Inquiry-Based Knowledge Transformation: A Comparative Case of Two Secondary School Biology Teachers’ Involvement in an Extended Professional Learning Community Program
Abstract
1. Introduction
2. Literature Review
2.1. Inquiry as a Cornerstone of Reform in Science Education
2.2. Professional Learning Communities as Sociocultural Spaces for Teacher Learning and Sustained Inquiry-Based Reforms
2.3. Conditions Shaping Inquiry-Oriented Transformation in Professional Learning Communities
2.3.1. Dialogic Intensity, Quality, and Relational Capital/Trust
2.3.2. Organizational Supports
2.4. Theoretical Framework: Sociocultural Learning Theory (SLT)
3. Materials and Methods
3.1. Research Design
3.2. Participants
3.3. Data Collection
3.4. Data Analysis
- Developmental appropriateness: Procedural structure may serve as a deliberate scaffold for students with negative science identity, reflecting pedagogical intent rather than a deficit.
- Teacher experience: Differences in classroom enactment may reflect variations in teacher prior experience or confidence; the analysis, therefore, focuses on alignment between professional learning community (PLC) knowledge, classroom practice, and post-lesson reflections, not on teaching effectiveness per se.
- Analytic framework origins: The inquiry categories were not imposed by researchers but emerged from PLC dialogue analysis preceding classroom observation, ensuring that the framework reflected teacher-generated concerns.
| First-Level Codes (Descriptive) | Second-Level Codes (Patterns) | Third-Level Codes (Themes) | Theoretical Annotation and Link to Zone of Proximal Development (ZPD) | ||
|---|---|---|---|---|---|
| 1a · Lawson & Tan The teacher withholds information “They have just the pictures to work with.” 1b · Tan PLC PLCs advocate question redirection to students “Ask them to come up with the next round …” 1c · Tan PLC PLCs advocate epistemic shifts from teachers to students “The questions you ask will help them see every angle.” 1d · Lawson Teachers developing deliberate restraints “They are going to hate it … seniors are not used to this.” | → | Pattern A Teacher restraint as deliberate pedagogical positioning Codes: 1a + 1d Pattern B PLC shifting epistemic authority toward students Codes: 1b + 1c | → | Scaffolding Student Agency Both PLCs collectively constructed an understanding that student agency requires active scaffolding through teacher restraint—positioning agency not as behavioral autonomy but as intellectual authority to construct and validate one’s own understanding. | Vygotsky’s Zone of Proximal Development is enacted socially here, both within the PLC and by the teachers, specifically Lawson. Teachers are the learners; the community scaffolds their shift toward relinquishing epistemic control. This underscores Lave and Wenger’s (1991) concept of legitimate peripheral participation: teachers negotiate what counts as “appropriate withholding” (Lave & Wenger, 1991, p. 112) through PLC dialogue before enacting it in classrooms. |
| 2a · Lawson The teacher emphasizes reasoning over correct answers “They think it’s a very linear thing. They can’t switch.” 2b · Lawson Teacher values mistakes as learning opportunities “Their learning is hindered by their need for validation.” 2c · Tan & Lawson PLCs The teacher encourages effort and persistence through difficulty “You’re telling these kids to figure out the paths.” | → | Pattern A Understanding methodology is valued over correct answers Codes: 2a + 2c Pattern B Productive struggle as a pedagogical principle Codes: 2b + 2c | → | Prioritizing Process Over Right Answers Teachers value how students think, reason, and solve problems—not finding correct answers. PLC dialogue revealed that “unwillingness to be wrong” was identified as the primary obstacle to inquiry, reframing error as a productive learning condition. | This theme holds particular significance within sociocultural theory, as it illustrates how the professional learning community (PLC) collaboratively constructs a shared understanding of scientific thinking through dialogic interaction, rather than via top-down policy directives. The community’s identification of students’ “unwillingness to be wrong” exemplifies intersubjective meaning-making—teachers co-creating an interpretive lens through ongoing discourse. This process aligns with Wertsch’s (1991) concept of mediated action, wherein language within PLC dialogues serves as the principal tool that shapes subsequent classroom practices (Wertsch, 1991). |
