Aborn James H, El-Difrawy Sameh A, Novotny Mark, Gismondi Elizabeth A, Lam Roger, Matsudaira Paul, McKenna Brian K, O'Neil Thomas, Streechon Philip, Ehrlich Daniel J
Whitehead Institute for Biomedical Research, Nine Cambridge Center, Cambridge, MA 02142, USA.
Lab Chip. 2005 Jun;5(6):669-74. doi: 10.1039/b501104c. Epub 2005 May 9.
A 768-lane DNA sequencing system based on microfluidic plates has been designed as a near-term successor to 96-lane capillary arrays. Electrophoretic separations are implemented for the first time in large-format (25 cm x 50 cm) microdevices, with the objective of proving realistic read length, parallelism, and the scaled sample requirements for long-read de novo sequencing. Two 384-lane plates are alternatively cycled between electrophoresis and regeneration via a robotic pipettor. A total of greater than 172000 bases, 99% accuracy (corresponding to quality score 20) is achieved for each iteration of a 384 lane plate. At current operating conditions, this implies a system throughput exceeding 4 megabases of raw sequence (Phred 20) per day on the new platform. Standard operation is at "1/32x" Sanger chemistry, equal to typical genome center operation on mature capillary array machines, and a 16-fold improvement in scaling relative to previous microfabricated devices. Experiments provide evidence that sample concentration can be further reduced to 1/256x Sanger chemistry in the microdevice. Life-testing indicates a usable life of >150 hours (more than 50 runs) for the 384 lane plates. The combined advances, particularly those in read length and sample requirement, directly address the cost model requirements for adaptation of the new technology as the next step beyond capillary array instruments.
一种基于微流控板的768通道DNA测序系统已被设计出来,作为96通道毛细管阵列的近期继任者。首次在大幅面(25厘米×50厘米)的微型设备中实现了电泳分离,目的是验证长读长从头测序的实际读长、并行性和规模化样本需求。通过自动移液器,两块384通道的板在电泳和再生之间交替循环。对于384通道板的每次迭代,总共能获得超过172000个碱基,准确率达到99%(对应质量分数20)。在当前操作条件下,这意味着新平台每天的系统通量超过4兆碱基的原始序列(Phred 20)。标准操作采用“1/32x”桑格化学法,等同于成熟毛细管阵列机器上典型的基因组中心操作,并且相对于之前的微制造设备,在规模化方面有16倍的提升。实验证明,在微型设备中样本浓度可进一步降低至1/256x桑格化学法。寿命测试表明,384通道板的使用寿命超过150小时(超过50次运行)。这些综合进展,尤其是在读长和样本需求方面的进展,直接满足了将新技术作为毛细管阵列仪器之后的下一步技术进行应用的成本模型要求。