Hosseini Seyedmajid, Koch Jack C, Liu Yue, Semmes Ignatius, Nahmens Isabelina, Monroe W Todd, Xu Jian, Tiersch Terrence R
Department of Electrical & Computer Engineering, Louisiana State University, Baton Rouge, LA, USA.
Aquatic Germplasm and Genetic Resources Center, School of Renewable Natural Resources, Louisiana State University Agricultural Center, Baton Rouge, LA, USA.
Micro Nano Eng. 2024 Sep;24. doi: 10.1016/j.mne.2024.100277. Epub 2024 Jul 25.
Aquatic germplasm repositories can play a pivotal role in securing the genetic diversity of natural populations and agriculturally important aquatic species. However, existing technologies for repository development and operation face challenges in terms of accuracy, precision, efficiency, and cost-effectiveness, especially for microdevices used in gamete quality evaluation. Quality management is critical throughout genetic resource protection processes from sample collection to final usage. In this study, we examined the potential of using three-dimensional (3-D) stereolithography resin printing to address these challenges and evaluated the overall capabilities and limitations of a representative industrial 3-D resin printer with a price of US$18,000, a consumer-level printer with a price <US$700, and soft lithography, a conventional microfabrication method. A standardized test object, the Integrated Geometry Sampler (IGS), and a device with application in repository quality management, the Single-piece Sperm Counting Chamber (SSCC), were printed to determine capabilities and evaluate differences in targeted versus printed depths and heights. The IGS design had an array of negative and positive features with dimensions ranging from 1 mm to 0.02 mm in width and depth. The SSCC consisted of grid and wall features to facilitate cell counting. The SSCC was evaluated with polydimethylsiloxane (PDMS) devices cast from a typical photoresist and silicon mold. Fabrication quality was evaluated by optical profilometry for parameters such as dimensional accuracy, precision, and visual morphology. Fabrication time and cost were also evaluated. The precision, reliability, and surface quality of industrial-grade 3-D resin printing were satisfactory for operations requiring depths or heights larger than 0.1 mm due to a low discrepancy between targeted and measured dimensions across a range of 1 mm to 0.1 mm. Meanwhile, consumer-grade printers were suitable for microdevices with depths or heights larger than 0.2 mm. While the performance of either of these printers could be further optimized, their current capabilities, broad availability, low cost of operation, high throughput, and simplicity offer great promise for rapid development and widespread use of standardized microdevices for numerous applications, including gamete quality evaluation and "laboratory-on-a-chip" applications in support of aquatic germplasm repositories.
水生种质资源库在保护自然种群和具有农业重要性的水生物种的遗传多样性方面可以发挥关键作用。然而,现有的种质资源库开发和运营技术在准确性、精度、效率和成本效益方面面临挑战,特别是对于用于配子质量评估的微型设备。从样本采集到最终使用的整个遗传资源保护过程中,质量管理至关重要。在本研究中,我们研究了使用三维(3-D)立体光刻树脂打印来应对这些挑战的潜力,并评估了一台价格为18,000美元的代表性工业3-D树脂打印机、一台价格低于700美元的消费级打印机以及传统微加工方法软光刻的整体能力和局限性。打印了一个标准化测试对象——集成几何采样器(IGS),以及一个在种质资源库质量管理中有应用的设备——单件精子计数室(SSCC),以确定其能力并评估目标深度与打印深度和高度之间的差异。IGS设计具有一系列正负特征,其宽度和深度尺寸范围从1毫米到0.02毫米。SSCC由网格和壁特征组成,便于细胞计数。使用从典型光刻胶和硅模具浇铸的聚二甲基硅氧烷(PDMS)设备对SSCC进行评估。通过光学轮廓仪评估制造质量的参数,如尺寸精度、精度和视觉形态。还评估了制造时间和成本。由于在1毫米至0.1毫米范围内目标尺寸与测量尺寸之间的差异较小,工业级3-D树脂打印的精度、可靠性和表面质量对于需要深度或高度大于0.1毫米的操作来说是令人满意的。同时,消费级打印机适用于深度或高度大于0.2毫米的微型设备。虽然这两种打印机的性能都可以进一步优化,但它们目前的能力、广泛可用性、低运营成本、高吞吐量和简单性为包括配子质量评估和支持水生种质资源库的“芯片实验室”应用在内的众多应用的标准化微型设备的快速开发和广泛使用带来了巨大希望。