| 3a · Tan The teacher designs activities around observable phenomena “Watching students watch contractions decrease over time …” 3b · Tan The teacher connects abstract concepts to tangible experiences “… comparing a dry run and a cold run.” 3c · Tan PLC PLC members advocate experience before explanation “Ask them what they think would happen, then do the activity and revisit.” 3d · Lawson The teacher uses phenomena to generate curiosity “Why do we experience lactic acid fermentation?” | → | Pattern A Phenomena as bridges between concrete and abstract Codes: 3a + 3d Pattern B PLC communities collectively positioning phenomena within inquiry frameworks Codes: 3b + 3c + 3d | → | Phenomenon-Based Learning PLC dialogue consistently positioned phenomena not as endpoints for engagement but as entry points generating student questions, predictions, and investigations leading toward deeper conceptual understanding. | Within a sociocultural framework, phenomena act as semiotic tools—material and conceptual resources that organize attention and facilitate the formation of shared meanings (Vygotsky, 1978; Wertsch, 1991). In this study, both Professional Learning Communities (PLCs) independently recognized this function in two distinct lesson contexts (anaerobic respiration and phylogeny), indicating the presence of a community-level norm rather than individual idiosyncrasy. The observed cross-community convergence thus substantiates the theoretical claim that inquiry knowledge is socially mediated within PLC discourse before entering classroom practice (Grossman et al., 2001). |
| 4a · Lawson & Tan PLCs Community identifies anticipated preconceptions “You’re expecting them to have some misconceptions right at the beginning.” 4b · Tan & Lawson The teacher surfaces preconceptions through task design “Maybe have the students create the questions as they go along.” 4c · Tan PLC PLC members connect preconceptions to conceptual systems “You can’t change it for them. Get them to change their beliefs.” | → | Pattern A PLC anticipating preconceptions before classroom instruction Codes: code 4a Pattern B Preconceptions as entry points for deeper understanding Codes: code 4b Pattern C Strategies for surfacing student preconceptions Codes: code 4c | → | Managing Students’ Preconceptions Both PLCs framed misconceptions as productive learning opportunities while both teachers showed tension between discovery ideals and direct correction—revealing ongoing negotiation about the pedagogical status of students’ prior knowledge. | Sociocultural theory positions prior knowledge not as a cognitive deficit, but as a culturally situated understanding (Vygotsky, 1978). This theme carries theoretical weight because the Professional Learning Community (PLC) dialogue served a prospective function: teachers collectively rehearsed how to respond to student thinking before those students were present. Such anticipatory reasoning positions the PLC as a planning community that socially mediates teacher decision-making. The tension between discovery and correction reflects the community working through a genuine pedagogical problem. |
4. Results
4.1. Biology Teacher’s Inquiry-Based Knowledge Mobility Journey
4.1.1. Theme 1: Scaffolding Student Agency
Lawson
I try to tell them it’s not all just, you know, you have to know equations or numbers. When doing an inquiry, students need questions, but work to figure out those questions. I want them engaged and discussing whatever they’re interested in.
If a child falls over, before they even start crying, the parent rushes in to see what’s wrong. Over time, that develops. If the teacher can take a step back and let the child figure out they’re hurt and actually need help, that’s a way to put them in the context of, now, this child has to start critically thinking.
Tan
Students will submerge their hands into an ice bath and then, from there, give the power to the groups and say, okay, why is this specifically happening? What are your ideas? Students would then do clothespin trials, tracking contractions in ten rounds.
So, I would imagine the discussions would happen with those reflection questions. So, once they’re done graphing, essentially, there’s a lot of talking about explanation as to why there was a difference between the one that you put a rubber band on and the one that you didn’t put a rubber band on.
You’re going to need a few roles: a recorder, someone to actually do the activity, and someone to keep time. Read through those instructions. I’m gonna let you be big boys and big girls and try to figure it out.
The students counted: “64, 65 …” Tan asked, “What’d you get? 81.66? so, 82.”
4.1.2. Theme 2: Phenomenon-Based Learning
Lawson
Tan
I wasn’t the best science student in the high school course. Yes, I didn’t have the grades for it, but it was frickin’ interesting. I think students get this idea of “Oh, if I have a bad grade, then I’m not good at science. And that’s what I wanna try to make sure that students don’t feel that way.
I don’t expect you to love science. I don’t expect you to necessarily be good at science. … You could literally hate science guts, but at the same time, you still have opportunities to be hands on. They’re smart! Yes, all of them are smart. But I do have a lot of leaders in that class such that, if there is a weak link at a table, they can look to those leaders.
This is a block, and it’s 90 min. In other words, you integrate your activities and the inquiry activities with the lesson itself, and you can freely go back and forth between them. Interspersing your introduction with activities, and then bringing them back into an explanation, kind of a classroom thing, back and forth is a better way to go. That’s probably the best way for them to get not only to learn, but to truly understand.
