SUMMARY Transcription factor structural dynamics has emerged as a critical frontier in plant molecular biology, as many transcription factors (TFs) belong to plant‐specific families with unique structural features that reveal mechanisms static structural approaches cannot capture. These advances, combining molecular dynamics simulations, NMR spectroscopy, and single‐molecule techniques, have demonstrated that structural dynamics play crucial roles in driving DNA recognition, environmental responsiveness, and regulatory precision. Such computational and experimental breakthroughs have revealed rotation‐coupled diffusion processes in WRKY proteins and allosteric regulation through ensemble redistribution in disordered domains. Despite these discoveries, fundamental questions remain about how plant TFs achieve specificity within complex regulatory networks and integrate multiple environmental signals. We outline current understanding of the static structures across transcription factor families before examining breakthrough discoveries in structural dynamics. These encompass the diverse architectures of DNA binding and regulatory domains, as well as the conformational flexibility and transition kinetics governing DNA binding, cofactor interactions, and environmental signal transduction. We subsequently explore how these insights are transforming biotechnological applications, from rational protein design to crop engineering strategies. Finally, we discuss remaining challenges and future directions for harnessing transcription factor dynamics in agricultural and synthetic biological applications.
Wu et al. (Thu,) studied this question.
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