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利用超拉伸、鞘流辅助弹惰性微通道连续可调分离光诱导雨生红球藻。

Continuously tunable separation of light-induced Haematococcus pluvialis using an ultrastretchable, sheath-flow-assisted elasto-inertial microchannel.

机构信息

Institute for Advanced Study, Shenzhen University, Shenzhen, China; College of Mechatronics and Control Engineering, Shenzhen University, Shenzhen, China.

Institute for Advanced Study, Shenzhen University, Shenzhen, China.

出版信息

Anal Chim Acta. 2024 Aug 15;1317:342884. doi: 10.1016/j.aca.2024.342884. Epub 2024 Jun 18.

Abstract

BACKGROUND

A proportion of Haematococcus pluvialis under the light stress can effectively conduct astaxanthin biosynthesis, leading to the increase in cell size. Although the size is a critical indicator for identifying the astaxanthin-rich H. pluvialis cells, the cut-off size to be separated varies from sample to sample.

RESULTS

Here, we report an ultrastretchable, straight elasto-inertial microchannel with tunable separation threshold to continuously separate the light-induced H. pluvialis cells by size. The symmetrical sheath flows confine the particles to the channel sidewalls, and large particles can cross the interface of viscoelastic fluids to the equilibrium position at the channel centerline. By stretching the microfluidic chip, the medium-sized particles can gradually migrate to the channel centerline in the narrower and longer channel, bringing the tunable separation threshold. Results show that the separation performance of the ultrastretchable microfluidic device is affected by total flow rate, flow rate ratio of sheath to sample, polyethylene oxide (PEO) solution configuration. Lastly, size-tunable separation of light-induced H. pluvialis cells is demonstrated.

SIGNIFICANCE

To the best of our knowledge, this is the first report on cell migration in co-flow configurations in the ultra-stretchable microfluidics. Separation of H. pluvialis is not only a relevant end application in harvesting the astaxanthin-rich species, but the separated populations of highly productive microalgal cells will open a venue for cellular directed evolution.

摘要

背景

在光胁迫下,一部分雨生红球藻能够有效地进行虾青素生物合成,导致细胞体积增大。虽然细胞大小是鉴定富含虾青素的雨生红球藻细胞的一个关键指标,但用于分离的截止大小因样品而异。

结果

在这里,我们报告了一种具有超拉伸性、直线型弹性惰性微通道,具有可调的分离阈值,可通过大小连续分离光诱导的雨生红球藻细胞。对称的鞘流将颗粒限制在通道侧壁,大颗粒可以穿过粘弹性流体的界面到达通道中心线的平衡位置。通过拉伸微流控芯片,中等大小的颗粒可以在较窄和较长的通道中逐渐迁移到通道中心线,从而实现可调的分离阈值。结果表明,超拉伸微流控器件的分离性能受总流速、鞘流与样品的流速比、聚氧化乙烯(PEO)溶液结构的影响。最后,展示了光诱导雨生红球藻细胞的尺寸可调分离。

意义

据我们所知,这是在超拉伸微流控中首次报道共流配置中的细胞迁移。雨生红球藻的分离不仅是收获富含虾青素物种的相关最终应用,而且高生产力微藻细胞的分离群体将为细胞定向进化开辟一个场所。

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