine in laminopathies.
D. Moore, H. Steele-Stallard, Luca Pinton et al.· Molecular Therapy· 0 citations
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