When students work with physical, 3D models of molecules and cells, they don’t just “have fun”—they tend to learn more deeply, participate more equitably, and engage in the kind of sensemaking real scientists do. The research around model-based biology teaching is clear enough that it’s worth asking: what small shifts could you make this year to put more models in students’ hands in intentional ways?
Picture a familiar scene: you’re explaining the Central Dogma again. Students can chant “DNA → RNA → protein,” and they’ve filled out the graphic organizer, but when you ask them to explain how a mutation might change a protein—or to sketch what’s happening—many of their answers reveal shaky mental models. It’s not that they haven’t seen the slides or heard the story; they just can’t quite see it well enough to reason with it.
One teacher who attended a recent modeling workshop summed up the difference this way: “The sequence of modeling kits leading from properties of water to protein folding was a great way to develop student understanding of complex concepts and structures.” In other words, the facts started to click once students could literally pick them up, turn them around, and test ideas with their hands.
That’s the promise of model-based instruction in biology—and it’s increasingly backed by research.
Teaching question: Do hands-on models really do more for student learning than a polished slide deck, simulation, or clicker questions?
A growing body of research says yes—especially for complex, invisible biology.
One study by Newman and colleagues compared sections of a course where students learned the Central Dogma through physical model-based activities to sections that used active, but non-model approaches, such as clicker questions and peer discussion. Students in the model-based sections showed significantly higher learning gains, and the lowest-performing students made the largest absolute gains, suggesting that models helped more students cross the threshold into solid understanding.
From a cognitive perspective, these models seem to help students organize complex information into coherent mental schematics, thereby lowering cognitive load and allowing new ideas to stick. Students themselves often report that, while the model doesn’t magically “explain it better,” it helps them remember and reconstruct processes independently later.
One teacher described the shift this way: “All of the varied models helped me think about how cellular structures function together. I learned how to use models more effectively and different ways to scaffold them into my curriculum.”
A Move To Try: Trade one Review Lecture for a Model Explanation Day
If you only have time for one change this term, consider this:
You might also experiment with flipping your usual order:
These are small structural changes, but they align your classroom more closely with what the research suggests about how students actually build durable understanding with models.
Teaching question: How can I lower the barrier so more students—not just the “diagram kids”—can participate in molecular biology?
The same Newman study that found overall gains with physical models also offers an encouraging equity signal: lower-performing students made the biggest absolute gains when they worked with models. There is also evidence that models may help address gender disparities in spatially demanding content by giving students tangible supports for building their mental models.
Beyond test scores, modeling shows up in the equity literature as a high-leverage practice. Schwarz and colleagues describe modeling as a way to make scientific reasoning visible and shared, which can be especially powerful when students enter with different levels of prior knowledge. Fairbairn and Jones-Vo identify modeling as a recommended strategy for multilingual learners, because it allows them to participate in scientific talk without needing all the vocabulary up front.
Taken together, this research aligns strongly with principles of Universal Design for Learning: when you represent core ideas in tactile and spatial ways, you give more learners more ways to understand and express those ideas.
One teacher reflected on this broader impact after a WE2-focused workshop: “I was affirmed as a practitioner and a learner throughout the day because this team treats our work as a craft and learning as brain-forward discovery… this manner of facilitation makes modeling a memorable and accessible way of thinking and admiring the world.”
A Move To Try: Start with Model Talk, then Add Terminology
You can leverage the equity of models without rewriting a unit.
This approach centers shared observation and interaction with the model, rather than prior comfort with academic vocabulary. It allows multilingual learners, students with weaker background knowledge, and students who process information differently to contribute on equal footing.
Another simple move is to treat the model as a shared “third object” in tough conversations:
These small shifts help modeling function as an equity tool, not just an enrichment activity for students who are already thriving.
Teaching question: Am I using models mainly as props to display information—or as tools that help students explain, predict, and test ideas?
Research on modeling in science education draws an important distinction between “models of” and “models for.” Gouvea and Passmore argue that we can think of models as representations of phenomena, and as tools for doing science—explaining, predicting, and guiding investigation. Schwarz and colleagues, along with Upmeier zu Belzen and others, describe modeling as a central scientific practice in which scientists iteratively construct, test, and revise representations to make sense of the world.
In classrooms, Malone and Schuchardt report that modeling-based pedagogy improves
A key theme across this research is that models are most powerful when they’re woven into cycles of wondering, exploring, and explaining—not just handed out as end-of-unit summaries. This pattern sits at the heart of the WE2 Model (say WE Model) pedagogy we are developing with educators.
A Move To Try: A Simple Wonder-Explore-Explain Cycle
You can bring a more “models for” stance into your existing units with a simple three-step routine:
Many teachers already use pieces of this pattern intuitively. The WE2 Model framework is about making that pedagogy visible and intentional: building repeatable Wonder–Explore–Explain cycles around foundational 3D models so students learn to use models the way scientists do.
It’s one thing to nod along with the research; it’s another to fit new practices into an already packed year. The good news is that you don’t need to redesign an entire course to benefit from model-based instruction.
You might start by identifying one unit where students consistently struggle to “see” what’s happening—Central Dogma, cell communication, immunity, or membranes. In that unit, try just one of these research-backed moves:
Pay attention to how student questions change, how their explanations sound, and whose voices show up more often when the model is at the center.
In a future post this October, we’ll move from “what research says” to a clearer picture of the WE2 Model itself—sharing concrete Wonder–Explore–Explain arcs and examples you can adapt in your own classroom. In the meantime, we’d love to know: where are your students struggling most to build mental models right now, and what might happen if they could pick those ideas up in their hands?
Davenport, J., Pique, M., Getzoff, E., Huntoon, J., Gardner, A., & Olson, A. (2017). A self-assisting protein folding model for teaching structural molecular biology. Structure, 25(4), 671–678.
Fairbairn, S., & Jones-Vo, S. (2010). Differentiating instruction and assessment for English language learners: A guide for K–12 teachers (2nd ed.). Caslon Publishing.
Forbes-Lorman, R. M., Harris, M. A., Chang, W. S., Dent, E. W., Nordheim, E. V., & Franzen, M. A. (2016). Physical models have gender-specific effects on student understanding of protein structure–function relationships. Biochemistry and Molecular Biology Education, 44(4), 326–335.
Gouvea, J., & Passmore, C. (2017). Models of versus models for: Toward an agent-based conception of modeling in the science classroom. Science & Education, 26, 49–63.
Malone, K. L., & Schuchardt, A. (2023). Modeling-based pedagogy as a theme across science disciplines: Effects on scientific reasoning and content understanding. European Journal of Science and Mathematics Education, 11(4), 717–737.
Newman, D. L., Stefkovich, M., Clasen, C., Franzen, M. A., & Wright, L. K. (2018). Physical models can provide superior learning opportunities beyond the benefits of active engagements. Biochemistry and Molecular Biology Education, 46(5), 435–444.
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