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Transport of microorganisms into cellulose nanofiber mats

机译:微生物将微生物传输到纤维素纳米纤维垫中

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摘要

Nanofiber mats hold potential in numerous applications that interface with microorganisms. However, a fundamental study that quantifies the transport of microorganisms into three-dimensional microenvironments, such as nanofiber mats, has not yet been conducted. Here, we evaluate the microbial uptake capacity of three hydrophilic cellulose sorbents, a high surface area electrospun nanofiber mat, as well as two commercial products, a macrofibrous Fisherbrand fabric and an adsorptive Sartorius membrane. The small average fiber diameter (similar to 1.0 mu m) and large porosity of the nanofiber mats enabled a 21 times greater collection of Escherichia coli K12 per milligram of material than the macrofibrous Fisherbrand controls and 220 times more than the Sartorius controls. In most cases, the exposure time of the nanofiber mats to the microorganisms was sufficient to reach a quasi-equilibrium state of microbial uptake, allowing the calculation of an adsorption coefficient (K-eq) that relates the concentration of cells in the sorbent to the concentration of cells remaining in solution. The K-eq of the nanofiber mats was 420, compared to 9.2 and 0.67 for the Fisherbrand and Sartorius controls, respectively. In addition to E. coli, we studied the cellulose nanofiber mat uptake of two additional medically relevant and distinct microorganisms, Gram-negative Pseudomonas aeruginosa PA01 and Gram-positive Staphylococcus aureus MW2, to probe whether microorganism removal is bacteria-specific. The high uptake capacity of all three bacteria by the nanofiber mats indicates that microbial uptake is independent of the microorganism's adhesion mechanism. This work suggests that cellulose nanofiber mat "sponges" are a green platform technology that has the potential to remove detrimental microorganisms from wounds, trap bacteria within a protective military textile, or remediate contaminated water.
机译:纳米纤维垫在与微生物接口的许多应用中占据潜力。然而,尚未进行量化微生物将微生物运输成三维微环境(例如纳米纤维垫)的基本研究尚未进行。在这里,我们评估三个亲水性纤维素吸附剂,高表面积的电纺纳米纤维垫,以及两个商业产品,一个macrofibrous FISHERBRAND织物和吸附赛多利斯膜微生物吸收能力。小的平均纤维直径(类似于1.0μm)和纳米纤维垫的大孔隙率使得每毫克大肠杆菌K12的大肠杆菌k12较大的比例大于大丙烷般的渔民控制器,而不是Sartorius控制的220倍。在大多数情况下,纳米纤维垫对微生物的暴露时间足以达到微生物摄取的准平衡状态,从而允许计算吸附剂中细胞浓度的吸附系数(K-EQ)溶液中保留的细胞浓度。纳米纤维垫的K-eq为420,分别为9.2和0.67,分别用于渔民和Sartorius控制。除了大肠杆菌中,我们研究了两个额外的医学相关且不同的微生物,革兰氏阴性绿脓杆菌PA01和革兰氏阳性金黄色葡萄球菌MW2,的纤维素纳米纤维垫的吸收探测微生物去除是否是细菌特异性的。纳米纤维垫上所有三种细菌的高摄取能力表明微生物摄取与微生物的粘合机制无关。这项工作表明,纤维素纳米纤维毡“海绵”是一个绿色的平台技术,具有保护军用纺织品,或修复被污染的水内移除创伤有害微生物,细菌陷阱的可能性。

著录项

  • 来源
    《RSC Advances》 |2016年第29期|共8页
  • 作者单位

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Chem Engn Amherst MA 01003 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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