4.1.3. Theme 3: Prioritizing Process over Right Answers
Lawson
One of the things that I struggled with, and I admitted to them that I struggled with [this] in my freshman college biology, was remembering all the processes on the Kreb cycle or citric acid cycle. So, I kind of emphasize my weaknesses in my life, I was not the strongest student in cell biology but through practice and repetition and wanting to learn it and master it, I was able to get along with it. It is something I overcame, as well as they can overcome.
Tan
4.1.4. Theme 4: Managing Students’ Preconceptions
Lawson
I’d be interested to see how you think this activity goes. I’ve seen it before, but I haven’t used it in class. It’s like you’re telling these kids to figure out the paths the runners took, and then they eventually get tricked into creating a phylogeny. And then you say, Oh, look, actually, you were just building a phylogeny. And these are the drive traits, or the stamps that these runners went through, or whatever. But anyway, I think this is a great activity.
I teach them content; they connect that prior knowledge to the content, and then, because they see that it can be in a different context, in the first place, then they can take the content and stretch it out to other contexts.
As we get further and further into cell systems and genetics, as soon as students stopped, especially young students stopped being able to see it, they find it more and more difficult to comprehend chemical reactions. While someone who’s taking a chemistry course can identify what’s going on, what’s coming out and how the equilibriums work. And the minutia of that to a freshman, they know that if they put these two things together bubbles are going to come.
Tan
What I possibly could do is, if there are somewhat preconceptions or maybe questions that arise during the lesson, maybe at some point, take time write that question up on a whiteboard and just say, you know what, let’s stick a pin in this.
Have the students create the answers … and then maybe at the end of the lesson or the next lesson, you begin to clarify them. Get them [students] to change their beliefs. You can’t change it for them. That’s the way you get long-term understanding versus just a kind of a memory because you told it to them, and they forget next year and go right back to the wrong preconception.
Well, I test them. I think the best way that I like to identify if my students are learning, is discussion. Discussion with the person next to them. Dissuasion with me directly. Me asking them questions, you know, over their shoulder, me standing up in front of the room, going through the lecture, asking them direct questions, generating ideas, identifying those phenomena. And that’s how I identify that knowledge. Yes, formative assessment is a big part of it, but I prefer for them to be able to converse.
I think one common “misconception” students have about photosynthesis is that it just happens. There is no kind of explanation behind it. I think, really, getting down to a more academic level of identifying where those components actually come from. Saying, Okay, here’s where our oxygen comes from. Here’s where our Co2 comes from. These are what we call products. These are what we call reactants.
Having them think of the questions, and kind of add that aspect of, you know, what could possibly happen, or what will happen with this clothespin lab when we start adding in temperature, but I don’t want to go ahead and, you know, just lay the question out in front of them. I kind of want to give them an opportunity to discuss with their group.
Unless they discover it themselves and say, oh, that didn’t happen this way. My thinking was not right. That’s the way you get long-term understanding versus just a kind of memory. Yeah, so, in other words, get them to change their beliefs. You can’t change it for them.
5. Discussion
6. Conclusions
Rather than believing that the route to improved outcomes is to continually add new programs (aka “more parts”), this perspective directs us to focus first on increasing our understanding of the work systems that are creating unsatisfactory results, for it is in this ability to see the system that meaningful progress often depends (p. 470).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Achinstein, B. (2002). Conflict amid community: The micropolitics of teacher collaboration. Teachers College Record, 104(3), 421–455. [Google Scholar] [CrossRef] [Scilit]
- Anderson, R. D. (2002). Reforming science teaching: What research says about inquiry. Journal of Science Teacher Education, 13(1), 1–12. [Google Scholar] [CrossRef] [Scilit]
- Archer, K. R. (2012). The historical context and development of professional learning communities [Ph.D. Thesis, University of Kansas]. [Google Scholar]
