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A Microwell-Printing Fabrication Strategy for the On-Chip Templated Biosynthesis of Protein Microarrays for Surface Plasmon Resonance Imaging

机译:用于表面等离子体共振成像的蛋白质芯片的芯片上模板生物合成的微孔印刷制造策略。

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摘要

A two-step templated, ribosomal biosynthesis/printing method for the fabrication of protein microarrays for surface plasmon resonance imaging (SPRI) measurements is demonstrated. In the first step, a sixteen component microarray of proteins is created in microwells by cell free on chip protein synthesis; each microwell contains both an in vitro transcription and translation (IVTT) solution and 350 femtomoles of a specific DNA template sequence that together are used to create approximately 40 picomoles of a specific hexahistidine-tagged protein. In the second step, the protein microwell array is used to contact print one or more protein microarrays onto nitrilotriacetic acid (NTA)-functionalized gold thin film SPRI chips for real-time SPRI surface bioaffinity adsorption measurements. Even though each microwell array element only contains approximately 40 picomoles of protein, the concentration is sufficiently high for the efficient bioaffinity adsorption and capture of the approximately 100 femtomoles of hexahistidine-tagged protein required to create each SPRI microarray element. As a first example, the protein biosynthesis process is verified with fluorescence imaging measurements of a microwell array containing His-tagged green fluorescent protein (GFP), yellowfluorescent protein (YFP) and mCherry (RFP), and then the fidelity of SPRI chipsprinted from this protein microwell array is ascertained by measuring thereal-time adsorption of various antibodies specific to these three structurallyrelated proteins. This greatly simplified two-step synthesis/printingfabrication methodology eliminates most of the handling, purification andprocessing steps normally required in the synthesis of multiple protein probes,and enables the rapid fabrication of SPRI protein microarrays from DNA templatesfor the study of protein-protein bioaffinity interactions.
机译:演示了两步模板化的核糖体生物合成/打印方法,用于制造用于表面等离振子共振成像(SPRI)测量的蛋白质微阵列。第一步,通过无细胞片上蛋白质合成,在微孔中创建蛋白质的十六种成分微阵列;每个微孔都包含一个体外转录和翻译(IVTT)溶液和350飞克分子的特定DNA模板序列,这些序列一起用于创建约40皮摩尔的特定六组氨酸标记的蛋白。在第二步中,蛋白质微孔阵列用于将印刷的一个或多个蛋白质微阵列接触到次氮基三乙酸(NTA)功能化的金薄膜SPRI芯片上,以进行实时SPRI表面生物亲和力吸附测量。即使每个微孔阵列元件仅包含大约40皮摩尔的蛋白质,该浓度也足够高,可以有效地生物亲和吸附并捕获创建每个SPRI微阵列元件所需的大约100飞摩尔的六组氨酸标签的蛋白质。作为第一个例子,蛋白质的生物合成过程通过含有His标记的绿色荧光蛋白(GFP),黄色的微孔阵列的荧光成像测量来验证荧光蛋白(YFP)和mCherry(RFP),然后保真SPRI芯片通过测量蛋白质实时吸附对这三种结构特异性的各种抗体相关蛋白质。这大大简化了两步合成/打印制造方法消除了大部分处理,纯化和多种蛋白质探针合成中通常需要的处理步骤,并能够从DNA模板快速制造SPRI蛋白微阵列用于蛋白质-蛋白质生物亲和力相互作用的研究。

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