Durán David C, Hernández César A, Suesca Elizabeth, Acevedo Rubén, Acosta Ivón M, Forero Diana A, Rozo Francisco E, Pedraza Juan M
Laboratorio de Biofísica, Departamento de Física, Universidad de los Andes, Bogotá 111711, Colombia.
Centro de Microelectrónica, Departamento de Ingeniería Eléctrica y Electrónica, Universidad de los Andes CMUA, Bogotá 111711, Colombia.
Micromachines (Basel). 2020 Dec 22;12(1):4. doi: 10.3390/mi12010004.
The yeast is one of the most basic model organisms for studies of aging and other phenomena such as division strategies. These organisms have been typically studied with the use of microfluidic devices to keep cells trapped while under a flow of fresh media. However, all of the existing devices trap cells mechanically, subjecting them to pressures that may affect cell physiology. There is evidence mechanical pressure affects growth rate and the movement of intracellular components, so it is quite possible that it affects other physiological aspects such as aging. To allow studies with the lowest influence of mechanical pressure, we designed and fabricated a device that takes advantage of the slipstreaming effect. In slipstreaming, moving fluids that encounter a barrier flow around it forming a pressure gradient behind it. We trap mother cells in this region and force daughter cells to be in the negative pressure gradient region so that they are taken away by the flow. Additionally, this device can be fabricated using low resolution lithography techniques, which makes it less expensive than devices that require photolithography masks with resolution under 5 µm. With this device, it is possible to measure some of the most interesting aspects of yeast dynamics such as growth rates and Replicative Life Span. This device should allow future studies to eliminate pressure bias as well as extending the range of labs that can do these types of measurements.
酵母是用于研究衰老及其他现象(如分裂策略)的最基本模式生物之一。这些生物体通常使用微流控设备进行研究,以便在新鲜培养基流动的情况下使细胞被困住。然而,所有现有的设备都是通过机械方式捕获细胞,使它们受到可能影响细胞生理的压力。有证据表明机械压力会影响生长速率和细胞内成分的移动,所以它很可能会影响其他生理方面,如衰老。为了能够在机械压力影响最小的情况下进行研究,我们设计并制造了一种利用尾流效应的设备。在尾流效应中,流动的流体遇到障碍物时会绕其流动,在其后方形成压力梯度。我们将母细胞捕获在这个区域,并迫使子细胞处于负压梯度区域,这样它们就会被水流带走。此外,这种设备可以使用低分辨率光刻技术制造,这使得它比需要分辨率低于5微米的光刻掩膜的设备成本更低。使用这种设备,可以测量酵母动态的一些最有趣的方面,如生长速率和复制寿命。这种设备应该能让未来的研究消除压力偏差,并扩大能够进行这类测量的实验室范围。