在小鼠胃肠道中通过工程益生菌酵母增强肠道对大分子的吸收。

IF 14.3 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Trends in biotechnology Pub Date : 2024-12-09 DOI:10.1016/j.tibtech.2024.10.019
Hitesh P Gelli, Karl Alex Hedin, Martin F Laursen, Ruben-Vazquez Uribe, Morten Otto Alexander Sommer
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引用次数: 0

摘要

口服治疗性多肽受到肠道吸收不良的限制。利用工程微生物作为给药载体可以克服传统给药方法所面临的挑战。工程微生物与其提供的治疗药物协同作用的潜力为非侵入性治疗模式开辟了新的视野。本研究设计了一种益生菌酵母,博拉迪酵母菌,以原位产生细胞穿透肽(CPPs),以增强肠道通透性。4个CPPs被整合到酵母染色体上:RRL helix、Shuffle、Penetramax和PN159。Caco-2细胞模型的体外实验表明,三种产cpp菌株增加了通透性,但没有造成永久性损伤。小鼠体内实验显示,sbpn159给药超过10天显著增加fitc -葡聚糖转运到血液中,而不引起炎症。这项研究首次证明了工程微生物调节宿主通透性以改善肠道对大分子吸收的能力。
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Enhancing intestinal absorption of a macromolecule through engineered probiotic yeast in the murine gastrointestinal tract.

Oral administration of therapeutic peptides is limited by poor intestinal absorption. Use of engineered microorganisms as drug delivery vehicles can overcome the challenges faced by conventional delivery methods. The potential of engineered microorganisms to act synergistically with the therapeutics they deliver opens new horizons for noninvasive treatment modalities. This study engineered a probiotic yeast, Saccharomyces boulardii, to produce cell-penetrating peptides (CPPs) in situ for enhanced intestinal permeability. Four CPPs were integrated into the yeast chromosome: RRL helix, Shuffle, Penetramax, and PN159. In vitro tests on a Caco-2 cell model showed that three CPP-producing strains increased permeability without causing permanent damage. In vivo experiments on mice revealed that Sb PN159 administration over 10 days significantly increased FITC-dextran translocation into the bloodstream without causing inflammation. This study demonstrates, for the first time, the ability of an engineered microorganism to modulate host permeability for improved intestinal absorption of a macromolecule.

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来源期刊
Trends in biotechnology
Trends in biotechnology 工程技术-生物工程与应用微生物
CiteScore
28.60
自引率
1.20%
发文量
198
审稿时长
1 months
期刊介绍: Trends in Biotechnology publishes reviews and perspectives on the applied biological sciences, focusing on useful science applied to, derived from, or inspired by living systems. The major themes that TIBTECH is interested in include: Bioprocessing (biochemical engineering, applied enzymology, industrial biotechnology, biofuels, metabolic engineering) Omics (genome editing, single-cell technologies, bioinformatics, synthetic biology) Materials and devices (bionanotechnology, biomaterials, diagnostics/imaging/detection, soft robotics, biosensors/bioelectronics) Therapeutics (biofabrication, stem cells, tissue engineering and regenerative medicine, antibodies and other protein drugs, drug delivery) Agroenvironment (environmental engineering, bioremediation, genetically modified crops, sustainable development).
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