- Au, W. (2022). Testing, accountability, and the persistence of educational inequality. Educational Policy, 36(3), 451–472. [Google Scholar]
- Berliner, D. C. (2020). Standardized testing is killing our schools—And our students’ creativity. Phi Delta Kappan, 101(8), 56–63. [Google Scholar]
- Blanton, M. L., Westbrook, S., & Carter, G. (2005). Using Valsiner’s zone theory to interpret teaching practices in mathematics and science classrooms. Journal of Mathematics Teacher Education, 8(1), 5–33. [Google Scholar] [CrossRef] [Scilit]
- Braun, V., & Clarke, V. (2021). One size fits all? What counts as quality practice in (reflexive) thematic analysis? Qualitative Research in Psychology, 18(3), 328–352. [Google Scholar] [CrossRef] [Scilit]
- Brodie, K., & Sanni, R. (2014). “We won’t know it since we don’t teach it”: Interactions between teachers’ knowledge and practice. African Journal of Research in Mathematics, Science and Technology Education, 18(2), 188–197. [Google Scholar] [CrossRef] [Scilit]
- Bryk, A. S. (2015). 2014 AERA distinguished lecture: Accelerating how we learn to improve. Educational Researcher, 44(9), 467–477. [Google Scholar] [CrossRef] [Scilit]
- Darling-Hammond, L. (2010). The flat world and education: How America’s commitment to equity will determine our future. Teachers College Press. [Google Scholar]
- de Groot, E., Endedijk, M. D., Jaarsma, A. D. C., Simons, P. R. J., & van Beukelen, P. (2014). Critically reflective dialogues in learning communities of professionals. Studies in Continuing Education, 36(1), 15–37. [Google Scholar] [CrossRef] [Scilit]
- Dewey, J. (1938). Experience and education. Collier Books. [Google Scholar]
- Drayton, B., Bernstein, D., Schunn, C., & McKenney, S. (2020). Consequences of curricular adaptation strategies for implementation at scale. Science Education, 104(6), 983–1007. [Google Scholar] [CrossRef] [Scilit]
- Duschl, R. A., & Grandy, R. E. (2008). Teaching scientific inquiry: Recommendations for research and implementation. Brill. [Google Scholar]
- Engeström, Y. (2014). Learning by expanding: An activity-theoretical approach to developmental research. Cambridge University Press. [Google Scholar]
- Farrell, C. C., Penuel, W. R., Coburn, C. E., Daniels, J., & Steup, L. (2021). Research-practice partnerships today: The state of the field. William T. Grant Foundation. [Google Scholar]
- Gess-Newsome, J. (1999). Pedagogical content knowledge: An introduction and orientation. In Examining pedagogical content knowledge: The construct and its implications for science education (pp. 3–17). Springer. [Google Scholar]
- Giroux, H. A. (1997). Pedagogy and the politics of hope: Theory, culture, and schooling: A critical reader. Westview Press. [Google Scholar]
- Greeno, J. G., & Gresalfi, M. S. (2008). Opportunities to learn in practice and identity. In D. C. Pullin, J. P. Gee, E. H. Haertel, & L. J. Young (Eds.), Assessment, equity, and opportunity to learn (pp. 170–199). Cambridge University Press. [Google Scholar]
- Grossman, P., Wineburg, S., & Woolworth, S. (2001). Toward a theory of teacher community. Teachers College Record, 103, 942–1012. [Google Scholar] [CrossRef] [Scilit]
- Horn, I. S. (2010). Teaching replays, teaching rehearsals, and revisions of practice: Learning from colleagues in a mathematics teacher community. Teachers College Record, 112(1), 225–259. [Google Scholar] [CrossRef] [Scilit]
- Horn, I. S., & Kane, B. D. (2015). Opportunities for professional learning in mathematics teacher workgroup conversations: Relationships to instructional expertise. Journal of the Learning Sciences, 24(3), 373–418. [Google Scholar] [CrossRef] [Scilit]
- Horn, I. S., & Little, J. W. (2010). Attending to problems of practice: Routines and resources for professional learning in teachers’ workplace interactions. American Educational Research Journal, 47(1), 181–217. [Google Scholar] [CrossRef] [Scilit]
- John-Steiner, V., & Mahn, H. (1996). Sociocultural approaches to learning and development: A Vygotskian framework. Educational Psychologist, 31(3–4), 191–206. [Google Scholar] [CrossRef] [Scilit]
- Lave, J., & Wenger, E. (1991). Situated learning: Legitimate peripheral participation. Cambridge University Press. [Google Scholar]
- Lewis, E. (2023). Conflict of allegiance: Professional development challenges in transforming science teachers’ identities and practices. Journal of Biological Education, 57(4), 892–915. [Google Scholar]
- Liou, Y. H., & Daly, A. J. (2014). Closer to learning: Social networks, trust, and professional communities. Journal of School Leadership, 24(4), 753–795. [Google Scholar] [CrossRef] [Scilit]
