- 楊光 教授
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微生物活體操縱與可控裝配新方法的構(gòu)建及其應(yīng)用(Developing New Methods and Application for Controllable Manipulation and Assembly of Living Microbe)
項(xiàng)目類別:國家自然科學(xué)基金
項(xiàng)目編號(hào):31270150
項(xiàng)目規(guī)模:面上項(xiàng)目
參與人員:楊光(主持)張祥林 肖林 臧珊珊 黃琳 李瑩 孫臻 吳斌 黃威
起止日期:2013年1月-2016年12月
項(xiàng)目編號(hào):31270150
項(xiàng)目規(guī)模:面上項(xiàng)目
參與人員:楊光(主持)張祥林 肖林 臧珊珊 黃琳 李瑩 孫臻 吳斌 黃威
起止日期:2013年1月-2016年12月
自然界中微生物種類極為豐富,尺寸涵蓋了納米級(jí)與微米級(jí),是可用于納米、微米以及多層次跨尺度加工的天然“基本單元”和“底盤細(xì)胞”。本項(xiàng)目立足于構(gòu)建用于定位操縱和可控裝配微生物活體“細(xì)胞工廠”的新方法,重點(diǎn)開拓和發(fā)展微流控和(或)微生物打印技術(shù)該兩項(xiàng)新技術(shù)。以釀酒酵母和大腸桿菌為模式菌種,木醋桿菌和肝素黃桿菌為功能菌種,誘發(fā)其特有的生物學(xué)功能,通過微生物微納米機(jī)器人進(jìn)行受控自組裝,研究影響微生物的運(yùn)動(dòng)行為的調(diào)控因素,揭示微生物定位調(diào)控原理和多層次精細(xì)結(jié)構(gòu)的形成機(jī)制。通過該方法可以設(shè)計(jì)特定的個(gè)性化微環(huán)境,探尋微生物的個(gè)體生長、代謝與行為模式。還可通過對(duì)微生物培養(yǎng)基的設(shè)計(jì)和打印,實(shí)現(xiàn)對(duì)大規(guī)模發(fā)酵過程的培養(yǎng)基優(yōu)化,將傳統(tǒng)的正交實(shí)驗(yàn)分析、響應(yīng)面實(shí)驗(yàn)分析手段芯片化。此外,通過多層次組裝,可設(shè)計(jì)和構(gòu)筑復(fù)雜體系的微生物群落,為微生物反應(yīng)器的設(shè)計(jì)、大規(guī)模生物煉制的調(diào)控提供理論依據(jù)和技術(shù)支撐。
Microbe is extremely abundent in nature, the size of which has a very wide coverage from nano- to micro-scale making it suitable to be processed at multi-scale level as natural " building blocks " and "chassis cell". Based on the urgent need of micro/nano bio-manufacture of microorganism, four controlling methods-- i.e. molecular template, magnetic control, microfluidics, and bio- printing --for the process suitable for microbe have been proposed to dip into the behavioral mode of microorganism and design new micro/nano functional materials by controlling directed movement and ordered arrangement of microorganism living cells. To our best knowledge, it is a promising and challenging project with originality in the field of microorganism.
This project aims at developing new methods and techniques of micro/nano manufacture based on physical/chemical/biological principles as well as establishing new ways for controlled manipulation and controllable living microorganism “cell factory”, especially focusing on exploring two new techniques—micro-fluidic and bio-printing. Through combinational and synergistic effort, it is expected be able to control the microorganism and its product from molecular to nano/micro level. Thus, the application prospect is extremely attractive, and it is highly promising to open up a new field of micro/nano manufacturing with living microorganism.
Specifically, using Saccharomyces cerevisiae and Escherichia coli as mode strains and Acetobacter xylins and Flavobacterium heparinum as function strains to investigate regulatory factors affecting the movement behavior of microorganism, nano-scale effect, surface/interfacial effect and biological effect during the biological manufacture process of microbial micro/nano robot self-assembly to reveal the underlying principle of microorganism orientation and mechanism of formation of fine structure at multi-level by inducing their unique biological function.
Hopefully, this new way will facilitate specific design of individual microenvironment, exploration of the growth, metabolism and behavior of microorganism. It is not only probable to study the behavior of the same microorganism in different micro environment, but also possible to reveal the interaction between different microbial individuals. Furthermore, optimization of culture medium for massive fermentation as well as assembly of the traditional orthogonal experiment analysis and response surface analysis into small chips can be achieved by designing and printing of the culture medium of microorganism. Finally, it will provide theoretical basis and technique support for the design of microorganism reactor and regulation of massive bio-refinery by multi-level construction of complex microorganism community.