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1.
Proc Natl Acad Sci U S A ; 118(10)2021 03 09.
Artículo en Inglés | MEDLINE | ID: mdl-33658372

RESUMEN

In birds, males are the homogametic sex (ZZ) and females the heterogametic sex (ZW). Primary sex determination is thought to depend on a sex chromosome gene dosage mechanism, and the most likely sex determinant is the Z chromosome gene Doublesex and Mab-3-Related Transcription factor 1 (DMRT1). To clarify this issue, we used a CRISPR-Cas9-based monoallelic targeting approach and sterile surrogate hosts to generate birds with targeted mutations in the DMRT1 gene. The resulting chromosomally male (ZZ) chicken with a single functional copy of DMRT1 developed ovaries in place of testes, demonstrating the avian sex-determining mechanism is based on DMRT1 dosage. These ZZ ovaries expressed typical female markers and showed clear evidence of follicular development. However, these ZZ adult birds with an ovary in place of testes were indistinguishable in appearance to wild-type adult males, supporting the concept of cell-autonomous sex identity (CASI) in birds. In experiments where estrogen synthesis was blocked in control ZW embryos, the resulting gonads developed as testes. In contrast, if estrogen synthesis was blocked in ZW embryos that lacked DMRT1, the gonads invariably adopted an ovarian fate. Our analysis shows that DMRT1 is the key sex determination switch in birds and that it is essential for testis development, but that production of estrogen is also a key factor in primary sex determination in chickens, and that this production is linked to DMRT1 expression.


Asunto(s)
Proteínas Aviares , Pollos , Dosificación de Gen , Ovario/metabolismo , Procesos de Determinación del Sexo , Testículo/metabolismo , Factores de Transcripción , Animales , Proteínas Aviares/genética , Proteínas Aviares/metabolismo , Pollos/genética , Pollos/metabolismo , Femenino , Masculino , Factores de Transcripción/genética , Factores de Transcripción/metabolismo
2.
Mamm Genome ; 28(7-8): 315-323, 2017 08.
Artículo en Inglés | MEDLINE | ID: mdl-28612238

RESUMEN

The application of gene editing (GE) technology to create precise changes to the genome of bird species will provide new and exciting opportunities for the biomedical, agricultural and biotechnology industries, as well as providing new approaches for producing research models. Recent advances in modifying both the somatic and germ cell lineages in chicken indicate that this species, and conceivably soon other avian species, has joined a growing number of model organisms in the gene editing revolution.


Asunto(s)
Aves/genética , Edición Génica , Genoma , Animales , Sistemas CRISPR-Cas , Edición Génica/métodos , Ingeniería Genética , Células Germinativas/metabolismo , Modelos Animales , Especificidad de Órganos
3.
Methods Mol Biol ; 2631: 419-441, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-36995681

RESUMEN

Genome editing technology facilitates the creation of specific and precise genetic changes to unravel gene function and rapidly transfer unique alleles between chicken breeds in contrast to lengthy traditional crossbreeding methods for the study of poultry genetics. Innovations in genome sequencing technology have made it possible to map polymorphisms associated with both monogenic and multigenic traits in livestock species. We, and many others, have demonstrated the use of genome editing to introduce specific monogenic traits in chicken through targeting of cultured primordial germ cells. In this chapter, we describe materials and protocols for performing heritable genome editing in the chicken through targeting of in vitro propagated chicken primordial germ cells.


Asunto(s)
Pollos , Células Germinativas , Animales , Pollos/genética , Edición Génica/métodos , Aves de Corral , Genoma
4.
Nat Commun ; 14(1): 6136, 2023 10 10.
Artículo en Inglés | MEDLINE | ID: mdl-37816720

RESUMEN

Chickens genetically resistant to avian influenza could prevent future outbreaks. In chickens, influenza A virus (IAV) relies on host protein ANP32A. Here we use CRISPR/Cas9 to generate homozygous gene edited (GE) chickens containing two ANP32A amino acid substitutions that prevent viral polymerase interaction. After IAV challenge, 9/10 edited chickens remain uninfected. Challenge with a higher dose, however, led to breakthrough infections. Breakthrough IAV virus contained IAV polymerase gene mutations that conferred adaptation to the edited chicken ANP32A. Unexpectedly, this virus also replicated in chicken embryos edited to remove the entire ANP32A gene and instead co-opted alternative ANP32 protein family members, chicken ANP32B and ANP32E. Additional genome editing for removal of ANP32B and ANP32E eliminated all viral growth in chicken cells. Our data illustrate a first proof of concept step to generate IAV-resistant chickens and show that multiple genetic modifications will be required to curtail viral escape.