- Mavhunga, E., & Rollnick, M. (2013). Improving PCK of chemical equilibrium in pre-service teachers. African Journal of Research in Mathematics, Science and Technology Education, 17(1–2), 113–125. [Google Scholar] [CrossRef] [Scilit]
- Meltzer, D. E., & Otero, V. K. (2015). A brief history of physics education in the United States. American Journal of Physics, 83(5), 447–458. [Google Scholar] [CrossRef] [Scilit]
- National Research Council [NRC]. (2000). Inquiry and the national science education standards: A guide for teaching and learning. National Academies Press. [Google Scholar]
- Nguyen, D., Boeren, E., Maitra, S., & Cabus, S. (2024). A review of the empirical research literature on PLCs for teachers in the Global South: Evidence, implications, and directions. Professional Development in Education, 50(1), 91–107. [Google Scholar] [CrossRef] [Scilit]
- Ni, L., Bausch, G., & Benjamin, R. (2023). Computer science teacher professional development and professional learning communities: A review of the research literature. Computer Science Education, 33(1), 29–60. [Google Scholar] [CrossRef] [Scilit]
- Prilla, M., Blunk, O., & Chounta, I. A. (2020). How does collaborative reflection unfold in online communities? An analysis of two data sets. Computer Supported Cooperative Work (CSCW), 29, 697–741. [Google Scholar] [CrossRef] [Scilit]
- Sager, M. T., Pierce, K., & Murillo, J. (2025). Enhancing inquiry-based science instruction: The role of professional learning communities and instructional coaching for elementary science teachers. Journal of Education and Learning, 14(5), 26–40. [Google Scholar] [CrossRef] [Scilit]
- Schön, D., & Argyris, C. (1996). Organizational learning II: Theory, method and practice. Addison-Wesley. [Google Scholar]
- Shabani, K. (2012). Teacher’s professional development from Vygotskian optique. Advances in Language and Literary Studies, 3(2), 101–120. [Google Scholar] [CrossRef] [Scilit]
- Sunal, D. W., Sunal, C. S., & Ogodo, J. A. (Eds.). (2024). Crossing the border from preservice to Inservice science teacher: Research-based induction as professional development. Emerald Group Publishing, NC. [Google Scholar]
- Urdanivia Alarcón, D. A., Talavera-Mendoza, F., Rucano Paucar, F. H., Cayani Caceres, K. S., & Machaca Viza, R. (2023, May). Science and inquiry-based teaching and learning: A systematic review. In Frontiers in education (Vol. 8, p. 1170487). Frontiers Media SA. [Google Scholar]
- Valsiner, J. (1997). Culture and the development of children’s action: A theory of human development. John Wiley & Sons. [Google Scholar]
- Van Lare, M. D., & Brazer, S. D. (2013). Analyzing learning in professional learning communities: A conceptual framework. Leadership and Policy in Schools, 12(4), 374–396. [Google Scholar] [CrossRef] [Scilit]
- Vygotsky, L. S. (1978). Mind in society: The development of higher psychological processes. Harvard University Press. [Google Scholar]
- Vygotsky, L. S. (1986). Thought and language. MIT Press. [Google Scholar]
- Wells, G. (1999). Dialogic inquiry: Toward a sociocultural practice and theory of education. Cambridge University Press. [Google Scholar]
- Wenger, E. (1998). Communities of practice: Learning as a social system. Systems Thinker, 9(5), 2–3. [Google Scholar] [CrossRef] [Scilit]
- Wertsch, J. V. (1991). Voices of the mind: A sociocultural approach to mediated action. Harvard University Press. [Google Scholar]
- Wilcox, J., Kruse, J. W., & Clough, M. P. (2015). Teaching science through inquiry: Seven common myths about this time-honored approach. The Science Teacher, 82(6), 62–67. [Google Scholar] [CrossRef] [Scilit]

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Anogwih, J.; Nirmala, E.; Davidson, S. Inquiry-Based Knowledge Transformation: A Comparative Case of Two Secondary School Biology Teachers’ Involvement in an Extended Professional Learning Community Program. Educ. Sci. 2026, 16, 562. https://doi.org/10.3390/educsci16040562
Anogwih J, Nirmala E, Davidson S. Inquiry-Based Knowledge Transformation: A Comparative Case of Two Secondary School Biology Teachers’ Involvement in an Extended Professional Learning Community Program. Education Sciences. 2026; 16(4):562. https://doi.org/10.3390/educsci16040562
Chicago/Turabian StyleAnogwih, Joy, Erevelles Nirmala, and Shannon Davidson. 2026. "Inquiry-Based Knowledge Transformation: A Comparative Case of Two Secondary School Biology Teachers’ Involvement in an Extended Professional Learning Community Program" Education Sciences 16, no. 4: 562. https://doi.org/10.3390/educsci16040562
APA StyleAnogwih, J., Nirmala, E., & Davidson, S. (2026). Inquiry-Based Knowledge Transformation: A Comparative Case of Two Secondary School Biology Teachers’ Involvement in an Extended Professional Learning Community Program. Education Sciences, 16(4), 562. https://doi.org/10.3390/educsci16040562

