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1.
Alzheimers Dement ; 20(2): 819-836, 2024 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-37791598

RESUMO

INTRODUCTION: We discovered that the APOE3 Christchurch (APOE3Ch) variant may provide resistance to Alzheimer's disease (AD). This resistance may be due to reduced pathological interactions between ApoE3Ch and heparan sulfate proteoglycans (HSPGs). METHODS: We developed and characterized the binding, structure, and preclinical efficacy of novel antibodies targeting human ApoE-HSPG interactions. RESULTS: We found that one of these antibodies, called 7C11, preferentially bound ApoE4, a major risk factor for sporadic AD, and disrupts heparin-ApoE4 interactions. We also determined the crystal structure of a Fab fragment of 7C11 and used computer modeling to predict how it would bind to ApoE. When we tested 7C11 in mouse models, we found that it reduced recombinant ApoE-induced tau pathology in the retina of MAPT*P301S mice and curbed pTau S396 phosphorylation in brains of systemically treated APOE4 knock-in mice. Targeting ApoE-HSPG interactions using 7C11 antibody may be a promising approach to developing new therapies for AD.


Assuntos
Doença de Alzheimer , Apolipoproteína E4 , Camundongos , Humanos , Animais , Apolipoproteína E4/genética , Apolipoproteína E4/metabolismo , Proteoglicanas de Heparan Sulfato/metabolismo , Fosforilação , Apolipoproteínas E/metabolismo , Doença de Alzheimer/patologia , Fatores Imunológicos , Apolipoproteína E3/genética , Apolipoproteína E3/metabolismo
2.
Cells ; 12(8)2023 04 13.
Artigo em Inglês | MEDLINE | ID: mdl-37190056

RESUMO

Pluripotent stem (PS) cells enable the scalable production of tissue-specific derivatives with therapeutic potential for various clinical applications, including muscular dystrophies. Given the similarity to human counterparts, the non-human primate (NHP) is an ideal preclinical model to evaluate several questions, including delivery, biodistribution, and immune response. While the generation of human-induced PS (iPS)-cell-derived myogenic progenitors is well established, there have been no data for NHP counterparts, probably due to the lack of an efficient system to differentiate NHP iPS cells towards the skeletal muscle lineage. Here, we report the generation of three independent Macaca fascicularis iPS cell lines and their myogenic differentiation using PAX7 conditional expression. The whole-transcriptome analysis confirmed the successful sequential induction of mesoderm, paraxial mesoderm, and myogenic lineages. NHP myogenic progenitors efficiently gave rise to myotubes under appropriate in vitro differentiation conditions and engrafted in vivo into the TA muscles of NSG and FKRP-NSG mice. Lastly, we explored the preclinical potential of these NHP myogenic progenitors in a single wild-type NHP recipient, demonstrating engraftment and characterizing the interaction with the host immune response. These studies establish an NHP model system through which iPS-cell-derived myogenic progenitors can be studied.


Assuntos
Células-Tronco Pluripotentes Induzidas , Células-Tronco Pluripotentes , Animais , Camundongos , Células-Tronco Pluripotentes Induzidas/metabolismo , Distribuição Tecidual , Células-Tronco Pluripotentes/metabolismo , Músculo Esquelético/metabolismo , Primatas , Pentosiltransferases/metabolismo
3.
Stem Cell Reports ; 16(11): 2752-2767, 2021 11 09.
Artigo em Inglês | MEDLINE | ID: mdl-34653404

RESUMO

Fukutin-related protein (FKRP) is a glycosyltransferase involved in glycosylation of alpha-dystroglycan (α-DG). Mutations in FKRP are associated with muscular dystrophies (MD) ranging from limb-girdle LGMDR9 to Walker-Warburg Syndrome (WWS), a severe type of congenital MD. Although hypoglycosylation of α-DG is the main hallmark of this group of diseases, a full understanding of the underlying pathophysiology is still missing. Here, we investigated molecular mechanisms impaired by FKRP mutations in pluripotent stem (PS) cell-derived myotubes. FKRP-deficient myotubes show transcriptome alterations in genes involved in extracellular matrix receptor interactions, calcium signaling, PI3K-Akt pathway, and lysosomal function. Accordingly, using a panel of patient-specific LGMDR9 and WWS induced PS cell-derived myotubes, we found a significant reduction in the autophagy-lysosome pathway for both disease phenotypes. In addition, we show that WWS myotubes display decreased ERK1/2 activity and increased apoptosis, which were restored in gene edited myotubes. Our results suggest the autophagy-lysosome pathway and apoptosis may contribute to the FKRP-associated MD pathogenesis.