Asunto(s)
Virus de la Influenza A , Gripe Aviar , Embrión de Pollo , Animales , Gripe Aviar/genética , Edición Génica , ARN Polimerasa Dependiente del ARN/genética , ARN Polimerasa Dependiente del ARN/metabolismo , Pollos/genética , Virus de la Influenza A/genética , Virus de la Influenza A/metabolismo
5.
Elife ; 82019 06 04.
Artículo en Inglés | MEDLINE | ID: mdl-31159925

RESUMEN

Influenza A viruses (IAV) are subject to species barriers that prevent frequent zoonotic transmission and pandemics. One of these barriers is the poor activity of avian IAV polymerases in human cells. Differences between avian and mammalian ANP32 proteins underlie this host range barrier. Human ANP32A and ANP32B homologues both support function of human-adapted influenza polymerase but do not support efficient activity of avian IAV polymerase which requires avian ANP32A. We show here that the gene currently designated as avian ANP32B is evolutionarily distinct from mammalian ANP32B, and that chicken ANP32B does not support IAV polymerase activity even of human-adapted viruses. Consequently, IAV relies solely on chicken ANP32A to support its replication in chicken cells. Amino acids 129I and 130N, accounted for the inactivity of chicken ANP32B. Transfer of these residues to chicken ANP32A abolished support of IAV polymerase. Understanding ANP32 function will help develop antiviral strategies and aid the design of influenza virus resilient genome edited chickens.


Asunto(s)
Especificidad del Huésped , Interacciones Huésped-Patógeno , Virus de la Influenza A/crecimiento & desarrollo , Proteínas Nucleares/metabolismo , Proteínas de Unión al ARN/metabolismo , Animales , Línea Celular , Pollos , Humanos , Virus de la Influenza A/enzimología , ARN Polimerasa Dependiente del ARN/metabolismo , Replicación Viral
6.
Sci Rep ; 8(1): 15126, 2018 10 11.
Artículo en Inglés | MEDLINE | ID: mdl-30310080

RESUMEN

Primordial germ cells (PGCs), the embryonic precursors of the sperm and egg, are used for the introduction of genetic modifications into avian genome. Introduction of small defined sequences using genome editing has not been demonstrated in bird species. Here, we compared oligonucleotide-mediated HDR using wild type SpCas9 (SpCas9-WT) and high fidelity SpCas9-HF1 in PGCs and show that many loci in chicken PGCs can be precise edited using donors containing CRISPR/Cas9-blocking mutations positioned in the protospacer adjacent motif (PAM). However, targeting was more efficient using SpCas9-HF1 when mutations were introduced only into the gRNA target sequence. We subsequently employed an eGFP-to-BFP conversion assay, to directly compare HDR mediated by SpCas9-WT and SpCas9-HF1 and discovered that SpCas9-HF1 increases HDR while reducing INDEL formation. Furthermore, SpCas9-HF1 increases the frequency of single allele editing in comparison to SpCas9-WT. We used SpCas9-HF1 to demonstrate the introduction of monoallelic and biallelic point mutations into the FGF20 gene and generate clonal populations of edited PGCs with defined homozygous and heterozygous genotypes. Our results demonstrate the use of oligonucleotide donors and high fidelity CRISPR/Cas9 variants to perform precise genome editing with high efficiency in PGCs.


Asunto(s)
Alelos , Sistemas CRISPR-Cas , Edición Génica , Células Germinativas/metabolismo , Animales , Secuencia de Bases , Sitios de Unión , Pollos , Orden Génico , Vectores Genéticos/genética , Células Germinativas/citología , Heterocigoto , Mutación INDEL , Mutación , Unión Proteica , Análisis de Secuencia de ADN
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