==== Front Sci AdvSci AdvSciAdvadvancesScience Advances2375-2548American Association for the Advancement of Science aat510510.1126/sciadv.aat5105Research ArticleResearch ArticlesSciAdv r-articlesScientific CommunitySynthetic BiologySynthetic BiologyBioBits™ Explorer: A modular synthetic biology education kit http://orcid.org/0000-0002-8711-8233Huang Ally 123*http://orcid.org/0000-0002-0935-6404Nguyen Peter Q. 34*http://orcid.org/0000-0003-3828-5438Stark Jessica C. 567*http://orcid.org/0000-0003-4937-2924Takahashi Melissa K. 2http://orcid.org/0000-0003-0826-904XDonghia Nina 3Ferrante Tom 3http://orcid.org/0000-0003-0319-5416Dy Aaron J. 1289Hsu Karen J. 10http://orcid.org/0000-0003-3021-8222Dubner Rachel S. 11http://orcid.org/0000-0002-3812-8013Pardee Keith 12http://orcid.org/0000-0003-2948-6211Jewett Michael C. 5671314†http://orcid.org/0000-0002-5560-8246Collins James J. 1238915†1 Department of Biological Engineering, Massachusetts Institute of Technology (MIT), Cambridge, MA 02139, USA.2 Institute for Medical Engineering and Science, MIT, Cambridge, MA 02139, USA.3 Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA 02115, USA.4 School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA.5 Department of Chemical and Biological Engineering, Northwestern University, Evanston, IL 60208, USA.6 Chemistry of Life Processes Institute, Northwestern University, Evanston, IL 60208, USA.7 Center for Synthetic Biology, Northwestern University, Evanston, IL 60208, USA.8 Synthetic Biology Center, MIT, Cambridge, MA 02139, USA.9 Broad Institute of MIT and Harvard, Cambridge, MA 02142, USA.10 Department of Mechanical Engineering, Northwestern University, Evanston, IL 60208, USA.11 Department of Biological Sciences, Northwestern University, Evanston, IL 60208, USA.12 Leslie Dan Faculty of Pharmacy, University of Toronto, Toronto, Ontario M5S 3M2, Canada.13 Robert H. Lurie Comprehensive Cancer Center, Northwestern University, 676 North Saint Clair Street, Suite 1200, Chicago, IL 60611, USA.14 Simpson Querrey Institute, Northwestern University, Chicago, IL 60611, USA.15 Harvard-MIT Program in Health Sciences and Technology, Cambridge, MA 02139, USA.* These authors contributed equally to this work. † Corresponding author. Email: jimjc@mit.edu (J.J.C.); m-jewett@northwestern.edu (M.C.J.)8 2018 01 8 2018 4 8 eaat510506 3 2018 04 7 2018 Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC).2018The AuthorsThis is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license, which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.We present a low-cost kit based on freeze-dried, cell-free reactions to illustrate synthetic and molecular biology concepts. Hands-on demonstrations greatly enhance the teaching of science, technology, engineering, and mathematics (STEM) concepts and foster engagement and exploration in the sciences. While numerous chemistry and physics classroom demonstrations exist, few biology demonstrations are practical and accessible due to the challenges and concerns of growing living cells in classrooms. We introduce BioBits™ Explorer, a synthetic biology educational kit based on shelf-stable, freeze-dried, cell-free (FD-CF) reactions, which are activated by simply adding water. The FD-CF reactions engage the senses of sight, smell, and touch with outputs that produce fluorescence, fragrances, and hydrogels, respectively. We introduce components that can teach tunable protein expression, enzymatic reactions, biomaterial formation, and biosensors using RNA switches, some of which represent original FD-CF outputs that expand the toolbox of cell-free synthetic biology. The BioBits™ Explorer kit enables hands-on demonstrations of cutting-edge science that are inexpensive and easy to use, circumventing many current barriers for implementing exploratory biology experiments in classrooms. http://dx.doi.org/10.13039/100000001National Science FoundationMCB-1413563http://dx.doi.org/10.13039/100000001National Science FoundationMCB-1716766http://dx.doi.org/10.13039/100000008David and Lucile Packard Foundationhttp://dx.doi.org/10.13039/100000181Air Force Office of Scientific Researchhttp://dx.doi.org/10.13039/100000183Army Research OfficeW911NF-16-1-0372Wyss institutePaul G. Allen Frontiers GroupAir Force Research Laboratory Center of Excellence GrantFA8650-15-2-5518Defense Threat Reduction Agency GrantHDTRA1-15-10052/P00001Camille Dreyfus Teacher-Scholar ProgramNatural Sciences and Engineering Council of CanadaRGPIN-2016-06352CopyeditorEunice Ann Alesin ==== Body INTRODUCTION Many of us can trace our initial fondness for the sciences to formative experiences with hands-on exploratory kits, such as traditional chemistry sets. This trend has expanded today to include a spectrum of educational kits that teach subjects such as physics, electronics, programming, or robotics (1–3). However, there are few successful and engaging systems for teaching advanced molecular or synthetic biology concepts in a hands-on manner (4, 5). This absence is largely due to the particularities of traditional biology experimentation, which requires a cold chain to prevent the biological components from spoiling, sterile equipment and media to prevent contamination, specialized instruments such as shaking incubators, and concerns with the biocontainment of recombinant microorganisms. Here, we present the development of a synthetic biology platform that circumvents all of these challenges, resulting in a shelf-stable and affordable educational kit for demonstrating advanced biological concepts. Synthetic biology is a rapidly advancing field that uses engineering concepts to harness the power and diversity of biology. At the foundation of this endeavor is the ability to control gene expression in a predictable manner, which is accomplished by using modular biological components to control and fine tune the processes of transcription and translation (6, 7). The resulting synthetic biology toolbox enables powerful new methods for chemical and drug manufacturing (6, 8), clinical diagnostics (9, 10), and cell therapies (11, 12). Synthetic biology kits also have great potential as educational tools to teach molecular and synthetic biology concepts but are generally too expensive to implement in classrooms due to the numerous