Assuntos
Apoptose/genética , Autofagia/genética , Predisposição Genética para Doença/genética , Distrofias Musculares/genética , Mutação , Pentosiltransferases/genética , Linhagem Celular , Glicosilação , Humanos , Lisossomos/genética , Lisossomos/metabolismo , Fibras Musculares Esqueléticas/citologia , Fibras Musculares Esqueléticas/metabolismo , Distrofias Musculares/metabolismo , Distrofias Musculares/patologia , Distrofia Muscular do Cíngulo dos Membros/genética , Distrofia Muscular do Cíngulo dos Membros/metabolismo , Distrofia Muscular do Cíngulo dos Membros/patologia , Pentosiltransferases/metabolismo , Células-Tronco Pluripotentes/metabolismo , RNA-Seq/métodos , Transdução de Sinais/genética , Transcriptoma/genética , Síndrome de Walker-Warburg/genética , Síndrome de Walker-Warburg/metabolismo , Síndrome de Walker-Warburg/patologia
4.
Cell Rep ; 36(2): 109360, 2021 07 13.
Artigo em Inglês | MEDLINE | ID: mdl-34260922

RESUMO

Mutations in the fukutin-related protein (FKRP) gene result in a broad spectrum of muscular dystrophy (MD) phenotypes, including the severe Walker-Warburg syndrome (WWS). Here, we develop a gene-editing approach that replaces the entire mutant open reading frame with the wild-type sequence to universally correct all FKRP mutations. We apply this approach to correct FKRP mutations in induced pluripotent stem (iPS) cells derived from patients displaying broad clinical severity. Our findings show rescue of functional α-dystroglycan (α-DG) glycosylation in gene-edited WWS iPS cell-derived myotubes. Transplantation of gene-corrected myogenic progenitors in the FKRPP448L-NSG mouse model gives rise to myofiber and satellite cell engraftment and, importantly, restoration of α-DG functional glycosylation in vivo. These findings suggest the potential feasibility of using CRISPR-Cas9 technology in combination with patient-specific iPS cells for the future development of autologous cell transplantation for FKRP-associated MDs.


Assuntos
Terapia Baseada em Transplante de Células e Tecidos , Distroglicanas/genética , Terapia Genética , Distrofias Musculares/genética , Distrofias Musculares/terapia , Pentosiltransferases/genética , Animais , Pré-Escolar , Distroglicanas/metabolismo , Glicosilação , Humanos , Células-Tronco Pluripotentes Induzidas/metabolismo , Masculino , Camundongos Mutantes , Fibras Musculares Esqueléticas/metabolismo , Mutação/genética , Fenótipo , Transplante Autólogo , Síndrome de Walker-Warburg/genética
5.
Elife ; 102021 01 29.
Artigo em Inglês | MEDLINE | ID: mdl-33513091

RESUMO

Mutations in the fukutin-related protein (FKRP) cause Walker-Warburg syndrome (WWS), a severe form of congenital muscular dystrophy. Here, we established a WWS human induced pluripotent stem cell-derived myogenic model that recapitulates hallmarks of WWS pathology. We used this model to investigate the therapeutic effect of metabolites of the pentose phosphate pathway in human WWS. We show that functional recovery of WWS myotubes is promoted not only by ribitol but also by its precursor ribose. Moreover, we found that the combination of each of these metabolites with NAD+ results in a synergistic effect, as demonstrated by rescue of α-dystroglycan glycosylation and laminin binding capacity. Mechanistically, we found that FKRP residual enzymatic capacity, characteristic of many recessive FKRP mutations, is required for rescue as supported by functional and structural mutational analyses. These findings provide the rationale for testing ribose/ribitol in combination with NAD+ to treat WWS and other diseases associated with FKRP mutations.


Healthy muscles are complex machines that require a myriad of finely tuned molecules to work properly. For instance, a protein called alpha-DG sits at the surface of healthy muscle cells, where it strengthens the tissue by latching onto other proteins in the environment. To perform its role correctly, it first needs to be coated with sugar molecules, a complex process which requires over 20 proteins, including the enzyme FKRP. Faulty forms of FKRP reduce the number of sugars added to alpha-DG, causing the muscle tissue to weaken and waste away, potentially leading to severe forms of diseases known as muscular dystrophies. Drugs that can restore alpha-DG sugar molecules could help to treat these conditions. Previous studies on mice and fish have highlighted two potential candidates, known as ribitol and NAD+, which can help to compensate for reduced FKRP activity and allow sugars to be added to alpha-DG again. Yet no model is available to test these molecules on actual human muscle cells. Here, Ortiz-Cordero et al. developed such a model in the laboratory by growing muscle cells from naïve, undifferentiated cells generated from skin given by a muscular dystrophy patient with a faulty form of FKRP. The resulting muscle fibers are in essence identical to the ones present in the individual. As such, they can help to understand the effect various drugs have on muscular dystrophies. The cells were then put in contact with either NAD+, ribitol, or a precursor of ribitol known as ribose. Ortiz-Cordero et al. found that ribitol and ribose restored the ability of FKRP to add sugars to alpha-DG, reducing muscle damage. Combining NAD+ with ribitol or ribose had an even a bigger impact, further increasing the number of sugars on alpha-DG. The human muscle cell model developed by Ortiz-Cordero et al. could help to identify new compounds that can treat muscular conditions. In particular, the findings point towards NAD+, ribose and ribitol as candidates for treating FKRP-related muscular dystrophies. Further safety studies are now needed to evaluate whether these compounds could be used in patients.


