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1.
Nucleic Acids Res ; 51(1): e1, 2023 01 11.
Artigo em Inglês | MEDLINE | ID: mdl-36268868

RESUMO

The development of novel strategies to program cellular behaviors is a central goal in synthetic biology, and post-translational control mediated by engineered protein circuits is a particularly attractive approach to achieve rapid protein secretion on demand. We have developed a programmable protease-mediated post-translational switch (POSH) control platform composed of a chimeric protein unit that consists of a protein of interest fused via a transmembrane domain to a cleavable ER-retention signal, together with two cytosolic inducer-sensitive split protease components. The protease components combine in the presence of the specific inducer to generate active protease, which cleaves the ER-retention signal, releasing the transmembrane-domain-linked protein for trafficking to the trans-Golgi region. A furin site placed downstream of the protein ensures cleavage and subsequent secretion of the desired protein. We show that stimuli ranging from plant-derived, clinically compatible chemicals to remotely controllable inducers such as light and electrostimulation can program protein secretion in various POSH-engineered designer mammalian cells. As proof-of-concept, an all-in-one POSH control plasmid encoding insulin and abscisic acid-activatable split protease units was hydrodynamically transfected into the liver of type-1 diabetic mice. Induction with abscisic acid attenuated glycemic excursions in glucose-tolerance tests. Increased blood levels of insulin were maintained for 12 days.


Assuntos
Peptídeo Hidrolases , Processamento de Proteína Pós-Traducional , Biologia Sintética , Animais , Camundongos , Ácido Abscísico , Diabetes Mellitus Experimental , Endopeptidases/metabolismo , Insulina/genética , Insulina/metabolismo , Mamíferos/metabolismo , Peptídeo Hidrolases/metabolismo , Sistemas de Translocação de Proteínas , Biologia Sintética/métodos
2.
Small ; 18(41): e2202566, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-36084222

RESUMO

Biopharmaceutical manufacturing requires specialized facilities and a long-range cold supply chain for the delivery of the therapeutics to patients. In order to produce biopharmaceuticals in locations lacking such infrastructure, a production process is designed that utilizes the trigger-inducible release of large quantities of a stored therapeutic protein from engineered endocrine cells within minutes to generate a directly injectable saline solution of the protein. To illustrate the versatility of this approach, it is shown that not only insulin, but also glucagon-like peptide 1 (GLP-1), nanoluciferase (NLuc), and the model biopharmaceutical erythropoietin (EPO) can be trigger-inducibly released, even when using biologically inactive insulin as a carrier. The facilitating beta cells are engineered with a controllable TRPV1-mediated Ca2+ influx that induces the fusion of cytoplasmic storage vesicles with the membrane, leading to the release of the stored protein. When required, the growth medium is exchanged for saline solution, and the system is stimulated with the small molecule capsaicin, with a hand-warming pack, or simply by using sunlight. Injection of insulin saline solution obtained in this way into a type-1 diabetes mouse model results in the regulation of blood glucose levels. It is believed that this system will be readily adaptable to deliver various biopharmaceutical proteins at remote locations.


Assuntos
Produtos Biológicos , Eritropoetina , Animais , Glicemia/metabolismo , Capsaicina , Peptídeo 1 Semelhante ao Glucagon/metabolismo , Insulina , Camundongos , Fragmentos de Peptídeos , Solução Salina , Luz Solar
3.
Curr Opin Chem Biol ; 68: 102151, 2022 06.
Artigo em Inglês | MEDLINE | ID: mdl-35483127

RESUMO

Electrogenetics, the combination of electronics and genetics, is an emerging field of mammalian synthetic biology in which electrostimulation is used to remotely program user-designed genetic elements within designer cells to generate desired outputs. Here, we describe recent advances in electro-induced therapeutic gene expression and therapeutic protein secretion in engineered mammalian cells. We also review available tools and strategies to engineer electro-sensitive therapeutic designer cells that are able to sense electrical pulses and produce appropriate clinically relevant outputs in response. We highlight current limitations facing mammalian electrogenetics and suggest potential future directions for research.


Assuntos
Engenharia Celular , Células , Estimulação Elétrica , Genética , Mamíferos , Biologia Sintética , Animais , Engenharia Celular/métodos , Fenômenos Fisiológicos Celulares/genética , Células/metabolismo , Estimulação Elétrica/métodos , Terapia por Estimulação Elétrica , Eletrônica , Regulação da Expressão Gênica , Mamíferos/genética , Biossíntese de Proteínas , Biologia Sintética/métodos , Telemetria
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