infrastructure requirements of these types of experiments. To create an array of biology demonstrations that could be used in any classroom setting, we turned to cell-free synthetic biology. Cell-free systems use essential cellular machinery, including polymerases, ribosomes, and transcription factors, in an in vitro setting to carry out the processes of transcription and translation, which circumvents the need for specialized, sterile equipment and media to culture living cells; moreover, the lack of living cells eliminates concerns of biocontainment. There are two general types of cell-free systems: crude extracts, where the required cellular components are harvested from bacterial lysate (13), and reconstituted systems, such as the commercial protein synthesis using recombinant elements (PURE) system (14), where each individual component is produced recombinantly and then recombined in vitro. Both systems require supplementation with additional essential components such as nucleotides, amino acids, and energy equivalents. Cell-free systems have been used extensively to produce proteins and other biomolecules, as well as build and execute synthetic biology circuits (9, 10, 15–17). We have shown that cell-free systems can be freeze-dried along with genetic elements to form pellets that are stable at room temperature and are highly portable (15). The shelf-stable nature of these freeze-dried, cell-free (FD-CF) pellets eliminates the need for dedicated refrigerators or freezers. In addition, FD-CF reactions do not require any specialized equipment, making them a robust technology for using synthetic biology in low-resource environments, including classrooms. Reactivation of the FD-CF components simply requires the end user to add water. We have previously used this technology for the rapid development of inexpensive, paper-based nucleic acid diagnostics and as a portable biomanufacturing platform (10, 15, 16). With the unique practicality of FD-CF technology, we also considered this platform to be highly suitable for applications in biology education, where there is a glaring lack of hands-on biology experiments (18). Specifically, FD-CF reactions are an ideal way to bring the ever-increasing toolbox of the synthetic biology community to secondary schools and the general public (Fig. 1A). Previously, this has required substantial investment in laboratory equipment and infrastructure, resulting in the lack of formative STEM experiences in poorly funded schools (19). We believe that the innovative approach we present here and in Stark et al. (20) will have a significant impact on lowering the barriers to explore advanced synthetic biology concepts and reduce inequalities in public science education. Fig. 1 BioBits™ kits: Freeze-dried educational kits. (A) FD-CF demonstrations require only the addition of water to the supplied reactions and incubation for 1 to 20 hours at 25° to 37°C for observation and analysis by students. In contrast, traditional biology experiments require substantial time, resources, and specialized equipment. (B) With the DNA template and any substrate molecules provided with the FD-CF reaction, the students just have to add water to run a number of bioscience activities and demonstrations. Here, we introduce BioBits™ Explorer, a low-cost modular educational kit that uses FD-CF technology to teach synthetic biology concepts through sensory engagement and provides opportunities for inquiry-based learning. We have developed a set of demonstrations designed to engage three of the five senses—sight, smell, and touch (Fig. 1B)—through the expression of proteins in FD-CF reactions that produce fluorescence, enzyme-generated fragrances, and large-scale hydrogels, respectively (fig. S1 and table S1). This was made possible through the development of functionally robust synthetic cell-free programs—several of which are original. We discuss here how these outputs can be used to create activities to teach the fundamentals of protein expression, enzyme catalysis, and properties of biomaterials. In addition, we incorporate modular biosensing components that can be used to control gene expression—specifically, RNA toehold switches—to develop a demonstration that allows students to discriminate between species of different fruits using extracted DNA (table S1). These activities can be run on their own or in sequence with additional laboratory activities that we developed using fluorescent protein outputs, which we pair with low-cost, portable laboratory equipment and supporting curriculum in a kit we call BioBits™ Bright (see the companion article). Together, the BioBits™ kits demonstrate both the breadth of synthetic biology activities that can be developed with FD-CF technology and how these platforms can increase student involvement, illustrate core concepts in molecular and synthetic biology, and provide opportunities for independent, student-directed research projects (for example, synthetic biology after school clubs and science fair research teams) in the life sciences. RESULTS Fluorescent proteins as visual outputs Our first goal was to develop a set of outputs that would engage as many of the five senses as possible to pique students’ interest in the activities. As a visual output, we used FD-CF crude extract reactions to express fluorescent proteins. We selected a set of five fluorescent proteins (21–27) that cover a spectrum of colors, a subset from the BioBits™ Bright kit composed of red (eforRed), orange (dTomato), yellow (mOrange), green (sfGFP), and cyan (Aquamarine). FD-CF pellets, including DNA templates encoding the five proteins, were rehydrated and incubated overnight (20 hours) at 30°C. The fluorescent proteins expressed robustly and were easily visible to the eye even without fluorescent excitation. The fluorescent colors were also vivid when viewed using a custom low-cost, portable fluorescence illuminator we developed (first described in our companion article) (Fig. 2A and fig. S2). Fig. 2 Fluorescent proteins as visual outputs. (A) A set of fluorescent proteins were expressed by FD-CF expression in crude extract and visualized with (i) a laboratory transilluminator (Safe Imager at 470-nm excitation), (ii) white light epi-illumination, (iii) a portable, inexpensive (