Assuntos
Distroglicanas/metabolismo , Fibras Musculares Esqueléticas/metabolismo , NAD/farmacologia , Ribitol/metabolismo , Ribose/metabolismo , Linhagem Celular , Glicosilação , Humanos , Mutação , Pentosiltransferases/genética
6.
Trends Cell Biol ; 31(3): 197-210, 2021 03.
Artigo em Inglês | MEDLINE | ID: mdl-33272829

RESUMO

Fukutin-related protein (FKRP) is a glycosyltransferase involved in the functional glycosylation of α-dystroglycan (DG), a key component in the link between the cytoskeleton and the extracellular matrix (ECM). Mutations in FKRP lead to dystroglycanopathies with broad severity, including limb-girdle and congenital muscular dystrophy. Studies over the past 5 years have elucidated the function of FKRP, which has expanded the number of therapeutic opportunities for patients carrying FKRP mutations. These include small molecules, gene delivery, and cell therapy. Here we summarize recent findings on the function of FKRP and describe available models for studying diseases and testing therapeutics. Lastly, we highlight preclinical studies that hold potential for the treatment of FKRP-associated dystroglycanopathies.


Assuntos
Distrofias Musculares , Pentosiltransferases , Distroglicanas/genética , Distroglicanas/metabolismo , Glicosilação , Glicosiltransferases/metabolismo , Humanos , Distrofias Musculares/genética , Distrofias Musculares/terapia , Pentosiltransferases/genética , Pentosiltransferases/metabolismo
7.
Skelet Muscle ; 10(1): 10, 2020 04 22.
Artigo em Inglês | MEDLINE | ID: mdl-32321586

RESUMO

BACKGROUND: Defects in α-dystroglycan (DG) glycosylation characterize a group of muscular dystrophies known as dystroglycanopathies. One of the key effectors in the α-DG glycosylation pathway is the glycosyltransferase fukutin-related protein (FKRP). Mutations in FKRP lead to a large spectrum of muscular dystrophies, including limb girdle muscular dystrophy 2I (LGMD2I). It remains unknown whether stem cell transplantation can promote muscle regeneration and ameliorate the muscle wasting phenotype associated with FKRP mutations. RESULTS: Here we transplanted murine and human pluripotent stem cell-derived myogenic progenitors into a novel immunodeficient FKRP-mutant mouse model by intra-muscular injection. Upon both mouse and human cell transplantation, we observe the presence of donor-derived myofibers even in absence of pre-injury, and the rescue of α-DG functional glycosylation, as shown by IIH6 immunoreactivity. The presence of donor-derived cells expressing Pax7 under the basal lamina is indicative of satellite cell engraftment, and therefore, long-term repopulation potential. Functional assays performed in the mouse-to-mouse cohort revealed enhanced specific force in transplanted muscles compared to PBS-injected controls. CONCLUSIONS: Altogether, our data demonstrate for the first time the suitability of a cell-based therapeutic approach to improve the muscle phenotype of dystrophic FKRP-mutant mice.


Assuntos
Terapia Genética/métodos , Fibras Musculares Esqueléticas/citologia , Distrofia Muscular do Cíngulo dos Membros/terapia , Pentosiltransferases/genética , Transplante de Células-Tronco/métodos , Animais , Diferenciação Celular , Células Cultivadas , Distroglicanas/metabolismo , Humanos , Camundongos , Camundongos Endogâmicos C57BL , Camundongos Endogâmicos NOD , Camundongos SCID , Fibras Musculares Esqueléticas/metabolismo , Distrofia Muscular do Cíngulo dos Membros/genética , Fator de Transcrição PAX7/genética , Fator de Transcrição PAX7/metabolismo , Pentosiltransferases/metabolismo , Células-Tronco Pluripotentes/citologia , Células-Tronco Pluripotentes/metabolismo
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